EM5303GE [EXCELLIANCE]

5V/12V Synchronous Buck PWM Controller;
EM5303GE
型号: EM5303GE
厂家: Excelliance MOS    Excelliance MOS
描述:

5V/12V Synchronous Buck PWM Controller

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EM5303/A  
5V/12V Synchronous Buck PWM Controller  
General Description  
Applications  
EM5303/A is a synchronous rectified PWM  
controller operating with 5V or 12V supply voltage.  
This device operates at 200/300 kHz and provides  
an optimal level of integration to reduce size and  
cost of the power supply.  
Notebook & Netbook  
Graphic Cards & MB  
Low Voltage Logic Supplies  
This part includes internal soft start, internal  
compensation networks, over current protection,  
under voltage protection, and shutdown function.  
This part is available in PSOP-8 package.  
Pin Configuration  
Ordering Information  
Part Number  
EM5303GE  
Package  
PSOP-8  
Frequency  
200kHz  
EM5303AGE  
PSOP-8  
300kHz  
Features  
Typical Application Circuit  
Operate from 5V to 12V Voltage Supply  
0.6V VREF with 1.5% Accuracy  
Voltage Mode PWM Control  
200kHz or 300kHz Fixed Frequency  
Oscillator  
0% to 80% Duty Cycle  
Internal Soft Start  
Over Current Protection  
Integrated Bootstrap Diode  
Adaptive Non-Overlapping Gate Driver  
Under Voltage Protection  
Over Voltage Protection  
2012/10/16  
Rev.A.7  
1
EM5303/A  
Pin Assignment  
Pin Name Pin No.  
Pin Function  
Bootstrap Supply for the floating upper gate driver. Connect the bootstrap  
capacitor C BOOT between BOOT pin and the PHASE pin to form a bootstrap circuit.  
The bootstrap capacitor provides the charge to turn on the upper MOSFET. Typical  
values for C BOOT range from 0.1uF to 0.47uF. Ensure that C BOOT is placed near the  
IC.  
BOOT  
1
Upper Gate Driver Output. Connect this pin to the gate of upper MOSFET. This pin  
is monitored by the adaptive shoot-through protection circuitry to determine when  
the upper MOSFET has turned off.  
UGATE  
GND  
2
3
4
Signal and Power Ground for the IC. All voltages levels are measured with respect  
to this pin. Tie this pin to the ground island/plane through the lowest impedance  
connection available.  
Lower Gate Driver Output. Connect this pin to the gate of lower MOSFET. This pin  
is monitored by the adaptive shoot-through protection circuitry to determine when  
the lower MOSFET has turn off.  
LGATE  
Supply Voltage. This pin provides the bias supply for the EM5303/A and the lower  
gate driver. The supply voltage is internally regulated to 5VDD for internal control  
circuit. Connect a well-decoupled 4.5V to 13.2V supply voltage to this pin. Ensure  
that a decoupling capacitor is placed near the IC.  
VCC  
5
Feedback Voltage. This pin is the inverting input to the error amplifier. A resistor  
divider from the output to GND is used to set the regulation voltage.  
Enable Pin. Pulling this pin lower than 0.3V disables the controller and causes the  
oscillator to stop, the UGATE and LGATE outputs to be held low.  
PHASE Switch Node. Connect this pin to the source of the upper MOSFET and the  
drain of the lower MOSFET. This pin is used as the sink for the UGATE driver, and to  
monitor the voltage drop across the lower MOSFET for over current protection.  
This pin is also monitored by the adaptive shoot-through protection circuitry to  
determine when the upper MOSFET has turned off. A Schottky diode between this  
pin and ground is recommended to reduce negative transient voltage which is  
common in a power supply system.  
FB  
EN  
6
7
PHASE  
8
2012/10/16  
Rev.A.7  
2
EM5303/A  
Function Block Diagram  
VCC  
5
Internal  
regulator  
1
BOOT  
Soft Start  
POR  
2
8
UGATE  
PHASE  
OTP  
-
-
Gate  
control  
logic  
PWM  
6
FB  
EA  
VOCP  
+
Ramp  
VCC  
VCC  
17V  
Reference  
0.3V  
Oscillator  
4
3
LGATE  
GꢀD  
65% Vref  
FB  
Eꢀ  
7
Enable  
FB  
130% Vref  
2012/10/16  
Rