BQ27505-J2 [TI]

System-Side Impedance Track™ Fuel Gauge; 系统端Impedance Track ™电量计
BQ27505-J2
型号: BQ27505-J2
厂家: TEXAS INSTRUMENTS    TEXAS INSTRUMENTS
描述:

System-Side Impedance Track™ Fuel Gauge
系统端Impedance Track ™电量计

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bq27505-J2  
System-Side Impedance Track™ Fuel Gauge  
www.ti.com  
SLUS924APRIL 2009  
1 INTRODUCTION  
1.1 FEATURES  
1.2 APPLICATIONS  
Battery Fuel Gauge for 1-Series Li-Ion  
Applications  
Smartphones  
PDAs  
Resides on System Main Board  
Digital Still and Video Cameras  
Handheld Terminals  
MP3 or Multimedia Players  
Works With Embedded or Removable  
Battery Packs  
Uses PACK+, PACK–, and T Battery Terminals  
Microcontroller Peripheral Provides:  
Accurate Battery Fuel Gauging  
Internal Temperature Sensor for Battery  
Temperature Reporting  
Battery Low Interrupt Warning  
Battery Insertion Indicator  
Configurable Level of State of Charge  
(SOC) Interrupts  
State of Health Indicator  
96 Bytes of Non-Volatile Scratch-Pad  
FLASH  
1.3 DESCRIPTION  
The Texas Instruments bq27505 system-side Li-Ion  
battery fuel gauge is a microcontroller peripheral that  
provides fuel gauging for single-cell Li-Ion battery  
packs.  
The  
device  
requires  
little  
system  
microcontroller firmware development. The bq27505  
resides on the system’s main board and manages an  
embedded battery (non-removable) or a removable  
battery pack.  
The bq27505 uses the patented Impedance Track™  
algorithm for fuel gauging, and provides information  
such as remaining battery capacity (mAh),  
state-of-charge (%), run-time to empty (min), battery  
voltage (mV), temperature (°C) and state of health  
(%).  
Battery Fuel Gauge Based on Patented  
Impedance Track™ Technology  
Models the Battery Discharge Curve for  
Accurate Time-to-Empty Predictions  
Automatically Adjusts for Battery Aging,  
Battery Self-Discharge, and  
Temperature/Rate Inefficiencies  
Low-Value Sense Resistor (10 mor Less)  
400-kHz I2C™ Interface for Connection to  
System Microcontroller Port  
Battery fuel gauging with the bq27505 requires only  
PACK+ (P+), PACK– (P–), and Thermistor (T)  
connections to  
a
removable battery pack or  
embedded battery circuit. The CSP option is a 12-ball  
package in the dimensions of 2,43 mm × 1,96 mm  
with 0,5 mm lead pitch. It is ideal for space  
constrained applications.  
In a 12-Pin NanoFree™ (CSP) Packaging  
TYPICAL APPLICATION  
Host System  
LDO  
Single Cell Li-lon  
Battery Pack  
VCC  
Voltage  
Sense  
PACK+  
PROTECTION  
IC  
Battery  
Low  
Temp  
Sense  
I2C  
DATA  
T
Power  
bq27505  
Management  
Controller  
CHG  
DSG  
PACK-  
FETs  
BAT_GD  
SOC_INT  
Current  
Sense  
Please be aware that an important notice concerning availability, standard warranty, and use in critical applications of Texas  
Instruments semiconductor products and disclaimers thereto appears at the end of this document.  
Impedance Track, NanoFree are trademarks of Texas Instruments.  
I2C is a trademark of Philips Electronics.  
PRODUCTION DATA information is current as of publication date.  
Products conform to specifications per the terms of the Texas  
Instruments standard warranty. Production processing does not  
necessarily include testing of all parameters.  
Copyright © 2009, Texas Instruments Incorporated  
bq27505-J2  
System-Side Impedance Track™ Fuel Gauge  
SLUS924APRIL 2009  
www.ti.com  
These devices have limited built-in ESD protection. The leads should be shorted together or the device placed in  
conductive foam during storage or handling to prevent electrostatic damage to the MOS gates.  
Contents  
1
2
3
INTRODUCTION .......................................... 1  
1.1 FEATURES ........................................... 1  
1.2 APPLICATIONS ...................................... 1  
1.3 DESCRIPTION ....................................... 1  
DEVICE INFORMATION................................. 3  
2.1 AVAILABLE OPTIONS ............................... 3  
2.2 DISSIPATION RATINGS ............................. 3  
2.1 PIN ASSIGNMENT ................................... 4  
ELECTRICAL SPECIFICATIONS ...................... 5  
3.1 ABSOLUTE MAXIMUM RATINGS ................... 5  
4.3  
MANUFACTURER INFORMATION BLOCKS ...... 20  
4.4 ACCESS MODES ................................... 21  
4.5 SEALING/UNSEALING DATA FLASH.............. 21  
4.6 DATA FLASH SUMMARY........................... 21  
FUNCTIONAL DESCRIPTION ........................ 23  
5.1 FUEL GAUGING .................................... 23  
5.2 IMPEDANCE TRACK™ VARIABLES............... 24  
5.3 DETAILED PIN DESCRIPTION..................... 26  
5.4 TEMPERATURE MEASUREMENT................. 30  
5.5 OVERTEMPERATURE INDICATION............... 30  
5
5.6  
CHARGING AND CHARGE-TERMINATION  
INDICATION......................................... 30  
3.2  
RECOMMENDED OPERATING CONDITIONS...... 5  
3.3 POWER-ON RESET.................................. 6  
5.7 POWER MODES.................................... 31  
5.8 POWER CONTROL................................. 32  
5.9 AUTOCALIBRATION................................ 33  
APPLICATION-SPECIFIC INFORMATION.......... 33  
3.4  
INTERNAL TEMPERATURE SENSOR  
CHARACTERISTICS ................................. 6  
3.5 HIGH-FREQUENCY OSCILLATOR .................. 6  
3.6 LOW-FREQUENCY OSCILLATOR .................. 6  
6
7
3.7  
3.8  
3.9  
INTEGRATING ADC (COULOMB COUNTER)  
CHARACTERISTICS ................................. 6  
ADC (TEMPERATURE AND CELL  
6.1  
BATTERY PROFILE STORAGE AND SELECTION 33  
6.2  
APPLICATION-SPECIFIC FLOW AND CONTROL. 34  
COMMUNICATIONS  
MEASUREMENT) CHARACTERISTICS............. 7  
............................................................. 35  
DATA FLASH MEMORY CHARACTERISTICS ...... 7  
7.1 I2C INTERFACE..................................... 35  
7.2 I2C Time Out ........................................ 36  
7.3 I2C Command Waiting Time ........................ 36  
REFERENCE SCHEMATICS .......................... 37  
8.1 SCHEMATIC ........................................ 37  
3.10 I2C-COMPATIBLE INTERFACE COMMUNICATION  
TIMING CHARACTERISTICS ........................ 8  
4
GENERAL DESCRIPTION .............................. 9  
4.1 DATA COMMANDS ................................. 10  
4.2 DATA FLASH INTERFACE ......................... 19  
8
2
Contents  
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bq27505-J2  
System-Side Impedance Track™ Fuel Gauge  
www.ti.com  
SLUS924APRIL 2009  
2 DEVICE INFORMATION  
2.1 AVAILABLE OPTIONS  
FIRMWARE  
PART NUMBER  
COMMUNICATION  
FORMAT  
TAPE and REEL  
QUANTITY  
PACKAGE(1)  
TA  
VERSION  
bq27505YZGR-J2  
2.15  
3000  
250  
CSP-12  
–40°C to 85°C  
I2C  
bq27505YZGT-J2  
(1) For the most current package and ordering information, see the Package Option Addendum at the end of this document, or see the TI  
website at www.ti.com.  
2.2 DISSIPATION RATINGS  
POWER RATING  
DERATING FACTOR  
PACKAGE  
THERMAL  
RESISTANCE(1)(2)  
TA = 25°C  
ABOVE(1) (2)TA = 25°C  
YZG  
θJA = 89°C/W  
θJB = 35°C/W  
1.1 W  
12 mW/°C  
(1) Measured with high-K board.  
(2) Maximum power dissipation is a function of TJ(max), θJA and TA. The maximum allowable power dissipation at any allowable ambient  
temperature is PD = (TJ(max) – TA)/ θJA  
.
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DEVICE INFORMATION  
3
bq27505-J2  
System-Side Impedance Track™ Fuel Gauge  
SLUS924APRIL 2009  
www.ti.com  
2.1 PIN ASSIGNMENT  
CSP-12  
(TOP VIEW)  
CSP-12  
(BOTTOM VIEW)  
A3  
A2  
A1  
B3  
B2  
B1  
C3  
C2  
C1  
D3  
D2  
D1  
D3  
D2  
D1  
C3  
C2  
C1  
B3  
B2  
B1  
A3  
A2  
A1  
Table 2-1. PIN FUNCTIONS  
TERMINAL  
NAME  
TYPE(1)  
DESCRIPTION  
NO.  
Analog input pin connected to the internal coulomb counter where SRP is nearest the PACK–  
connection. Connect to 5-mto 20-msense resistor.  
SRP  
SRN  
A1  
IA  
IA  
Analog input pin connected to the internal coulomb counter where SRN is nearest the Vss  
connection. Connect to 5-mto 20-msense resistor.  
B1  
Battery Low output indicator. Active high by default, though polarity can be configured through  
the [BATL_POL] bit of Operation Configuration. Push-pull output.  
BAT_LOW  
Vss  
C1  
D1  
A2  
O
P
Device ground  
Battery-good indicator. Active-low by default, though polarity can be configured through the  
[BATG_POL] bit of Operation Configuration. Push-pull output.  
BAT_GD  
O
SOC state interrupts output. Generate a pulse under the conditions specified by Table 5-5. Open  
drain output.  
SOC_INT  
B2  
I/O  
Cell-voltage measurement input. ADC input. Recommend 4.8V maximum for conversion  
accuracy.  
BAT  
Vcc  
C2  
D2  
A3  
I
P
Processor power input. Decouple with minimum 0.1µF ceramic capacitor.  
Slave I2C serial communications data line for communication with system (Master). Open-drain  
I/O. Use with 10kpull-up resistor (typical).  
SDA  
I/O  
Slave I2C serial communications clock input line for communication with system (Master). Use  
with 10kpull-up resistor (typical).  
SCL  
B3  
I
Battery-insertion detection input. Power pin for pack thermistor network. Thermistor-multiplexer  
control pin. Use with pull-up resistor >1M(1.8 Mtypical).  
BI/TOUT  
TS  
C3  
D3  
I/O  
IA  
Pack thermistor voltage sense (use 103AT-type thermistor). ADC input  
(1) I/O = Digital input/output, IA = Analog input, P = Power connection  
4
DEVICE INFORMATION  
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bq27505-J2  
System-Side Impedance Track™ Fuel Gauge  
www.ti.com  
SLUS924APRIL 2009  
3 ELECTRICAL SPECIFICATIONS  
3.1 ABSOLUTE MAXIMUM RATINGS  
over operating free-air temperature range (unless otherwise noted)(1)  
PARAMETER  
VALUE  
–0.3 to 2.75  
–0.3 to 6  
–0.3 to 6  
–0.3 to VCC + 0.3  
1.5  
UNIT  
V
VCC  
VIOD  
VBAT  
VI  
Supply voltage range  
Open-drain I/O pins (SDA, SCL, SOC_INT)  
BAT input pin  
V
Input voltage range to all other pins (BI/Tout, TS, SRP, SRN, BAT_GD)  
Human-body model (HBM), BAT pin  
Human-body model (HBM), all other pins  
Operating free-air temperature range  
Functional temperature range  
V
ESD  
kV  
2
TA  
–40 to 85  
–40 to 100  
–65 to 150  
°C  
°C  
°C  
TF  
Tstg  
Storage temperature range  
(1) Stresses beyond those listed under "absolute maximum ratings" may cause permanent damage to the device. These are stress ratings  
only, and functional operation of the device at these or any other conditions beyond those indicated under "recommended operating  
conditions" is not implied. Exposure to absolute-maximum-rated conditions for extended periods may affect device reliability.  
3.2 RECOMMENDED OPERATING CONDITIONS  
TA = -40°C to 85°C; 2.4 V < VCC < 2.6 V; Typical values at TA = 25°C and VCC = 2.5 V (unless otherwise noted)  
PARAMETER  
Supply voltage  
TEST CONDITIONS  
MIN  
TYP  
MAX UNIT  
VCC  
ICC  
ISLP+  
ISLP  
IHIB  
VOL  
VOH(PP)  
VOH(OD)  
2.4  
2.5  
2.6  
V
Fuel gauge in NORMAL mode.  
ILOAD > Sleep Current  
Normal operating-mode current(1)  
Sleep+ operating mode current(1)  
Low-power storage-mode current(1)  
Hibernate operating-mode current(1)  
114  
58  
19  
4
µA  
Fuel gauge in SLEEP+ mode.  
ILOAD < Sleep Current  
µA  
µA  
Fuel gauge in SLEEP mode.  
ILOAD < Sleep Current  
Fuel gauge in HIBERNATE mode.  
ILOAD < Hibernate Current  
µA  
Output voltage, low (SCL, SDA, SOC_INT,  
BAT_LOW)  
IOL = 3 mA  
0.4  
V
Output voltage, high (BAT_LOW, BAT_GD)  
IOH = –1 mA  
VCC – 0.5  
VCC – 0.5  
V
V
External pullup resistor connected to  
VCC  
Output voltage, high (SDA, SCL, SOC_INT)  
Input voltage, low (SDA, SCL)  
Input voltage, low (BI/TOUT)  
Input voltage, high (SDA, SCL)  
–0.3  
–0.3  
1.2  
0.6  
0.6  
6
VIL  
BAT INSERT CHECK MODE active  
BAT INSERT CHECK MODE active  
V
VIH(OD)  
VCC  
+
Input voltage, high (BI/TOUT)  
1.2  
0.3  
VA1  
VA2  
VA3  
Ilkg  
Input voltage range (TS)  
VSS – 0.125  
VSS – 0.125  
VSS – 0.125  
2
5
V
V
Input voltage range (BAT)  
Input voltage range (SRP, SRN)  
Input leakage current (I/O pins)  
Power-up communication delay  
0.125  
0.3  
V
µA  
ms  
tPUCD  
250  
(1) Specified by design. Not production tested.  
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ELECTRICAL SPECIFICATIONS  
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bq27505-J2  
System-Side Impedance Track™ Fuel Gauge  
SLUS924APRIL 2009  
www.ti.com  
3.3 POWER-ON RESET  
TA = –40°C to 85°C, typical values at TA = 25°C and VBAT = 3.6 V (unless otherwise noted)  
PARAMETER  
TEST CONDITIONS  
MIN  
2.09  
45  
TYP  
2.20  
115  
MAX  
2.31  
185  
UNIT  
V
VIT+  
Positive-going battery voltage input at VCC  
Power-on reset hysteresis  
VHYS  
mV  
3.4 INTERNAL TEMPERATURE SENSOR CHARACTERISTICS  
TA = –40°C to 85°C, 2.4 V < VCC < 2.6 V; typical values at TA = 25°C and VCC = 2.5 V (unless otherwise noted)  
PARAMETER  
TEST CONDITIONS  
MIN  
TYP  
MAX  
UNIT  
GTEMP  
Temperature sensor voltage gain  
–2  
mV/°C  
3.5 HIGH-FREQUENCY OSCILLATOR  
TA = –40°C to 85°C, 2.4 V < VCC < 2.6 V; typical values at TA = 25°C and VCC = 2.5 V (unless otherwise noted)  
PARAMETER  
TEST CONDITIONS  
MIN  
TYP  
2.097  
0.38%  
0.38%  
0.38%  
2.5  
MAX  
UNIT  
fOSC  
Operating frequency  
MHz  
TA = 0°C to 60°C  
–2%  
–3%  
2%  
3%  
fEIO  
Frequency error(1) (2)  
Start-up time(3)  
TA = –20°C to 70°C  
TA = –40°C to 85°C  
–4.5%  
4.5%  
5
tSXO  
ms  
(1) The frequency error is measured from 2.097 MHz.  
(2) The frequency drift is included and measured from the trimmed frequency at VCC = 2.5 V, TA = 25°C.  
(3) The start-up time is defined as the time it takes for the oscillator output frequency to be within ±3% of typical oscillator frequency.  
3.6 LOW-FREQUENCY OSCILLATOR  
TA = –40°C to 85°C, 2.4 V < VCC < 2.6 V; typical values at TA = 25°C and VCC = 2.5 V (unless otherwise noted)  
PARAMETER  
TEST CONDITIONS  
MIN  
TYP  
32.768  
0.25%  
0.25%  
0.25%  
MAX UNIT  
kHz  
fLOSC  
Operating frequency  
TA = 0°C to 60°C  
–1.5%  
–2.5%  
–4%  
1.5%  
fLEIO  
Frequency error(1) (2)  
Start-up time(3)  
TA = –20°C to 70°C  
TA = –40°C to 85°C  
2.5%  
4%  
tLSXO  
500  
µs  
(1) The frequency drift is included and measured from the trimmed frequency at VCC = 2.5 V, TA = 25°C.  
(2) The frequency error is measured from 32.768 kHz.  
(3) The start-up time is defined as the time it takes for the oscillator output frequency to be within ±3% of typical oscillator frequency.  
3.7 INTEGRATING ADC (COULOMB COUNTER) CHARACTERISTICS  
TA = –40°C to 85°C, 2.4 V < VCC < 2.6 V; typical values at TA = 25°C and VCC = 2.5 V (unless otherwise noted)  
PARAMETER  
Input voltage range, V(SRN) and V(SRP)  
Conversion time  
TEST CONDITIONS  
VSR = V(SRN) – V(SRP)  
Single conversion  
MIN  
TYP  
MAX  
UNIT  
V
VSR  
–0.125  
0.125  
tSR_CONV  
1
s
Resolution  
14  
15  
bits  
µV  
VOS(SR)  
INL  
Input offset  
10  
Integral nonlinearity error  
Effective input resistance(1)  
Input leakage current(1)  
±0.007  
±0.034 % FSR  
MΩ  
ZIN(SR)  
Ilkg(SR)  
2.5  
0.3  
µA  
(1) Specified by design. Not tested in production.  
6
ELECTRICAL SPECIFICATIONS  
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bq27505-J2  
System-Side Impedance Track™ Fuel Gauge  
www.ti.com  
SLUS924APRIL 2009  
3.8 ADC (TEMPERATURE AND CELL MEASUREMENT) CHARACTERISTICS  
TA = –40°C to 85°C, 2.4 V < VCC < 2.6 V; typical values at TA = 25°C and VCC = 2.5 V (unless otherwise noted)  
PARAMETER  
Input voltage range  
Conversion time  
TEST CONDITIONS  
MIN  
TYP  
MAX  
1
UNIT  
V
VIN(ADC)  
–0.2  
tADC_CONV  
125  
15  
ms  
bits  
mV  
MΩ  
MΩ  
kΩ  
Resolution  
14  
VOS(ADC)  
ZADC1  
Input offset  
Effective input resistance (TS)(1)  
1
8
8
bq27505 not measuring cell voltage  
bq27505 measuring cell voltage  
ZADC2  
Effective input resistance (BAT)(1)  
Input leakage current(1)  
100  
Ilkg(ADC)  
0.3  
µA  
(1) Specified by design. Not tested in production.  
3.9 DATA FLASH MEMORY CHARACTERISTICS  
TA = –40°C to 85°C, 2.4 V < VCC < 2.6 V; typical values at TA = 25°C and VCC = 2.5 V (unless otherwise noted)  
PARAMETER  
Data retention(1)  
Flash-programming write cycles(1)  
Word programming time(1)  
Flash-write supply current(1)  
Data flash master erase time(1)  
Instruction flash master erase time(1)  
Flash page erase time(1)  
TEST CONDITIONS  
MIN  
10  
TYP  
MAX  
UNIT  
Years  
Cycles  
ms  
tDR  
20,000  
tWORDPROG  
ICCPROG  
tDFERASE  
tIFERASE  
2
5
10  
mA  
200  
200  
20  
ms  
ms  
tPGERASE  
ms  
(1) Specified by design. Not production tested  
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ELECTRICAL SPECIFICATIONS  
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bq27505-J2  
System-Side Impedance Track™ Fuel Gauge  
SLUS924APRIL 2009  
www.ti.com  
3.10 I2C-COMPATIBLE INTERFACE COMMUNICATION TIMING CHARACTERISTICS  
TA = –40°C to 85°C, 2.4 V < VCC < 2.6 V; typical values at TA = 25°C and VCC = 2.5 V (unless otherwise noted)  
PARAMETER  
TEST CONDITIONS  
MIN  
TYP  
MAX  
300  
UNIT  
ns  
tr  
SCL/SDA rise time  
tf  
SCL/SDA fall time  
300  
ns  
tw(H)  
SCL pulse duration (high)  
SCL pulse duration (low)  
Setup for repeated start  
Start to first falling edge of SCL  
Data setup time  
600  
1.3  
600  
600  
100  
0
ns  
tw(L)  
µs  
tsu(STA)  
td(STA)  
tsu(DAT)  
th(DAT)  
tsu(STOP)  
t(BUF)  
fSCL  
ns  
ns  
ns  
Data hold time  
ns  
Setup time for stop  
600  
66  
ns  
Bus free time between stop and start  
Clock frequency  
µs  
400  
kHz  
Figure 3-1. I2C-Compatible Interface Timing Diagrams  
8
ELECTRICAL SPECIFICATIONS  
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System-Side Impedance Track™ Fuel Gauge  
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SLUS924APRIL 2009  
4 GENERAL DESCRIPTION  
The bq27505 accurately predicts the battery capacity and other operational characteristics of a single  
Li-based rechargeable cell. It can be interrogated by a system processor to provide cell information, such  
as time-to-empty (TTE), time-to-full (TTF) and state-of-charge (SOC) as well as SOC interrupt signal to the  
host.  
Information is accessed through a series of commands, called Standard Commands. Further capabilities  
are provided by the additional Extended Commands set. Both sets of commands, indicated by the general  
format Command( ), are used to read and write information contained within the bq27505 control and  
status registers, as well as its data flash locations. Commands are sent from system to gauge using the  
bq27505’s I2C serial communications engine, and can be executed during application development, pack  
manufacture, or end-equipment operation.  
Cell information is stored in the bq27505 in non-volatile flash memory. Many of these data flash locations  
are accessible during application development. They cannot, generally, be accessed directly during  
end-equipment operation. Access to these locations is achieved by either use of the bq27505’s companion  
evaluation software, through individual commands, or through a sequence of data-flash-access  
commands. To access a desired data flash location, the correct data flash subclass and offset must be  
known.  
The bq27505 provides two 32-byte user-programmable data flash memory blocks: Manufacturer Info  
Block A and Manufacturer Info Block B. This data space is accessed through a data flash interface. For  
specifics on accessing the data flash, MANUFACTURER INFORMATION BLOCKS.  
The key to the bq27505’s high-accuracy gas gauging prediction is Texas Instrument’s proprietary  
Impedance Track™ algorithm. This algorithm uses cell measurements, characteristics, and properties to  
create state-of-charge predictions that can achieve less than 1% error across a wide variety of operating  
conditions and over the lifetime of the battery.  
The bq27505 measures charge/discharge activity by monitoring the voltage across a small-value series  
sense resistor (5 mto 20 mtyp.) located between the system’s Vss and the battery’s PACK- terminal.  
When a cell is attached to the bq27505, cell impedance is computed, based on cell current, cell  
open-circuit voltage (OCV), and cell voltage under loading conditions.  
The bq27505 external temperature sensing is optimized with the use of a high accuracy negative  
temperature coefficient (NTC) thermistor with R25 = 10.0kΩ ±1%. B25/85 = 3435K ± 1% (such as Semitec  
NTC 103AT). The bq27505 can also be configured to use its internal temperature sensor. When an  
external themistor is used, a 18.2k pull up resistor between BT/TOUT and TS pins is also required. The  
bq27505 uses temperature to monitor the battery-pack environment, which is used for fuel gauging and  
cell protection functionality.  
To minimize power consumption, the bq27505 has different power modes: NORMAL, SLEEP, SLEEP+,  
HIBERNATE, and BAT INSERT CHECK. The bq27505 passes automatically between these modes,  
depending upon the occurrence of specific events, though a system processor can initiate some of these  
modes directly. More details can be found in POWER MODES.  
NOTE  
FORMATTING CONVENTIONS IN THIS DOCUMENT:  
Commands: italics with parentheses and no breaking spaces, e.g., RemainingCapacitY( ).  
Data flash: italics, bold, and breaking spaces, e.g., Design Capacity  
Register bits and flags: brackets and italics, e.g., [TDA]  
Data flash bits: brackets, italics and bold, e.g., [LED1]  
Modes and states: ALL CAPITALS, e.g., UNSEALED mode.  
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GENERAL DESCRIPTION  
9
bq27505-J2  
System-Side Impedance Track™ Fuel Gauge  
SLUS924APRIL 2009  
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4.1 DATA COMMANDS  
4.1.1 STANDARD DATA COMMANDS  
The bq27505 uses a series of 2-byte standard commands to enable system reading and writing of battery  
information. Each standard command has an associated command-code pair, as indicated in Table 4-1.  
Because each command consists of two bytes of data, two consecutive I2C transmissions must be  
executed both to initiate the command function, and to read or write the corresponding two bytes of data.  
Additional options for transferring data, such as spooling, are described in Section of Communication.  
Standard commands are accessible in NORMAL operation. Read/Write permissions depend on the active  
access mode, SEALED or UNSEALED (for details on the SEALED and UNSEALED states, refer to  
Section 4.4, Access Modes.)  
Table 4-1. Standard Commands  
SEALED  
ACCESS  
UNSEALED  
ACCESS  
NAME  
COMMAND CODE  
UNITS  
Control( )  
CNTL  
AR  
0x00 / 0x01  
0x02 / 0x03  
0x04 / 0x05  
0x06 / 0x07  
0x08 / 0x09  
0x0a / 0x0b  
0x0c / 0x0d  
0x0e / 0x0f  
0x10 / 0x11  
0x12 / 0x13  
0x14 / 0x15  
0x16 / 0x17  
0x18 / 0x19  
0x1a / 0x1b  
0x1c / 0x1d  
0x1e / 0x1f  
0x20 / 0x21  
0x22 / 0x23  
0x24 / 0x25  
0x26 / 0x27  
0x28 / 0x29  
0x2c / 0x2d  
0x2e / 0x2f  
0x30 / 0x31  
N/A  
mA  
R/W  
R/W  
R
R/W  
R/W  
R/W  
R/W  
R/W  
R/W  
R/W  
R/W  
R/W  
R/W  
R/W  
R/W  
R/W  
R/W  
R/W  
R/W  
R/W  
R/W  
R/W  
R/W  
R/W  
R/W  
R/W  
R/W  
AtRate( )  
AtRateTimeToEmpty( )  
Temperature( )  
Voltage( )  
ARTTE  
TEMP  
VOLT  
FLAGS  
NAC  
FAC  
RM  
Minutes  
0.1 K  
mV  
R/W  
R
Flags( )  
N/A  
R
NominalAvailableCapacity( )  
FullAvailableCapacity( )  
RemainingCapacity( )  
FullChargeCapacity( )  
AverageCurrent( )  
mAh  
R
mAh  
R
mAh  
R
FCC  
AI  
mAh  
R
mA  
R
TimeToEmpty( )  
TTE  
Minutes  
Minutes  
mA  
R
TimeToFull( )  
TTF  
R
StandbyCurrent( )  
SI  
R
StandbyTimeToEmpty( )  
MaxLoadCurrent( )  
STTE  
MLI  
Minutes  
mA  
R
R
MaxLoadTimeToEmpty( )  
AvailableEnergy( )  
MLTTE  
AE  
Minutes  
mWh  
mW  
R
R
AveragePower( )  
AP  
R
TTEatConstantPower( )  
StateOfHealth()  
TTECP  
SOH  
SOC  
NIC  
Minutes  
% / num  
%
R
R
StateOfCharge( )  
R
NormalizedImpedanceCal( )  
InstaneousCurrent Reading( )  
mohm  
mA  
R
ICR  
R
10  
GENERAL DESCRIPTION  
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System-Side Impedance Track™ Fuel Gauge  
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4.1.1.1 Control( ): 0x00/0x01  
Issuing a Control( ) command requires a subsequent 2-byte subcommand. These additional bytes specify  
the particular control function desired. The Control( ) command allows the system to control specific  
features of the bq27505 during normal operation and additional features when the bq27505 is in different  
access modes, as described in Table 4-2.  
Table 4-2. Control( ) Subcommands  
CNTL  
DATA  
SEALED  
ACCESS  
CNTL FUNCTION  
DESCRIPTION  
CONTROL_STATUS  
DEVICE_TYPE  
FW_VERSION  
HW_VERSION  
DF_CHECKSUM  
PREV_MACWRITE  
CHEM_ID  
0x0000  
0x0001  
0x0002  
0x0003  
0x0004  
0x0007  
0x0008  
0x0009  
0x000a  
0x000b  
0x000c  
0x000d  
0x000e  
0x0011  
0x0012  
0x0013  
0x0014  
0x0020  
0x0021  
0x0023  
0x0040  
0x0041  
Yes  
Yes  
Yes  
Yes  
No  
Reports the status of DF checksum, hibernate, IT, etc.  
Reports the device type (eg: bq27505)  
Reports the firmware version on the device type  
Reports the hardware version of the device type  
Enables a data flash checksum to be generated and reports on a read  
Returns previous MAC command code  
Yes  
Yes  
No  
Reports the chemical identifier of the Impedance Track™ configuration  
Forces the device to measure and store the board offset  
Forces the device to measure the internal CC offset  
Forces the device to store the internal CC offset  
Request the gauge to take a OCV measurement  
Forces the BAT_DET bit set when the [BIE] bit is 0  
Forces the BAT_DET bit clear when the [BIE] bit is 0  
Forces CONTROL_STATUS [HIBERNATE] to 1  
Forces CONTROL_STATUS [HIBERNATE] to 0  
Forces CONTROL_STATUS [SNOOZE] to 1  
Forces CONTROL_STATUS [SNOOZE] to 0  
Places the bq27505 in SEALED access mode  
Enables the Impedance Track™ algorithm  
BOARD_OFFSET  
CC_INT_OFFSET  
WRITE_CC_OFFSET  
OCV_CMD  
No  
No  
Yes  
Yes  
Yes  
Yes  
Yes  
Yes  
Yes  
No  
BAT_INSERT  
BAT_REMOVE  
SET_HIBERNATE  
CLEAR_HIBERNATE  
SET_SLEEP+  
CLEAR_SLEEP+  
SEALED  
IT_ENABLE  
No  
IT_DISABLE  
No  
Disables the Impedance Track™ algorithm  
CAL_MODE  
No  
Places the bq27505 in calibration mode  
RESET  
No  
Forces a full reset of the bq27505  
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GENERAL DESCRIPTION  
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System-Side Impedance Track™ Fuel Gauge  
SLUS924APRIL 2009  
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4.1.1.1.1 CONTROL_STATUS: 0x0000  
Instructs the fuel gauge to return status information to control addresses 0x00/0x01. The status word  
includes the following information.  
Table 4-3. CONTROL_STATUS Bit Definitions  
bit7  
bit6  
bit5  
bit4  
bit3  
bit2  
bit1  
OCVCMDCOMP  
VOK  
bit0  
OCVFAIL  
QEN  
High byte  
Low byte  
FAS  
SS  
CSV  
CCA  
BCA  
INITCOMP  
HIBERNATE  
SNOOZE  
SLEEP  
LDMD  
RUP_DIS  
FAS = Status bit indicating the bq27505 is in FULL ACCESS SEALED state. Active when set.  
SS = Status bit indicating the bq27505 is in SEALED state. Active when set.  
CSV = Status bit indicating a valid data flash checksum has been generated. Active when set.  
CCA = Status bit indicating the bq27505 Coulomb Counter Calibration routine is active. The CCA routine will take place approximately 1  
minute after the initialization. Active when set.  
BCA = Status bit indicating the bq27505 board calibration routine is active. Active when set.  
OCVCMDCOMP = Status bit indicating the bq27505 has executed the OCV command. This bit can only be set with battery’s presence.  
True when set.  
OCVFAIL = Status bit indicating bq27505 OCV reading is failed due to the current. This bit can only be set with battery’s presence. True  
when set.  
INITCOMP = Initialization completion bit indicating the initialization completed. This bit can only be set with battery’s presence. True when  
set.  
HIBERNATE = Status bit indicating a request for entry into HIBERNATE from SLEEP mode. True when set. Default is 0.  
SNOOZE = Status bit indicating the bq27505 SLEEP+ mode is enabled. True when set.  
SLEEP = Status bit indicating the bq27505 is in SLEEP mode. True when set.  
LDMD = Status bit indicating the bq27505 Impedance Track™ algorithm is using constant-power mode. True when set. Default is 0  
(constant-current mode).  
RUP_DIS = Status bit indicating the bq27505 Ra table updates are disabled. Updates disabled when set.  
VOK = Status bit indicating the bq27505 voltages are okay for Qmax. True when set.  
QEN = Status bit indicating the bq27505 Qmax updates enabled. True when set.  
4.1.1.1.2 DEVICE_TYPE: 0x0001  
Instructs the fuel gauge to return the device type to addresses 0x00/0x01.  
4.1.1.1.3 FW_VERSION: 0x0002  
Instructs the fuel gauge to return the firmware version to addresses 0x00/0x01.  
4.1.1.1.4 HW_VERSION: 0x0003  
Instructs the fuel gauge to return the hardware version to addresses 0x00/0x01.  
4.1.1.1.5 DF_CHECKSUM: 0x0004  
Instructs the fuel gauge to compute the checksum of the data flash memory. The checksum value is  
written and returned to addresses 0x00/0x01 (UNSEALED mode only). The checksum will not be  
calculated in SEALED mode; however, the checksum value can still be read.  
4.1.1.1.6 PREV_MACWRITE: 0x0007  
Instructs the fuel gauge to return the previous command written to addresses 0x00/0x01.  
4.1.1.1.7 CHEM_ID: 0x0008  
Instructs the fuel gauge to return the chemical identifier for the Impedance Track™ configuration to  
addresses 0x00/0x01.  
4.1.1.1.8 BOARD_OFFSET: 0X0009  
Instructs the fuel gauge to compute the coulomb counter offset with internal short and then without internal  
short applied across the sensing resistor (SR) inputs. The difference between the two measurements is  
the board offset. After a delay of approximately 32 seconds, this offset value is returned to addresses  
0x00/0x01 and written to data flash. The CONROL STATUS [BCA] is also set. The user must prevent any  
charge or discharge current from flowing during the process. This function is only available when the fuel  
gauge is UNSEALED. When SEALED, this command only reads back the board-offset value stored in  
data flash.  
12  
GENERAL DESCRIPTION  
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4.1.1.1.9 CC_INT_OFFSET: 0X000A  
Control data of 0x000a instructs the fuel gauge to compute the coulomb counter offset with internal short  
applied across the SR inputs. The offset value is returned to addresses 0x00/0x01, after a delay of  
approximately 16 seconds. This function is only available when the fuel gauge is UNSEALED. When  
SEALED, this command only reads back the CC_INT_OFFSET value stored in data flash.  
4.1.1.1.10 WRITE_OFFSET: 0X000B  
Control data of 0x000b causes the fuel gauge to write the coulomb counter offset to data flash.  
4.1.1.1.11 OCV CMD: 0X000C  
This command is to request the gauge to take a OCV reading. This command can only be issued after the  
[INICOMP] has been set, indicating the initialization has been completed. The OCV measurement take  
place at the beginning of the next repeated 1s firmware synchronization clock. During the same time  
period, the SOC_INT will pulse. The host should use this signal to reduce the load current below the C/20  
in 8ms for a valid OCV reading. The OCV command [OCVFAIL] bit will be set if the OCV_CMD is issued  
when [CHG_INH] is set.  
4.1.1.1.12 BAT_INSERT: 0X000D  
This command is to force the BAT_DET bit to be set when the battery insertion detection is disabled.  
When the BIE is set to 0, the battery insertion detection is disabled. The gauge relies on the host to inform  
the battery insertion with this command to set the BAT_DET bit.  
4.1.1.1.13 BAT_REMOVE: 0X000E  
This command is to force the BAT_DET bit to be clear when the battery insertion detection is disabled.  
When the BIE is set to 0, the battery insertion detection is disabled. The gauge relies on the host to inform  
the battery removal with this command to clear the BAT_DET bit.  
4.1.1.1.14 SET_HIBERNATE: 0x0011  
Instructs the fuel gauge to force the CONTROL_STATUS [HIBERNATE] bit to 1. This will allow the gauge  
to enter the HIBERNATE power mode after the transition to SLEEP power state is detected. The  
[HIBERNATE] bit is automatically cleared upon exiting from HIBERNATE mode.  
4.1.1.1.15 CLEAR_HIBERNATE: 0x0012  
Instructs the fuel gauge to force the CONTROL_STATUS [HIBERNATE] bit to 0. This prevents the gauge  
from entering the HIBERNATE power mode after the transition to the SLEEP power state is detected. It  
can also be used to force the gauge out of HIBERNATE mode.  
4.1.1.1.16 ENABLE SLEEP+ MODE: 0X0013  
Instructs the fuel gauge to set the CONTROL_STATUS [SNOOZE] bit to 1. This will enable the SLEEP+  
mode. The gauge will enter SLEEP+ power mode after the transition conditions are meet.  
4.1.1.1.17 DISABLE SLEEP+ MODE: 0X0014  
Instructs the fuel gauge to set the CONTROL_STATUS [SNOOZE] bit to 0. This will disable the SLEEP+  
mode. The gauge will exit from the SLEEP+ power mode after the SNOOZ bit is cleared.  
4.1.1.1.18 SEALED: 0x0020  
Instructs the fuel gauge to transition from the UNSEALED state to the SEALED state. The fuel gauge must  
always be set to the SEALED state for use in end equipment.  
4.1.1.1.19 IT_ENABLE: 0x0021  
This command forces the fuel gauge to begin the Impedance Track™ algorithm, sets the IT Enable to  
0x01 and causes the [VOK] and [QEN] flags to be set in the CONTROL_STATUS register. [VOK] is  
cleared if the voltages are not suitable for a Qmax update. This command is only available when the fuel  
gauge is UNSEALED.  
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System-Side Impedance Track™ Fuel Gauge  
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4.1.1.1.20 IT_DISABLE: 0x0023  
This command disables the fuel gauge the Impedance Track™ algorithm, clears the IT Enable to 0x00  
and causes the [QEN] flags to be cleared in the CONTROL_STATUS register. This command is only  
available when the fuel gauge is UNSEALED.  
4.1.1.1.21 CAL_MODE: 0X0040  
This command instructs the fuel gauge to enter calibration mode. This command is only available when  
the fuel gauge is UNSEALED.  
4.1.1.1.22 RESET: 0x0041  
This command instructs the fuel gauge to perform a full reset. This command is only available when the  
fuel gauge is UNSEALED.  
4.1.1.2 AtRate( ): 0x02/0x03  
The AtRate( ) read-/write-word function is the first half of a two-function command set used to set the  
AtRate value used in calculations made by the AtRateTimeToEmpty( ) function. The AtRate( ) units are in  
mA.  
The AtRate( ) value is a signed integer, with negative values interpreted as a discharge current value. The  
AtRateTimeToEmpty( ) function returns the predicted operating time at the AtRate value of discharge. The  
default value for AtRate( ) is zero and forces AtRateTimeToEmpty( ) to return 65,535. Both the AtRate( )  
and AtRateTimeToEmpty( ) commands must only be used in NORMAL mode.  
4.1.1.3 AtRateTimeToEmpty( ): 0x04/0x05  
This read-word function returns an unsigned integer value of the predicted remaining operating time if the  
battery is discharged at the AtRate( ) value in minutes with a range of 0 to 65,534. A value of 65,535  
indicates AtRate( ) = 0. The fuel gauge updates AtRateTimeToEmpty( ) within 1 s after the system sets the  
AtRate( ) value. The fuel gauge automatically updates AtRateTimeToEmpty( ) based on the AtRate( )  
value every 1 s. Both the AtRate( ) and AtRateTimeToEmpty( ) commands must only be used in NORMAL  
mode.  
4.1.1.4 Temperature( ): 0x06/0x07  
This read-/write-word function returns an unsigned integer value of the temperature in units of 0.1 K  
measured by the fuel gauge. Write temperature to the gauge when the [WRTEMP] is 1.  
4.1.1.5 Voltage( ): 0x08/0x09  
This read-word function returns an unsigned integer value of the measured cell-pack voltage in mV with a  
range of 0 to 6000 mV.  
14  
GENERAL DESCRIPTION  
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4.1.1.6 Flags( ): 0x0a/0x0b  
This read-word function returns the contents of the fuel-gauge status register, depicting the current  
operating status.  
Table 4-4. Flags Bit Definitions  
bit7  
OTC  
bit6  
OTD  
bit5  
bit4  
bit3  
bit2  
bit1  
FC  
bit0  
CHG  
DSG  
High byte  
Low byte  
CHG_INH  
BAT_DET  
XCHG  
SOC1  
OCV_GD  
WAIT_ID  
SYSDOWN  
OTC = Overtemperature in charge condition is detected. True when set.  
OTD = Overtemperature in discharge condition is detected. True when set.  
CHG_INH = Charge inhibit: unable to begin charging (temperature outside the range [Charge Inhibit Temp Low, Charge Inhibit Temp  
High]). True when set.  
XCHG = Charge suspend alert (temperature outside the range [Suspend Temperature Low, Suspend Temperature High]). True when  
set.  
FC = Full-charged condition reached. Set when charge termination condition is met. (RMFCC=1; Set FC_Set % = -1% when RMFCC = 0).  
True when set  
CHG = (Fast) charging allowed. True when set.  
OCV_GD = Good OCV measurement taken. True when set.  
WAIT_ID = Waiting to identify inserted battery. True when set.  
BAT_DET = Battery detected. True when set.  
SOC1 = State-of-charge threshold 1 (SOC1 Set) reached. The flag is enabled when BL_INT bit in Operation Configuration B is set. True  
when set.  
SysDown = SystemDown bit indicating the system shut down. True when set  
DSG = Discharging detected. True when set.  
4.1.1.7 NominalAvailableCapacity( ): 0x0c/0x0d  
This read-only command pair returns the uncompensated (less than C/20 load) battery capacity  
remaining. Units are mAh.  
4.1.1.8 FullAvailableCapacity( ): 0x0e/0x0f  
This read-only command pair returns the uncompensated (less than C/20 load) capacity of the battery  
when fully charged. Units are mAh. FullAvailableCapacity( ) is updated at regular intervals, as specified by  
the IT algorithm.  
4.1.1.9 RemainingCapacity( ): 0x10/0x11  
This read-only command pair returns the compensated battery capacity remaining. Units are mAh.  
4.1.1.10 FullChargeCapacity( ): 0x12/13  
This read-only command pair returns the compensated capacity of the battery when fully charged. Units  
are mAh. FullChargeCapacity( ) is updated at regular intervals, as specified by the IT algorithm.  
4.1.1.11 AverageCurrent( ): 0x14/0x15  
This read-only command pair returns a signed integer value that is the average current flow through the  
sense resistor. It is updated every 1 second. Units are mA.  
4.1.1.12 TimeToEmpty( ): 0x16/0x17  
This read-only function returns an unsigned integer value of the predicted remaining battery life at the  
present rate of discharge, in minutes. A value of 65,535 indicates battery is not being discharged.  
4.1.1.13 TimeToFull( ): 0x18/0x19  
This read-only function returns an unsigned integer value of predicted remaining time until the battery  
reaches full charge, in minutes, based upon AverageCurrent( ). The computation accounts for the taper  
current time extension from the linear TTF computation based on a fixed AverageCurrent( ) rate of charge  
accumulation. A value of 65,535 indicates the battery is not being charged.  
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bq27505-J2  
System-Side Impedance Track™ Fuel Gauge  
SLUS924APRIL 2009  
www.ti.com  
4.1.1.14 StandbyCurrent( ): 0x1a/0x1b  
This read-only function returns a signed integer value of the measured standby current through the sense  
resistor. The StandbyCurrent( ) is an adaptive measurement. Initially it reports the standby current  
programmed in Initial Standby, and after spending several seconds in standby, reports the measured  
standby current.  
The register value is updated every 1 second when the measured current is above the Deadband and is  
less than or equal to 2 × Initial Standby. The first and last values that meet this criteria are not averaged  
in, since they may not be stable values. To approximate a 1 minute time constant, each new  
StandbyCurrent( ) value is computed by taking approximate 93% weight of the last standby current and  
approximate 7% of the current measured average current.  
4.1.1.15 StandbyTimeToEmpty( ): 0x1c/0x1d  
This read-only function returns an unsigned integer value of the predicted remaining battery life at the  
standby rate of discharge, in minutes. The computation uses Nominal Available Capacity (NAC), the  
uncompensated remaining capacity, for this computation. A value of 65,535 indicates battery is not being  
discharged.  
4.1.1.16 MaxLoadCurrent( ): 0x1e/0x1f  
This read-only function returns a signed integer value, in units of mA, of the maximum load conditions.  
The MaxLoadCurrent( ) is an adaptive measurement which is initially reported as the maximum load  
current programmed in Initial Max Load Current. If the measured current is ever greater than Initial Max  
Load Current, then MaxLoadCurrent( ) updates to the new current. MaxLoadCurrent( ) is reduced to the  
average of the previous value and Initial Max Load Current whenever the battery is charged to full after a  
previous discharge to an SOC less than 50%. This prevents the reported value from maintaining an  
unusually high value.  
4.1.1.17 MaxLoadTimeToEmpty( ): 0x20/0x21  
This read-only function returns an unsigned integer value of the predicted remaining battery life at the  
maximum load current discharge rate, in minutes. A value of 65,535 indicates that the battery is not being  
discharged.  
4.1.1.18 AvailableEnergy( ): 0x22/0x23  
This read-only function returns an unsigned integer value of the predicted charge or energy remaining in  
the battery. The value is reported in units of mWh.  
4.1.1.19 AveragePower( ): 0x24/0x25  
This read-only function returns an signed integer value of the average power during battery charging and  
discharging. It is negative during discharge and positive during charge. A value of 0 indicates that the  
battery is not being discharged. The value is reported in units of mW.  
4.1.1.20 TimeToEmptyAtConstantPower( ): 0x26/0x27  
This read-only function returns an unsigned integer value of the predicted remaining operating time if the  
battery is discharged at the AveragePower( ) value in minutes. A value of 65,535 indicates  
AveragePower( ) = 0. The fuel gauge automatically updates TimeToEmptyatContantPower( ) based on the  
AveragePower( ) value every 1 s.  
16  
GENERAL DESCRIPTION  
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4.1.1.21 StateofHealth( ): 0x28/0x29  
0x28 SOH percentage: this read-only function returns an unsigned integer value, expressed as a  
percentage of the ration of predicted FCC(25°C, SOH LoadI) over the DesignCapacity(). The FCC(25°C,  
SOH LoadI) is the calculated full charge capacity at 25°C and the SOH LoadI which is specified in the  
data flash. The range of the returned SOH percentage is 0x00 to 0x64, indicating 0 to 100%  
correspondingly.  
0x29 SOH Status: this read-only function returns an unsigned integer value, indicating the status of the  
SOH percentage. The meanings of the returned value are:  
0x00: SOH not valid (initialization)  
0x01: Instant SOH value ready  
0x02: Initial SOH value ready  
Calculation based on uncompensated Qmax  
Updated at first grid point update after cell insertion  
0x03: SOH value ready  
Utilize the updated Qmax update  
Calculation based on compensated Qmax  
Updated after complete charge and relax is complete  
0x04-0xFF: Reserved  
4.1.1.22 StateOfCharge( ): 0x2c/0x2d  
This read-only function returns an unsigned integer value of the predicted remaining battery capacity  
expressed as a percentage of FullChargeCapacity( ), with a range of 0 to 100%.  
4.1.1.23 NormalizedImpedanceCal( ): 0x2e/0x2f  
This read-only function returns an unsigned integer value of the calculated normalized impedance to 0°C  
at the current Depth of Discharge, with the unit of m.  
4.1.1.24 InstaneousCurrent Reading( ) 0x30/0x31  
This read-only function returns a signed integer value that is the instantaneous current flow through the  
sense resistor. The conversion time is 125ms. It is updated every 1 second. Units are mA.  
4.1.2 EXTENDED DATA COMMANDS  
Extended commands offer additional functionality beyond the standard set of commands. They are used in  
the same manner; however, unlike standard commands, extended commands are not limited to 2-byte  
words. The number of commands bytes for a given extended command ranges in size from single to  
multiple bytes, as specified in Table 4-5.  
Table 4-5. Extended Data Commands  
COMMAND  
CODE  
SEALED  
UNSEALED  
NAME  
UNITS  
ACCESS(1) (2)  
ACCESS(1) (2)  
Reserved  
RSVD  
DCAP  
0x34...0x3b  
0x3c / 0x3d  
0x3e  
N/A  
mAh  
N/A  
N/A  
N/A  
N/A  
N/A  
N/A  
N/A  
R
R
DesignCapacity( )  
DataFlashClass( ) (2)  
DataFlashBlock( ) (2)  
Authenticate( )/BlockData( )  
R
R
DFCLS  
DFBLK  
A/DF  
N/A  
R/W  
R/W  
R/W  
R
R/W  
R/W  
R/W  
R/W  
R/W  
R/W  
R/W  
0x3f  
0x400x53  
0x54  
AuthenticateCheckSum( )/BlockData( )  
BlockData( )  
ACKS/DFD  
DFD  
0x400x5f  
0x60  
BlockDataCheckSum( )  
BlockDataControl( )  
DFDCKS  
DFDCNTL  
R/W  
N/A  
0x61  
(1) SEALED and UNSEALED states are entered via commands to Control() 0x00/0x01.  
(2) In sealed mode, data flash CANNOT be accessed through commands 0x3e and 0x3f.  
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Table 4-5. Extended Data Commands (continued)  
COMMAND  
CODE  
SEALED  
UNSEALED  
NAME  
UNITS  
ACCESS(1) (2)  
ACCESS(1) (2)  
DeviceNameLength( )  
DeviceName( )  
DNAMELEN  
DNAME  
0x62  
0x63...0x69  
0x6a  
N/A  
N/A  
N/A  
N/A  
R
R
R
R
R
R
R
R
ApplicationStatus( )  
Reserved  
APPSTAT  
RSVD  
0x6b...0x7f  
4.1.2.1 DesignCapacity( ): 0x3c/0x3d  
SEALED and UNSEALED Access: This command returns the value is stored in Design Capacity and is  
expressed in mAh. This is intended to be the theoretical or nominal capacity of a new pack, but has no  
bearing on the operation of the fuel gauge functionality.  
4.1.2.2 DataFlashClass( ): 0x3e  
UNSEALED Access: This command sets the data flash class to be accessed. The class to be accessed  
must be entered in hexadecimal.  
SEALED Access: This command is not available in SEALED mode.  
4.1.2.3 DataFlashBlock( ): 0x3f  
UNSEALED Access: This command sets the data flash block to be accessed. When 0x00 is written to  
BlockDataControl( ), DataFlashBlock( ) holds the block number of the data flash to be read or written.  
Example: writing a 0x00 to DataFlashBlock( ) specifies access to the first 32-byte block, a 0x01 specifies  
access to the second 32-byte block, and so on.  
SEALED Access: This command directs which data flash block is accessed by the BlockData( )  
command. Writing a 0x00 to DataFlashBlock( ) specifies that the BlockData( ) command transfers  
authentication data. Issuing a 0x01 or 0x02 instructs the BlockData( ) command to transfer Manufacturer  
Info Block A or B, respectively.  
4.1.2.4 BlockData( ): 0x400x5f  
UNSEALED Access: This data block is the remainder of the 32 byte data block when accessing data  
flash.  
SEALED Access: This data block is the remainder of the 32 byte data block when accessing  
Manufacturer Block Info A or B.  
4.1.2.5 BlockDataChecksum( ): 0x60  
UNSEALED Access: This byte contains the checksum on the 32 bytes of block data read or written to  
data flash. The least-significant byte of the sum of the data bytes written must be complemented  
([255 – x], for x the least-significant byte) before being written to 0x60.  
SEALED Access: This byte contains the checksum for the 32 bytes of block data written to Manufacturer  
Info Block A or B. The least-significant byte of the sum of the data bytes written must be complemented  
([255 – x], for x the least-significant byte) before being written to 0x60.  
4.1.2.6 BlockDataControl( ): 0x61  
UNSEALED Access: This command is used to control data flash access mode. Writing 0x00 to this  
command enables BlockData( ) to access general data flash. Writing a 0x01 to this command enables  
SEALED mode operation of DataFlashBlock( ).  
SEALED Access: This command is not available in SEALED mode.  
4.1.2.7 DeviceNameLength( ): 0x62  
UNSEALED and SEALED Access: This byte contains the length of the Device Name.  
18  
GENERAL DESCRIPTION  
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4.1.2.8 DeviceName( ): 0x630x69  
UNSEALED and SEALED Access: This block contains the device name that is programmed in Device  
Name.  
4.1.2.9 ApplicationStatus( ): 0x6a  
This byte function allows the system to read the bq27505 Application Status data flash location. See  
Table 6-1 for specific bit definitions.  
4.1.2.10 Reserved — 0x6b–0x7f  
4.2 DATA FLASH INTERFACE  
4.2.1 ACCESSING THE DATA FLASH  
The bq27505 data flash is a non-volatile memory that contains bq27505 initialization, default, cell status,  
calibration, configuration, and user information. The data flash can be accessed in several different ways,  
depending on what mode the bq27505 is operating in and what data is being accessed.  
Commonly accessed data flash memory locations, frequently read by a system, are conveniently  
accessed through specific instructions, already described in Section 4.1, DATA COMMANDS. These  
commands are available when the bq27505 is either in UNSEALED or SEALED modes.  
Most data flash locations, however, are only accessible in UNSEALED mode by use of the bq27505  
evaluation software or by data flash block transfers. These locations should be optimized and/or fixed  
during the development and manufacture processes. They become part of a golden image file and can  
then be written to multiple battery packs. Once established, the values generally remain unchanged during  
end-equipment operation.  
To access data flash locations individually, the block containing the desired data flash location(s) must be  
transferred to the command register locations, where they can be read to the system or changed directly.  
This is accomplished by sending the set-up command BlockDataControl( ) (0x61) with data 0x00. Up to 32  
bytes of data can be read directly from the BlockData( ) (0x400x5f), externally altered, then rewritten to  
the BlockData( ) command space. Alternatively, specific locations can be read, altered, and rewritten if  
their corresponding offsets are used to index into the BlockData( ) command space. Finally, the data  
residing in the command space is transferred to data flash, once the correct checksum for the whole block  
is written to BlockDataChecksum( ) (0x60).  
Occasionally, a data flash CLASS will be larger than the 32-byte block size. In this case, the  
DataFlashBlock( ) command is used to designate which 32-byte block the desired locations reside in. The  
correct command address is then given by 0x40 + offset modulo 32. For example, to access Terminate  
Voltage in the Gas Gauging class, DataFlashClass( ) is issued 80 (0x50) to set the class. Because the  
offset is 50, it must reside in the second 32-byte block. Hence, DataFlashBlock( ) is issued 0x01 to set the  
block offset, and the offset used to index into the BlockData( ) memory area is 0x40 + 50 modulo 32 =  
0x40 + 18 = 0x40 + 0x12 = 0x52.  
Reading and writing subclass data are block operations up to 32 bytes in length. If during a write the data  
length exceeds the maximum block size, then the data is ignored.  
None of the data written to memory are bounded by the bq27505 – the values are not rejected by the fuel  
gauge. Writing an incorrect value may result in hardware failure due to firmware program interpretation of  
the invalid data. The written data is persistent, so a power-on reset does resolve the fault.  
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4.3 MANUFACTURER INFORMATION BLOCKS  
The bq27505 contains 96 bytes of user programmable data flash storage: Manufacturer Info Block A,  
and Manufacturer Info Block B. The method for accessing these memory locations is slightly different,  
depending on whether the device is in UNSEALED or SEALED modes.  
When in UNSEALED mode and when and 0x00 has been written to BlockDataControl( ), accessing the  
manufacturer information blocks is identical to accessing general data flash locations. First, a  
DataFlashClass( ) command is used to set the subclass, then a DataFlashBlock( ) command sets the  
offset for the first data flash address within the subclass. The BlockData( ) command codes contain the  
referenced data flash data. When writing the data flash, a checksum is expected to be received by  
BlockDataChecksum( ). Only when the checksum is received and verified is the data actually written to  
data flash.  
As an example, the data flash location for Manufacturer Info Block B is defined as having a Subclass =  
58 and an Offset = 32 through 63 (32 byte block). The specification of Class = System Data is not needed  
to address Manufacturer Info Block B, but is used instead for grouping purposes when viewing data  
flash info in the bq27505 evaluation software.  
When in SEALED mode or when 0x01 BlockDataControl( ) does not contain 0x00, data flash is no longer  
available in the manner used in UNSEALED mode. Rather than issuing subclass information, a  
designated Manufacturer Information Block is selected with the DataFlashBlock( ) command. Issuing a  
0x01 or 0x02 with this command causes the corresponding information block (A or B, respectively) to be  
transferred to the command space 0x400x5f for editing or reading by the system. Upon successful  
writing of checksum information to BlockDataChecksum( ), the modified block is returned to data flash.  
Note: Manufacturer Info Block A is read-only when in SEALED mode.  
20  
GENERAL DESCRIPTION  
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4.4 ACCESS MODES  
The bq27505 provides three security modes (FULL ACCESS, UNSEALED, and SEALED) that control  
data flash access permissions, according to Table 4-6. Data Flash refers to those data flash locations,  
specified in Table 4-7, that are accessible to the user. Manufacture Information refers to the three 32-byte  
blocks.  
Table 4-6. Data Flash Access  
Security Mode  
FULL ACCESS  
UNSEALED  
SEALED  
Data Flash  
R/W  
Manufacture Information  
R/W  
R/W  
R/W  
None  
R(A); R/W(B)  
Although FULL ACCESS and UNSEALED modes appear identical, only FULL ACCESS allows the  
bq27505 to write access-mode transition keys.  
4.5 SEALING/UNSEALING DATA FLASH  
The bq27505 implements a key-access scheme to transition between SEALED, UNSEALED, and  
FULL-ACCESS modes. Each transition requires that a unique set of two keys be sent to the bq27505 via  
the Control( ) control command. The keys must be sent consecutively, with no other data being written to  
the Control( ) register in between. Note that to avoid conflict, the keys must be different from the codes  
presented in the CNTL DATA column of Table 4-2 subcommands.  
When in SEALED mode, the CONTROL_STATUS [SS] bit is set, but when the UNSEAL keys are  
correctly received by the bq27505, the [SS] bit is cleared. When the full-access keys are correctly  
received, then the CONTROL_STATUS [FAS] bit is cleared.  
Both the sets of keys for each level are 2 bytes each in length and are stored in data flash. The UNSEAL  
key (stored at Unseal Key 0 and Unseal Key 1) and the FULL-ACCESS key (stored at Full-Access Key  
0 and Full-Access Key 1) can only be updated when in FULL-ACCESS mode. The order of the keys is  
Key 1 followed by Key 0. The order of the bytes entered through the Control( ) command is the reverse of  
what is read from the part. For example, if the Key 1 and Key 0 of the Unseal Keys returns 0x1234 and  
0x5678, then the Control( ) should supply 0x3412 and 0x7856 to unseal the part.  
4.6 DATA FLASH SUMMARY  
Table 4-7 summarizes the data flash locations available to the user, including their default, minimum, and  
maximum values.  
Table 4-7. Data Flash Summary  
Subclass  
ID  
Data  
Type  
Min  
Value  
Max  
Value  
Default  
Value  
Class  
Subclass  
Offset  
Name  
Units  
Configuration  
Configuration  
Configuration  
Configuration  
Configuration  
Configuration  
2
2
2
2
2
2
Safety  
Safety  
Safety  
Safety  
Safety  
Safety  
0
2
3
5
7
8
OT Chg  
I2  
U1  
I2  
0
0
0
0
0
0
1200  
60  
550  
2
0.1°C  
s
OT Chg Time  
OT Chg Recovery  
OT Dsg  
1200  
1200  
60  
500  
600  
2
0.1°C  
0.1°C  
s
I2  
OT Dsg Time  
OT Dsg Recovery  
U1  
I2  
1200  
550  
0.1°C  
Charge Inhibit  
Temp Low  
Configuration  
Configuration  
Configuration  
32  
32  
32  
0
2
4
Charge Inhibit Temp Low  
Charge Inhibit Temp High  
Temp Hys  
I2  
I2  
I2  
–400  
–400  
0
1200  
1200  
100  
0
0.1°C  
0.1°C  
0.1°C  
Charge Inhibit  
Temp High  
450  
50  
Temp  
Hysteresis  
Configuration  
Configuration  
34  
34  
Charge  
Charge  
2
4
Charging Voltage  
Delta Temp  
I2  
I2  
0
0
4600  
500  
4200  
50  
mV  
0.1°C  
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Table 4-7. Data Flash Summary (continued)  
Subclass  
ID  
Data  
Type  
Min  
Value  
Max  
Value  
Default  
Value  
Class  
Subclass  
Offset  
Name  
Units  
Configuration  
Configuration  
34  
34  
Charge  
Charge  
6
8
Suspend Low Temp  
Suspend High Temp  
I2  
I2  
–400  
–400  
1200  
1200  
-50  
0.1°C  
0.1°C  
550  
Charge  
Termination  
Configuration  
Configuration  
Configuration  
Configuration  
Configuration  
Configuration  
36  
36  
36  
36  
36  
36  
2
4
Taper Current  
I2  
I2  
0
0
1000  
1000  
1000  
60  
100  
25  
mA  
Charge  
Termination  
Minimum Taper Charge  
Taper Voltage  
0.01mAh  
Charge  
Termination  
6
I2  
0
100  
40  
mV  
s
Charge  
Termination  
8
Current Taper Window  
FC Set %  
U1  
I1  
0
Charge  
Termination  
11  
12  
–1  
–1  
100  
100  
98  
%
%
Charge  
Termination  
FC Clear %  
I1  
100  
Configuration  
Configuration  
Configuration  
Configuration  
Configuration  
Configuration  
Configuration  
48  
48  
48  
48  
48  
48  
48  
Data  
Data  
Data  
Data  
Data  
Data  
Data  
4
Initial Standby Current  
Initial Max Load Current  
CC Threshold  
I1  
I2  
–128  
0
0
–10  
–500  
mA  
mA  
5
–32,767  
7
I2  
100  
32,767  
65,535  
0
900  
mAh  
mAh  
mA  
10  
12  
14  
16  
Design Capacity  
SOH Load  
I2  
0
1000  
I2  
–32,767  
–400  
250(1)  
Default Temp  
I2  
0
x
1000  
x
0.1°C  
Device name  
S8  
bq27505  
Configuration  
Configuration  
Configuration  
Configuration  
Configuration  
Configuration  
49  
49  
49  
49  
49  
49  
Discharge  
Discharge  
Discharge  
Discharge  
Discharge  
Discharge  
0
1
SOC1 Set Threshold  
U1  
U1  
I2  
0
0
0
0
0
0
255  
255  
150  
175  
3150  
2
mAh  
mAh  
mV  
s
SOC1 Clear Threshold  
SysDown Set Volt Threshold  
SysDown Set Volt Time  
SysDown Clear Volt Threshold  
Final Voltage  
5
4200  
60  
7
U1  
I2  
8
4200  
4200  
3400  
3000  
mV  
mV  
15  
U2  
Configuration  
System Data  
System Data  
System Data  
56  
57  
57  
57  
Integrity Data  
1
0
Full Reset Counter  
Block A 0  
U1  
H1  
H1  
H1  
0
255  
0xff  
0xff  
0xff  
0
num  
Manufacturer  
Info  
0x00  
0x00  
0x00  
0x00  
0x00  
0x00  
Manufacturer  
Info  
1–31  
32–63  
Block A [10–31]  
Block B [0–31]  
Manufacturer  
Info  
Configuration  
Configuration  
Configuration  
Configuration  
Configuration  
64  
64  
64  
64  
64  
Registers  
Registers  
Registers  
Registers  
Registers  
0
7
Operation Configuration  
SOC Delta  
H2  
U1  
U1  
U2  
H1  
0x0000  
0xffff  
25  
0x0973  
%
0
0
1
4
I2C Timeout  
8
7
num  
5µs  
9
DFWrIndWaitTime  
OpConfigB  
0
65535  
0xff  
0
11  
0x00  
0x50  
Configuration  
Configuration  
Configuration  
Configuration  
68  
68  
68  
68  
Power  
Power  
Power  
Power  
0
7
Flash Update OK Voltage  
Sleep Current  
I2  
I2  
0
0
4200  
100  
2800  
10  
mV  
mA  
mA  
mV  
16  
18  
Hibernate Current  
Hibernate Voltage  
U2  
U2  
0
700  
8
2400  
3000  
2550  
Gas Gauging  
Gas Gauging  
Gas Gauging  
80  
80  
80  
IT Cfg  
IT Cfg  
IT Cfg  
0
1
Load Select  
Load Mode  
Ra Filter  
U1  
U1  
U2  
0
0
0
255  
255  
1
0
25  
1000  
800  
num  
Min % Passed Charge for  
Qmax  
Gas Gauging  
80  
IT Cfg  
45  
U1  
1
100  
37  
%
Gas Gauging  
Gas Gauging  
80  
80  
IT Cfg  
IT Cfg  
49  
50  
Qmax Filter  
U1  
I2  
0
255  
96  
num  
mV  
Terminate Voltage  
–32,768  
32,767  
3420  
(1) Display as the value EVSW displayed. Data Flash value is different.  
22 GENERAL DESCRIPTION  
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Table 4-7. Data Flash Summary (continued)  
Subclass  
ID  
Data  
Type  
Min  
Value  
Max  
Value  
Default  
Value  
Class  
Subclass  
Offset  
Name  
User Rate-mA  
Units  
Gas Gauging  
Gas Gauging  
Gas Gauging  
Gas Gauging  
80  
80  
80  
80  
IT Cfg  
IT Cfg  
IT Cfg  
IT Cfg  
55  
57  
59  
61  
I2  
I2  
I2  
I2  
–2000  
–100  
–350  
0
0
0
0
mA  
mW  
User Rate-mW  
–7200  
Reserve Cap-mAh  
Reserve Cap-mWh  
0
0
9000  
mAh  
mWh  
14,000  
Current  
Thresholds  
Gas Gauging  
Gas Gauging  
Gas Gauging  
Gas Gauging  
Gas Gauging  
Gas Gauging  
81  
81  
81  
81  
81  
81  
0
2
4
6
8
9
Dsg Current Threshold  
Chg Current Threshold  
Quit Current  
I2  
I2  
0
0
0
0
0
0
2000  
2000  
1000  
8191  
255  
60  
75  
40  
60  
60  
1
mA  
mA  
mA  
s
Current  
Thresholds  
Current  
Thresholds  
I2  
Current  
Thresholds  
Dsg Relax Time  
U2  
U1  
U1  
Current  
Thresholds  
Chg Relax Time  
Quit Relax Time  
s
Current  
Thresholds  
63  
s
Gas Gauging  
Gas Gauging  
Gas Gauging  
Gas Gauging  
Gas Gauging  
Gas Gauging  
Gas Gauging  
Gas Gauging  
Gas Gauging  
Gas Gauging  
Gas Gauging  
Gas Gauging  
82  
82  
82  
82  
82  
82  
82  
82  
82  
82  
82  
82  
State  
State  
State  
State  
State  
State  
State  
State  
State  
State  
State  
State  
0
1
IT Enable  
H1  
H1  
I2  
0x00  
0x03  
0xff  
0x00  
0x00  
1000  
0
Application Status  
Qmax 0  
0x00  
2
0
32,767  
65,535  
0x03  
mAh  
4
Cycle Count 0  
Update Status 0  
Qmax 1  
U2  
H1  
I2  
0
6
0x00  
0x00  
1000  
0
7
0
32767  
65,535  
0x03  
mAh  
Count  
9
Cycle Count 1  
Update Status 1  
Cell0 Chg dod  
Cell1 Chg dod at EoC  
Avg I Last Run  
Avg P Last Run  
U2  
H1  
I2  
0
0x00  
0
11  
12  
14  
16  
18  
0x00  
0
16384  
16384  
32,767  
32,767  
I2  
0
0
I2  
–32,768  
–32,768  
–299  
–1131  
mA  
mAh  
I2  
Calibration  
Calibration  
Calibration  
Calibration  
Calibration  
Calibration  
Calibration  
Calibration  
104  
104  
104  
104  
104  
104  
104  
104  
Data  
Data  
Data  
Data  
Data  
Data  
Data  
Data  
0
CC Gain  
F4(2)  
F4(2)  
I2  
0.1  
47  
10(1)  
10(1)  
–0.088(1)  
mohm  
mohm  
mV  
4
CC Delta  
4.7  
188  
2.4  
8
CC Offset  
–2.4  
–500  
–128  
–128  
–128  
–128  
10  
12  
13  
14  
15  
ADC Offset  
Board Offset  
Int Temp Offset  
Ext Temp Offset  
Pack V Offset  
I2  
500  
127  
127  
127  
127  
0
0
0
0
0
mV  
I1  
mV  
I1  
0.1°C  
0.1°C  
mV  
I1  
I1  
Calibration  
107  
Current  
1
Deadband  
U1  
0
255  
5
mA  
Security  
Security  
Security  
Security  
112  
112  
112  
112  
Codes  
Codes  
Codes  
Codes  
0
2
4
6
Unseal Key 0  
H2  
H2  
H2  
H2  
0x0000  
0x0000  
0x0000  
0x0000  
0xffff  
0xffff  
0xffff  
0xffff  
0x3672  
0x0414  
0xffff  
Unseal Key 1  
Full-Access Key 0  
Full-Access Key 1  
0xffff  
(2) Not IEEE floating point.  
5 FUNCTIONAL DESCRIPTION  
5.1 FUEL GAUGING  
The bq27505 measures the cell voltage, temperature, and current to determine battery SOC. The  
bq27505 monitors charge and discharge activity by sensing the voltage across a small-value resistor  
(5 mto 20 mtyp.) between the SRP and SRN pins and in series with the cell. By integrating charge  
passing through the battery, the battery’s SOC is adjusted during battery charge or discharge.  
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The total battery capacity is found by comparing states of charge before and after applying the load with  
the amount of charge passed. When an application load is applied, the impedance of the cell is measured  
by comparing the OCV obtained from a predefined function for present SOC with the measured voltage  
under load. Measurements of OCV and charge integration determine chemical state of charge and  
chemical capacity (Qmax). The initial Qmax values are taken from a cell manufacturers' data sheet  
multiplied by the number of parallel cells. It is also used for the value in Design Capacity. The bq27505  
acquires and updates the battery-impedance profile during normal battery usage. It uses this profile, along  
with SOC and the Qmax value, to determine FullChargeCapacity( ) and StateOfCharge( ), specifically for  
the present load and temperature. FullChargeCapacity( ) is reported as capacity available from a fully  
charged battery under the present load and temperature until Voltage( ) reaches the Terminate Voltage.  
NominalAvailableCapacity( ) and FullAvailableCapacity( ) are the uncompensated (no or light load)  
versions of RemainingCapacity( ) and FullChargeCapacity( ) respectively.  
The bq27505 has two flags accessed by the Flags( ) function that warns when the battery’s SOC has  
fallen to critical levels. When RemainingCapacity( ) falls below the first capacity threshold, specified in  
SOC1 Set Threshold, the [SOC1] (State of Charge Initial) flag is set. The flag is cleared once  
RemainingCapacity( ) rises above SOC1 Set Threshold. The bq27505’s BAT_LOW pin automatically  
reflects the status of the [SOC1] flag. This flag is enabled when BL_INT bit in Operation Configuration B  
is set. All units are in mAh.  
When Voltage( ) falls below the system shut down threshold voltage, SysDown Set Volt Threshold, the  
[SYSDOWN] flag is set, serving as a final warning to shut down the system. The SOC_INT also signals.  
When Voltage( ) rises above SysDown Clear Voltage and the [SYSDOWM] flag has already been set,  
the [SYSDOWN] flag is cleared. The SOC_INT also signals such change. All units are in mV.  
When the voltage is discharged to Final Voltage, the SOC will be set as 0.  
5.2 IMPEDANCE TRACK™ VARIABLES  
The bq27505 has several data flash variables that permit the user to customize the Impedance Track™  
algorithm for optimized performance. These variables are dependent upon the power characteristics of the  
application as well as the cell itself.  
5.2.1 Load Mode  
Load Mode is used to select either the constant-current or constant-power model for the Impedance  
Track™ algorithm as used in Load Select (see Load Select). When Load Mode is 0, the Constant  
Current Model is used (default). When 1, the Constant Power Model is used. The [LDMD] bit of  
CONTROL_STATUS reflects the status of Load Mode.  
5.2.2 Load Select  
Load Select defines the type of power or current model to be used to compute load-compensated  
capacity in the Impedance Track™ algorithm. If Load Mode = 0 (Constant-Current) then the options  
presented in Table 5-1 are available.  
Table 5-1. Constant-Current Model Used When Load Mode = 0  
LoadSelect Value  
0
Current Model Used  
Average discharge current from previous cycle: There is an internal register that records the average discharge  
current through each entire discharge cycle. The previous average is stored in this register.  
Present average discharge current: This is the average discharge current from the beginning of this discharge cycle  
until present time.  
1(default)  
2
3
4
5
6
Average current: based on AverageCurrent( )  
Current: based off of a low-pass-filtered version of AverageCurrent( ) (τ =14 s)  
Design capacity / 5: C Rate based off of Design Capacity /5 or a C/5 rate in mA.  
AtRate (mA): Use whatever current is in AtRate( )  
User_Rate-mA: Use the value in User_Rate-mA. This mode provides a completely user-configurable method.  
24  
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If Load Mode = 1 (Constant Power) then the following options shown in Table 5-2 are available  
Table 5-2. Constant-Power Model Used When Load Mode = 1  
LoadSelect Value  
Power Model Used  
Average discharge power from previous cycle: There is an internal register that records the average discharge power  
through each entire discharge cycle. The previous average is stored in this register.  
0
Present average discharge power: This is the average discharge power from the beginning of this discharge cycle  
until present time.  
1(default)  
2
3
4
5
6
Average current × voltage: based off the AverageCurrent( ) and Voltage( ).  
Current × voltage: based off of a low-pass-filtered version of AverageCurrent( ) (τ=14 s) and Voltage( )  
Design energy / 5: C Rate based off of Design Energy /5 or a C/5 rate in mA.  
AtRate (10 mW): Use whatever value is in AtRate( ).  
User_Rate-10mW: Use the value in User_Rate-10mW. This mode provides a completely user-configurable method.  
5.2.3 Reserve Cap-mAh  
Reserve Cap-mAh determines how much actual remaining capacity exists after reaching  
0
RemainingCapacity( ), before Terminate Voltage is reached. A no-load rate of compensation is applied  
to this reserve.  
5.2.4 Reserve Cap-mWh  
Reserve Cap-mWh determines how much actual remaining capacity exists after reaching  
0
AvailableEnergy( ), before Terminate Voltage is reached. A no-load rate of compensation is applied to  
this reserve capacity.  
5.2.5 Dsg Current Threshold  
This register is used as a threshold by many functions in the bq27505 to determine if actual discharge  
current is flowing into or out of the cell. The default for this register is in Table 4-7, which should be  
sufficient for most applications. This threshold should be set low enough to be below any normal  
application load current but high enough to prevent noise or drift from affecting the measurement.  
5.2.6 Chg Current Threshold  
This register is used as a threshold by many functions in the bq27505 to determine if actual charge  
current is flowing into or out of the cell. The default for this register is in Table 4-7, which should be  
sufficient for most applications. This threshold should be set low enough to be below any normal charge  
current but high enough to prevent noise or drift from affecting the measurement.  
5.2.7 Quit Current, DSG Relax Time, CHG Relax Time, and Quit Relax Time  
The Quit Current is used as part of the Impedance Track™ algorithm to determine when the bq27505  
enters relaxation mode from a current-flowing mode in either the charge direction or the discharge  
direction. The value of Quit Current is set to a default value in Table 4-7 and should be above the standby  
current of the system.  
Either of the following criteria must be met to enter relaxation mode:  
| AverageCurrent( ) | < | Quit Current | for Dsg Relax Time  
| AverageCurrent( ) | < | Quit Current | for Chg Relax Time  
After about 5 minutes in relaxation mode, the bq27505 attempts to take accurate OCV readings. An  
additional requirement of dV/dt < 4 µV/s is required for the bq27505 to perform Qmax updates. These  
updates are used in the Impedance Track™ algorithms. It is critical that the battery voltage be relaxed  
during OCV readings to and that the current is not be higher than C/20 when attempting to go into  
relaxation mode.  
Quit Relax Time specifies the minimum time required for AverageCurrent( ) to remain above the  
QuitCurrent threshold before exiting relaxation mode.  
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5.2.8 Qmax 0 and Qmax 1  
Generically called Qmax, these dynamic variables contain the respective maximum chemical capacity of  
the active cell profiles, and are determined by comparing states of charge before and after applying the  
load with the amount of charge passed. They also correspond to capacity at a very low rate of discharge,  
such as the C/20 rate. For high accuracy, this value is periodically updated by the bq27505 during  
operation. Based on the battery cell capacity information, the initial value of chemical capacity should be  
entered in the Qmax n field for each default cell profile. The Impedance Track™ algorithm updates these  
values and maintains them the associated actual cell profiles.  
5.2.9 Update Status 0 and Update Status 1  
Bit 0 (0x01) of the Update Status n registers indicates that the bq27505 has learned new Qmax  
parameters and is accurate. The remaining bits are reserved. Bits 0 is user-configurable; however, it is  
also a status flag that can be set by the bq27505. Bit 0 should never be modified except when creating a  
golden image file as explained in the application note Preparing Optimized Default Flash Constants for  
specific Battery Types (SLUA334). Bit 0 is updated as needed by the bq27505.  
5.2.10 Avg I Last Run  
The bq27505 logs the current averaged from the beginning to the end of each discharge cycle. It stores  
this average current from the previous discharge cycle in this register. This register should not be  
modified. It is only updated by the bq27505 when required.  
5.2.11 Avg P Last Run  
The bq27505 logs the power averaged from the beginning to the end of each discharge cycle. It stores  
this average power from the previous discharge cycle in this register. To get a correct average power  
reading the bq27505 continuously multiplies instantaneous current times Voltage( ) to get power. It then  
logs this data to derive the average power. This register should not be modified. It is only updated by the  
bq27505 when required.  
5.2.12 Delta Voltage  
The bq27505 stores the maximum difference of Voltage( ) during short load spikes and normal load, so  
the Impedance Track™ algorithm can calculate remaining capacity for pulsed loads. It is not  
recommended to change this value.  
5.2.13 Default Ra and Ra Tables  
These tables contain encoded data and, with the exception of the Default Ra Tables, are automatically  
updated during device operation. No user changes should be made except for reading/writing the values  
from a pre-learned pack (part of the process for creating golden image files).  
5.3 DETAILED PIN DESCRIPTION  
5.3.1 The Operation Configuration Register  
Some bq27505 pins are configured via the Operation Configuration data flash register, as indicated in  
Table 5-3. This register is programmed/read via the methods described in Section 4.2.1, Accessing the  
Data Flash. The register is located at subclass = 64, offset = 0.  
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Table 5-3. Operation Configuration Bit Definition  
bit7  
bit6  
bit5  
bit4  
bit3  
bit2  
bit1  
bit0  
High byte  
Low byte  
RESCAP  
INT_FOCV  
BATG_OVR  
IDSELEN  
INT_BREM  
SLEEP  
PFC_CFG1  
RMFCC  
PFC_CFG0  
SOCI_POL  
IWAKE  
RSNS1  
RSNS0  
TEMPS  
BATG_POL  
BATL_POL  
RESCAP = No-load rate of compensation is applied to the reserve capacity calculation. True when set. Default is 0.  
BATG_OVR = BAT_GD override bit. If the gauge enters Hibernate only due to the cell voltage, the BAT_GD will not negate. True when set.  
Default is 0.  
INT_BERM = Battery removal interrupt bit. The SOC_INT pulses 1ms when the battery removal interrupt is enabled. True when set. The  
default is 0.  
PFC_CFG1/PFC_CFG0 = Pin function code (PFC) mode selection: PFC 0, 1, or 2 selected by 0/0, 0/1, or 1/0, respectively. Default is PFC  
1 (0/1).  
IWAKE/RSNS1/RSNS0 = These bits configure the current wake function (see Table 5-6). Default is 0/0/1.  
INT_FOCV = Indication of the measurement of the OCV during the initialization. The SOC_INT will pulse during the first measurement if this  
bit is set. True when set. Default is 0.  
IDSELEN = Enables cell profile selection feature. True when set. Default is 1.  
SLEEP = The fuel gauge can enter sleep, if operating conditions allow. True when set. Default is 1.  
RMFCC = RM is updated with the value from FCC, on valid charge termination. True when set. Default is 1.  
SOCI_POL = SOC interrupt polarity is active-low. True when cleared. Default is 0.  
BATG_POL = BAT_GD pin is active-low. True when cleared. Default is 0.  
BATL_POL = BAT_LOW pin is active-high. True when set. Default is 1.  
TEMPS = Selects external thermistor for Temperature( ) measurements. True when set. Default is 1.  
Some bq27505 pins are configured via the Operation Configuration B data flash register, as indicated in  
Table 5-4. This register is programmed/read via the methods described in Section 4.2.1: Accessing the  
Data Flash. The register is located at subclass = 64, offset = 9.  
Table 5-4. Operation Configuration B Bit Definition  
bit7  
bit6  
bit5  
bit4  
bit3  
bit2  
bit1  
bit0  
WRTEMP  
BIE  
BL_INT  
GNDSEL  
BattGdInit  
DFWrIndBL  
WRTEMP = Enables the temperature write. The temperature could be written by the host. True when set. Default is 0.  
BIE = Battery insertion detection enable. When the battery insertion detection is disabled, the gauge relies on the host command to set the  
BAT_DET bit. True when set. Default is 1.  
BL_INT = Battery low interrupt enable. True when set. Default is 0.  
GNDSEL = The ADC ground select control. The Vss (Pin D1) is selected as ground reference when the bit is clear. Pin A1 is selected when  
the bit is set. Default is 1.  
BattGdInit = BAT_GD will be asserted during the initialization. It is for application that needs the system be powered up ASAP. True when  
set. Default is 0.  
DFWrIndBL = DataFlash Write Indication. SOC_INT is used for indication if the bit is clear. BAT_LOW is used for indication if the bit is set.  
Default is 0.  
5.3.2 Pin Function Code Descriptions  
The bq27505 has three possible pin-function variations that can be selected in accordance with the circuit  
architecture of the end application. Each variation has been assigned a pin function code, or PFC.  
When the PFC is set to 0, only the bq27505 measures battery temperature under discharge and relaxation  
conditions. The charger does not receive any information from the bq27505 about the temperature  
readings, and therefore operates open-loop with respect to battery temperature.  
A PFC of 1 is like a PFC of 0, except temperature is also monitored during battery charging. If charging  
temperature falls outside of the preset range defined in data flash, a charger can be disabled via the  
BAT_GD pin until cell temperature recovers. See Section 5.6.2, Charge Inhibit and Suspend, for additional  
details.  
Finally when the PFC is set to 2, the battery thermistor can be shared between the fuel gauge and the  
charger. The charger has full usage of the thermistor during battery charging, while the fuel gauge uses  
the thermistor exclusively during discharge and battery relaxation.  
When PFC = 0 or 2, the bq27505 must be queried by the system in order to determine the battery  
temperature. At that time, the bq27505 samples the temperature. This saves battery energy when  
operating from battery, as periodic temperature updates are avoided during charging mode.  
The PFC is specified in Operation Configuration [PFC_CFG1, PFC_CFG0]. The default is PFC = 1.  
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5.3.3 BAT_LOW Pin  
The BAT_LOW pin provides a system processor with an electrical indicator of battery status. The signaling  
on the BAT_LOW pin follows the status of the [SOC1] bit in the Flags( ) register. Note that the polarity of  
the BAT_LOW pin can be inverted via the [BATL_POL] bit of Operation Configuration.  
5.3.4 Power Path Control With the BAT_GD Pin  
The bq27505 must operate in conjunction with other electronics in a system appliance, such as chargers  
or other ICs and application circuits that draw appreciable power. After a battery is inserted into the  
system, there should be no charging current or a discharging current higher than C/20, so that an accurate  
OCV can be read. The OCV is used for helping determine which battery profile to use, as it constitutes  
part of the battery impedance measurement  
When a battery is inserted into a system, the Impedance Track™ algorithm requires that no charging of  
the battery takes place and that any discharge is limited to less than C/20—these conditions are sufficient  
for the fuel gauge to take an accurate OCV reading. To disable these functions, the BAT_GD pin is merely  
negated from the default setting. Once an OCV reading has be made, the BAT_GD pin is asserted,  
thereby enabling battery charging and regular discharge of the battery. The Operation Configuration  
[BATG_POL] bit can be used to set the polarity of the battery good signal, should the default configuration  
need to be changed.  
POR  
Exit From HIBERNATE  
Battery Removed  
Exit From HIBERNATE  
BAT INSERT CHECK  
Communication Activity  
AND Comm address is for bq27505  
Check for battery insertion  
from HALT state.  
No gauging  
bq27505 clears Control Status  
[HIBERNATE] = 0  
Recommend Host also set Control  
Status [HIBERNATE] = 0  
Flags [BAT_DET] = 0  
Entry to NORMAL  
Flags [BAT_DET] = 1  
Exit From NORMAL  
Flags [BAT_DET] = 0  
Exit From SLEEP  
NORMAL  
Flags [BAT_DET] = 0  
Fuel gauging and data  
updated every1s  
HIBERNATE  
Wakeup From HIBERNATE  
Communication Activity  
AND  
Comm address is NOT for bq27505  
Exit From SLEEP  
| AverageCurrent( ) | > Sleep Current  
OR  
Disable all bq27505  
subcircuits except GPIO.  
Negate BAT_GD  
Entry to SLEEP+  
Operation Configuration[SLEEP] = 1  
AND  
Current is Detected above IWAKE  
Exit From SLEEP+  
Any communication to the gauge  
OR  
Control Status[SNOOZE] = 1  
AND  
| AverageCurrent( ) | > Sleep Current  
OR  
Current is Detected above IWAKE  
| AverageCurrent( ) | Sleep Current  
Entry to SLEEP  
Operation Configuration[SLEEP] = 1  
AND  
| AverageCurrent( ) | Sleep Current  
AND  
SLEEP+  
Control Status[SNOOZE] = 0  
Fuel gauging and data  
updatedevery 20 seconds  
Both LFO and HFO are ON  
Exit From WAIT_HIBERNATE  
Entry to SLEEP+  
Control Status[SNOOZE] = 0  
Cell relaxed  
Entry to SLEEP+  
AND  
| AverageCurrent() | < Hibernate  
Current  
WAIT_HIBERNATE  
Control Status[SNOOZE] = 1  
SLEEP  
OR  
Fuel gauging and data  
updated every 20 seconds  
BAT_GD unchanged  
Cell relaxed  
AND  
VCELL < Hibernate Voltage  
Fuel gauging and data  
updated every 20 seconds  
(LFO ON and HFO OFF)  
Exit From WAIT_HIBERNATE  
Host must set Control Status  
[HIBERNATE] = 0  
AND  
VCELL > Hibernate Voltage  
System Shutdown  
Exit From SLEEP  
(Host has set Control Status  
[HIBERNATE] = 1  
OR  
VCELL < Hibernate Voltage  
System Sleep  
Figure 5-1. Power Mode Diagram  
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Figure 5-1 details how the BAT_GD pin functions in the context of battery insertion and removal, as well  
as NORMAL vs. SLEEP modes.  
In PFC 1, the BAT_GD pin is also used to disable battery charging when the bq27505 reads battery  
temperatures outside the range defined by [Charge Inhibit Temp Low, Charge Inhibit Temp High]. The  
BAT_GD line is asserted once temperature falls within the range [Charge Inhibit Temp Low + Temp  
Hys, Charge Inhibit Temp High – Temp Hys].  
5.3.5 Battery Detection Using the BI/TOUT Pin  
During power-up or hibernate activities, or any other activity where the bq27505 needs to determine  
whether a battery is connected or not, the fuel gauge applies a test for battery presence. First, the  
BI/TOUT pin is put into high-Z status. The weak 1.8Mpull-up resistor will keep the pin high while no  
battery is present. When a battery is inserted (or is already inserted) into the system device, the BI/TOUT  
pin will be pulled low. This state is detected by the fuel gauge, which polls this pin every second when the  
gauge has power. A battery-disconnected status is assumed when the bq27505 reads a thermistor voltage  
that is near 2.5V.  
5.3.6 SOC_INT pin  
The SOC_INT pin generates a pulse with different pulse width under various conditions. Some features  
needs to be enabled by setting the Operation Config. In any given one second, only one SOC_INT pulse  
could be generated. In other words, the 1ms SOC_INT pulse could indicated multiple events generating  
the 1ms pusles.  
Table 5-5. SOC_INT Pulse Condition and Width  
Enable Condition  
SOC_Delta 0  
Always  
Pulse Width  
Comment  
During charge, when the SOC is greater than (>) the points, 100% - n  
× SOC_Delta and 100%;  
During discharge, when the SOC reaches () the points 100% - n ×  
SOC_Delta and 0%;  
where n is an integer starting from 0 to the number generating SOC no  
less than 0%  
SOC_Delta  
Point  
1 ms  
SOC1 Set  
1 ms  
1 ms  
1 ms  
When RSOC reached the SOC1 Set or Clear threshold set in the Data  
Flash and BL_INT bit in Operation Configuration B is set.  
SOC1 Clear Always  
SysDown Set Always  
When the Battery Voltage reached the SysDown Set or Clear threshold  
set in the Data Flash  
SysDown  
Always  
Clear  
1 ms  
1 ms  
State  
Change  
When there is a state change including charging, discharging and  
relaxation. This function is disabled when SOC_Delta is set to 0.  
SOC_Delta 0  
Battery  
Removal  
INT_BREM bit is set in  
OpConfig AND BIE bit is  
set  
1ms  
This function is disabled when BIE is cleared.  
About 165ms. Same  
as the OCV  
command execution  
time period  
SOC_INT pulses for the OCV command after the initialization.  
OCV  
Command  
After Initialization  
About 165ms. Same  
as the OCV  
This command is to generate the SOC_INT pulse during the  
initialization.  
OCV  
INT_FOCV bit is set in  
Command  
OpConfig  
command execution  
time period  
Programmmable time SOC_INT is used to indicate the data flash update. The gauge will wait  
Data Flash  
Write  
After Initialization AND  
DFWrIndWaitTime 0  
pluse flash erase and DFWrIndWaitTime times 5µs after the SOC_INT signal to start the  
write time  
data flash update. This function is disabled if DFWrIndWaitTime is set  
to 0.  
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5.4 TEMPERATURE MEASUREMENT  
The bq27505 measures battery temperature via its TS input, in order to supply battery temperature status  
information to the fuel gauging algorithm and charger-control sections of the gauge. Alternatively, it can  
also measure internal temperature via its on-chip temperature sensor, but only if the [TEMPS] bit of the  
Operation Configuration register is cleared. The [GNDSEL] bit of Operation Configuration B register  
selects the ground reference of the ADC converter for temperature measurement.  
Regardless of which sensor is used for measurement, a system processor can request the current battery  
temperature by calling the Temperature( ) function (see Section 4.1.1, Standard Data Commands, for  
specific information).  
The thermistor circuit requires the use of an external NTC 103AT-type thermistor. Additional circuit  
information for connecting this thermistor to the bq27505 is shown in Section 8, Reference Schematic.  
5.5 OVERTEMPERATURE INDICATION  
5.5.1 Overtemperature: Charge  
If during charging, Temperature( ) reaches the threshold of OT Chg for a period of OT Chg Time and  
AverageCurrent( ) > Chg Current Threshold, then the [OTC] bit of Flags( ) is set. When Temperature( )  
falls to OT Chg Recovery, the [OTC] of Flags( ) is reset.  
If OT Chg Time = 0, then the feature is completely disabled.  
5.5.2 Overtemperature: Discharge  
If during discharging, Temperature( ) reaches the threshold of OT Dsg for a period of OT Dsg Time, and  
AverageCurrent( ) –Dsg Current Threshold, then the [OTD] bit of Flags( ) is set. When Temperature( )  
falls to OT Dsg Recovery, the [OTD] bit of Flags( ) is reset.  
If OT Dsg Time = 0, then feature is completely disabled.  
5.6 CHARGING AND CHARGE-TERMINATION INDICATION  
5.6.1 Detecting Charge Termination  
For proper bq27505 operation, the cell charging voltage must be specified by the user. The default value  
for this variable is Charging Voltage Table 4-7.  
The bq27505 detects charge termination when (1) during 2 consecutive periods of Current Taper  
Window, the AverageCurrent( ) is < Taper Current, (2) during the same periods, the accumulated  
change in capacity > Min Taper Charge /Current Taper Window, and (3) Voltage( ) > Charging Voltage  
– Taper Voltage. When this occurs, the [CHG] bit of Flags( ) is cleared. Also, if the [RMFCC] bit of  
Operation Configuration is set, then RemainingCapacity( ) is set equal to FullChargeCapacity( ).  
5.6.2 Charge Inhibit and Suspend  
The bq27505 can indicate when battery temperature has fallen below or risen above predefined  
thresholds Charge Inhibit Temp Low or Charge Inhibit Temp High, respectively. In this mode, the  
[CHG_INT] bit is set and the BAT_GD pin is deserted to indicate this condition. The [CHG_INT] bit is  
cleared and the BAT_GD pin is asserted once the battery temperature returns to the range [Charge  
Inhibit Temp Low + Temp Hys, Charge Inhibit Temp High – Temp Hys].  
When PFC = 1, the bq27505 can indicate when battery temperature has fallen below or risen above  
predefined thresholds Suspend Low Temp or Suspend High Temp, respectively. In this mode, the  
[XCHG] bit is set to indicate this condition. The [XCHG] bit is cleared once the battery temperature returns  
to the range [Charge Inhibit Temp Low + Temp Hys, Charge Inhibit Temp High – Temp Hys].  
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The charging should not start when the temperature is below the Charge Inhibit Temp Low or above the  
Charge Inhibit Temp High. The charging can continue if the charging starts inside the window [Charge  
Inhibit Temp Low, Charge Inhibit Temp High] until the temperature is either below Suspend Low Temp or  
above the Suspend Low Temp. Therefore, the window [Charge Inhibit Temp Low, Charge Inhibit Temp  
High] must be inside the window of [Suspend Low Temp, Suspend High Temp].  
5.7 POWER MODES  
The bq27505 has different power modes: BAT INSERT CHECK, NORMAL, SLEEP, SLEEP+ and  
HIBERNATE. In NORMAL mode, the bq27505 is fully powered and can execute any allowable task. In  
SLEEP+ mode, both low frequency and high frequency oscillators are active. Although the SLEEP+ has  
higher current consumption than the SLEEP mode, it is also a reduced power mode. In SLEEP mode, the  
fuel gauge turns off the high frequency oscillator and exists in a reduced-power state, periodically taking  
measurements and performing calculations. In HIBERNATE mode, the fuel gauge is in a very low power  
state, but can be woken up by communication or certain I/O activity. Finally, the BAT INSERT CHECK  
mode is a powered-up, but low-power halted, state, where the bq27505 resides when no battery is  
inserted into the system.  
The relationship between these modes is shown in Figure 5-1.  
5.7.1 BAT INSERT CHECK Mode  
This mode is a halted-CPU state that occurs when an adapter, or other power source, is present to power  
the bq27505 (and system), yet no battery has been detected. When battery insertion is detected, a series  
of initialization activities begin, which include: OCV measurement, setting the BAT_GD pin, and selecting  
the appropriate battery profiles.  
Some commands, issued by a system processor, can be processed while the bq27505 is halted in this  
mode. The gauge will wake up to process the command, then return to the halted state awaiting battery  
insertion.  
5.7.2 NORMAL MODE  
The fuel gauge is in NORMAL mode when not in any other power mode. During this mode,  
AverageCurrent( ), Voltage( ) and Temperature( ) measurements are taken, and the interface data set is  
updated. Decisions to change states are also made. This mode is exited by activating a different power  
mode.  
Because the gauge consumes the most power in NORMAL mode, the Impedance Track™ algorithm  
minimizes the time the fuel gauge remains in this mode.  
5.7.3 SLEEP MODE  
SLEEP mode is entered automatically if the feature is enabled (Operation Configuration [SLEEP] = 1)  
and AverageCurrent( ) is below the programmable level Sleep Current. Once entry into SLEEP mode has  
been qualified, but prior to entering it, the bq27505 performs an coulomb counter autocalibration to  
minimize offset.  
During SLEEP mode, the bq27505 periodically takes data measurements and updates its data set.  
However, a majority of its time is spent in an idle condition.  
The bq27505 exits SLEEP if any entry condition is broken, specifically when (1) AverageCurrent( ) rises  
above Sleep Current, or (2) a current in excess of IWAKE through RSENSE is detected.  
In the event that a battery is removed from the system while a charger is present (and powering the  
gauge), Impedance Track™ updates are not necessary. Hence, the fuel gauge enters a state that checks  
for battery insertion and does not continue executing the Impedance Track™ algorithm.  
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FUNCTIONAL DESCRIPTION  
31  
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System-Side Impedance Track™ Fuel Gauge  
SLUS924APRIL 2009  
www.ti.com  
5.7.4 SLEEP+ MODE  
Compared to the SLEEP mode, SLEEP+ mode has the high frequency oscillator in operation. The  
communication delay could be eliminated. The SLEEP+ is entered automatically if the feature is enabled  
(CONTROL STATUS [SNOOZE] = 1) and AverageCurrent( ) is below the programmable level Sleep  
Current.  
During SLEEP+ mode, the bq27505 periodically takes data measurements and updates its data set.  
However, a majority of its time is spent in an idle condition.  
The bq27505 exits SLEEP+ if any entry condition is broken, specifically when (1) any communication  
activity with the gauge, or (2) AverageCurrent( ) rises above Sleep Current, or (3) a current in excess of  
IWAKE through RSENSE is detected.  
5.7.5 HIBERNATE MODE  
HIBERNATE mode should be used when the system equipment needs to enter a low-power state, and  
minimal gauge power consumption is required. This mode is ideal when a system equipment is set to its  
own HIBERNATE, SHUTDOWN, or OFF modes.  
Before the fuel gauge can enter HIBERNATE mode, the system must set the [HIBERNATE] bit of the  
CONTROL_STATUS register. The gauge waits to enter HIBERNATE mode until it has taken a valid OCV  
measurement and the magnitude of the average cell current has fallen below Hibernate Current. The  
gauge can also enter HIBERNATE mode if the cell voltage falls below Hibernate Voltage and a valid  
OCV measurement has been taken. The gauge will remain in HIBERNATE mode until the system issues a  
direct I2C command to the gauge or a POR occurs. I2C Communication that is not directed to the gauge  
will not wake the gauge.  
It is important that BAT_GD be deserted status (no battery charging/discharging). This prevents a charger  
application from inadvertently charging the battery before an OCV reading can be taken. It is the system’s  
responsibility to wake the bq27505 after it has gone into HIBERNATE mode. After waking, the gauge can  
proceed with the initialization of the battery information (OCV, profile selection, etc.)  
5.8 POWER CONTROL  
5.8.1 WAKE-UP COMPARATOR  
The wake up comparator is used to indicate a change in cell current while the bq27505 is in SLEEP mode.  
Operation Configuration uses bits [RSNS1–RSNS0] to set the sense resistor selection. Operation  
Configuration also uses the [IWAKE] bit to select one of two possible voltage threshold ranges for the  
given sense resistor selection. An internal interrupt is generated when the threshold is breached in either  
the charge or discharge direction. Setting both [RSNS1] and [RSNS0] to 0 disables this feature.  
32  
FUNCTIONAL DESCRIPTION  
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Table 5-6. IWAKE Threshold Settings(1)  
RSNS1  
RSNS0  
IWAKE  
Vth(SRP–SRN)  
Disabled  
0
0
0
0
1
1
1
1
0
0
1
1
0
0
1
1
0
1
0
1
0
1
0
1
Disabled  
1.0 mV or –1.0 mV  
2.2 mV or –2.2 mV  
2.2 mV or –2.2 mV  
4.6 mV or –4.6 mV  
4.6 mV or –4.6 mV  
9.8 mV or –9.8 mV  
(1) The actual resistance value vs the setting of the sense resistor is not important, just the actual voltage  
threshold when calculating the configuration. The votage thresholds are typical values under room  
temperature.  
5.8.2 FLASH UPDATES  
Data Flash can only be updated if Voltage( ) Flash Update OK Voltage. Flash programming current can  
cause an increase in LDO dropout. The value of Flash Update OK Voltage should be selected such that  
the bq27505 VCC voltage does not fall below its minimum of 2.4 V during Flash write operations.  
5.9 AUTOCALIBRATION  
The bq27505 provides an autocalibration feature that measures the voltage offset error across SRP and  
SRN as operating conditions change. It subtracts the resulting offset error from normal sense resistor  
voltage, VSR, for maximum measurement accuracy.  
Autocalibration of the coulomb counter begins on entry to SLEEP mode, except if Temperature( ) is 5°C  
or Temperature( ) 45°C.  
The fuel gauge also performs a single offset when (1) the condition of AverageCurrent( ) 100 mA and (2)  
{voltage change since last offset calibration 256 mV} or {temperature change since last offset calibration  
is greater than 80°C for 60 s}.  
Capacity and current measurements continue at the last measured rate during the offset calibration when  
these measurements cannot be performed. If the battery voltage drops more than 32 mV during the offset  
calibration, the load current has likely increased; hence, the offset calibration is aborted.  
6 APPLICATION-SPECIFIC INFORMATION  
6.1 BATTERY PROFILE STORAGE AND SELECTION  
6.1.1 Common Profile Aspects  
When a battery pack is removed from system equipment that implements the bq27505, the fuel gauge will  
maintain some of the battery information, if it is re-inserted. This way the Impedance Track™ algorithm will  
often have a means of recovering battery-status information; thereby, maintaining good state-of-charge  
(SOC) estimates.  
Two default battery profiles are available to store battery information. They are used to provide the  
Impedance Track™ algorithm with the default information of the battery type expected to be used with the  
end-equipment. The bq27505 supports only one type of battery profile. This profile is stored in both the  
Def0 and Def1 profiles. Default profiles are programmed by the end-equipment manufacturer.  
In addition to the default profiles, the bq27505 maintains two abbreviated profiles: Pack0 and Pack1.  
These tables hold dynamic battery data, and keep track of the status for up to two of the most recent  
batteries used. In most cases the bq27505 can administrate information on two removable battery packs.  
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APPLICATION-SPECIFIC INFORMATION  
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bq27505-J2  
System-Side Impedance Track™ Fuel Gauge  
SLUS924APRIL 2009  
www.ti.com  
6.1.2 Activities Upon Pack Insertion  
6.1.2.1 First OCV and Impedance Measurement  
At power-up the BAT_GD pin is inactive, so that the system might not obtain power from the battery (this  
depends on actual implementation). In this state, the battery should be put in a condition with load current  
less than C/20. Next, the bq27505 measures its first open-circuit voltage (OCV) via the BAT pin. The  
[OCVCMDCOMP] bit will set once the OCV measurement is completed. Depending on the load current,  
the [OCVFAIL] bit indicates whether the OCV reading is valid. From the OCV(SOC) table, the SOC of the  
inserted battery is found. Then the BAT_GD pin is made active, and the impedance of the inserted battery  
is calculated from the measured voltage and the load current: Z(SOC) = ( OCV(SOC) – V ) / I. This  
impedance is compared with the impedance of the dynamic profiles, Packn, and the default profiles, Defn,  
for the same SOC (the letter n depicts either a 0 or 1).The [INITCOMP] bit will be set afterwards and the  
OCV command could be issued  
6.1.3 Reading Application Status  
The Application Status data flash location contains cell profile status information, and can be read using  
the ApplicationStatus( ) extended command (0x6a). The bit configuration of this function/location is shown  
in Table 6-1.  
Table 6-1. ApplicationStatus( ) Bit Definitions.  
Application  
bit7  
bit6  
bit5  
bit4  
bit3  
bit2  
bit1  
bit0  
Configuration  
Byte  
LU_ PROF  
LU_PROF = Last profile used by fuel gauge. Cell0 last used when cleared. Cell1 last used when set. Default is 0.  
6.2 APPLICATION-SPECIFIC FLOW AND CONTROL  
The bq27505 supports only one type of battery profile. This profile is stored in both the Def0 and Def1  
profiles. When a battery pack is inserted for the first time, the default profile is copied into the Packn  
profiles. Then the Impedance Track™ algorithm begins gas gauging, regularly updating Packn as the  
battery is used.  
When an existing pack is removed from the bq27505 and a different (or same) pack is inserted, cell  
impedance is measured immediately after battery detection (see Section 6.1.2.1., First OCV and  
Impedance Measurement). The bq27505 chooses the profile which is closest to the measured impedance,  
starting with the Packn profiles. That is, if the measured impedance matches Pack0, then the Pack0  
profile is used. If the measured impedance matches Pack1, then the Pack1 profile is used. If the  
measured impedance does not match the impedance stored in either Pack0 or Pack1, the battery pack is  
deemed new (none of the previously used packs). Either Def0/Def1 profile is copied into either the Pack0  
or Pack1 profile, overwriting the oldest Packn profile.  
34  
APPLICATION-SPECIFIC INFORMATION  
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System-Side Impedance Track™ Fuel Gauge  
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7 COMMUNICATIONS  
7.1 I2C INTERFACE  
The 27505 supports the standard I2C read, incremental read, quick read, one byte write, and incremental  
write functions. The 7 bit device address (ADDR) is the most significant 7 bits of the hex address and is  
fixed as 1010101. The 8-bit device address will; therefore, be 0xAA or 0xAB for write or read, respectively.  
Host generated  
bq27505 generated  
DATA [7:0]  
S
ADDR[6:0]  
0
CMD[7:0]  
P
S
ADDR[6:0]  
A
DATA [7:0]  
(b) quick read  
DATA [7:0]  
N
(a) 1-byte write  
S
ADDR[6:0]  
0
CMD[7:0]  
Sr  
ADDR[6:0]  
1
A
N
(c) 1- byte read  
S
ADDR[6:0]  
0
CMD[7:0]  
Sr  
ADDR[6:0]  
1
A
DATA [7:0]  
A
. . .  
DATA [7:0]  
A . . . A P  
N
(d) incremental read  
S
ADDR[6:0]  
CMD[7:0]  
DATA [7:0]  
DATA [7:0]  
(e) incremental write  
(S = Start, Sr = Repeated Start, A = Acknowledge, N = No Acknowledge , and P = Stop).  
The “quick read” returns data at the address indicated by the address pointer. The address pointer, a  
register internal to the I2C communication engine, will increment whenever data is acknowledged by the  
bq27505 or the I2C master. “Quick writes” function in the same manner and are a convenient means of  
sending multiple bytes to consecutive command locations (such as two-byte commands that require two  
bytes of data)  
The following command sequences are not supported:  
Attempt to write a read-only address (NACK after data sent by master):  
Attempt to read an address above 0x6B (NACK command):  
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System-Side Impedance Track™ Fuel Gauge  
SLUS924APRIL 2009  
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7.2 I2C Time Out  
The I2C engine will release both SDA and SCL if the I2C bus is held low for the time defined by I2C  
Timeout times 0.5 second. If the bq27505 was holding the lines, releasing them will free for the master to  
drive the lines. If an external condition is holding either of the lines low, the I2C engine will enter the low  
power sleep mode.  
7.3 I2C Command Waiting Time  
To make sure the correct results of a command with the 400KHz I2C operation, a proper waiting time  
should be added between issuing command and reading results. For subcommands, the following  
diagram shows the waiting time required between issuing the control command the reading the status with  
the exception of checksum and OCV commands. A 100ms waiting time is required between the checksum  
command and reading result, and a 1.2 second waiting time is required between the OCV command and  
result. For read-write standard command, a minimum of 2 seconds is required to get the result updated.  
For read-only standard commands, there is no waiting time required, but the host should not issue all  
standard commands more than two times per second. Otherwise, the gauge could result in a reset issue  
due to the expiration of the watchdog timer.  
The I2C clock stretch could happen in a typical application. A maximum 80ms clock stretch could be  
observed during the flash updates. There is up to 270ms clock stretch after the OCV command is issued.  
S
S
ADDR [6:0]  
ADDR [6:0]  
CMD [7:0]  
CMD [7:0]  
DATA [7:0]  
ADDR [6:0]  
DATA [7:0]  
DATA [7:0]  
A P  
66ms  
DATA [7:0]  
Sr  
A
A
N
A
66ms  
Waiting time between control subcommand and reading results  
S
ADDR [6:0]  
DATA [7:0]  
CMD [7:0]  
DATA [7:0]  
ADDR [6:0]  
66ms  
A
DATA [7:0]  
A
DATA [7:0]  
A
N
Waiting time between continuous reading results  
36  
COMMUNICATIONS  
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8 REFERENCE SCHEMATICS  
8.1 SCHEMATIC  
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REFERENCE SCHEMATICS  
37  
PACKAGE OPTION ADDENDUM  
www.ti.com  
28-Apr-2009  
PACKAGING INFORMATION  
Orderable Device  
BQ27505YZGR-J2  
BQ27505YZGT-J2  
Status (1)  
ACTIVE  
ACTIVE  
Package Package  
Pins Package Eco Plan (2) Lead/Ball Finish MSL Peak Temp (3)  
Qty  
Type  
Drawing  
DSBGA  
YZG  
12  
3000 Green (RoHS &  
no Sb/Br)  
SNAGCU  
Level-1-260C-UNLIM  
DSBGA  
YZG  
12  
250 Green (RoHS &  
no Sb/Br)  
SNAGCU  
Level-1-260C-UNLIM  
(1) The marketing status values are defined as follows:  
ACTIVE: Product device recommended for new designs.  
LIFEBUY: TI has announced that the device will be discontinued, and a lifetime-buy period is in effect.  
NRND: Not recommended for new designs. Device is in production to support existing customers, but TI does not recommend using this part in  
a new design.  
PREVIEW: Device has been announced but is not in production. Samples may or may not be available.  
OBSOLETE: TI has discontinued the production of the device.  
(2)  
Eco Plan - The planned eco-friendly classification: Pb-Free (RoHS), Pb-Free (RoHS Exempt), or Green (RoHS & no Sb/Br) - please check  
http://www.ti.com/productcontent for the latest availability information and additional product content details.  
TBD: The Pb-Free/Green conversion plan has not been defined.  
Pb-Free (RoHS): TI's terms "Lead-Free" or "Pb-Free" mean semiconductor products that are compatible with the current RoHS requirements  
for all 6 substances, including the requirement that lead not exceed 0.1% by weight in homogeneous materials. Where designed to be soldered  
at high temperatures, TI Pb-Free products are suitable for use in specified lead-free processes.  
Pb-Free (RoHS Exempt): This component has a RoHS exemption for either 1) lead-based flip-chip solder bumps used between the die and  
package, or 2) lead-based die adhesive used between the die and leadframe. The component is otherwise considered Pb-Free (RoHS  
compatible) as defined above.  
Green (RoHS & no Sb/Br): TI defines "Green" to mean Pb-Free (RoHS compatible), and free of Bromine (Br) and Antimony (Sb) based flame  
retardants (Br or Sb do not exceed 0.1% by weight in homogeneous material)  
(3)  
MSL, Peak Temp. -- The Moisture Sensitivity Level rating according to the JEDEC industry standard classifications, and peak solder  
temperature.  
Important Information and Disclaimer:The information provided on this page represents TI's knowledge and belief as of the date that it is  
provided. TI bases its knowledge and belief on information provided by third parties, and makes no representation or warranty as to the  
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In no event shall TI's liability arising out of such information exceed the total purchase price of the TI part(s) at issue in this document sold by TI  
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Addendum-Page 1  
PACKAGE MATERIALS INFORMATION  
www.ti.com  
7-Aug-2009  
TAPE AND REEL INFORMATION  
*All dimensions are nominal  
Device  
Package Package Pins  
Type Drawing  
SPQ  
Reel  
Reel  
A0  
B0  
K0  
P1  
W
Pin1  
Diameter Width (mm) (mm) (mm) (mm) (mm) Quadrant  
(mm) W1 (mm)  
BQ27505YZGR-J2  
BQ27505YZGT-J2  
DSBGA  
DSBGA  
YZG  
YZG  
12  
12  
3000  
250  
180.0  
180.0  
8.4  
8.4  
2.1  
2.1  
2.57  
2.57  
0.81  
0.81  
4.0  
4.0  
8.0  
8.0  
Q1  
Q1  
Pack Materials-Page 1  
PACKAGE MATERIALS INFORMATION  
www.ti.com  
7-Aug-2009  
*All dimensions are nominal  
Device  
Package Type Package Drawing Pins  
SPQ  
Length (mm) Width (mm) Height (mm)  
BQ27505YZGR-J2  
BQ27505YZGT-J2  
DSBGA  
DSBGA  
YZG  
YZG  
12  
12  
3000  
250  
220.0  
220.0  
220.0  
220.0  
34.0  
34.0  
Pack Materials-Page 2  
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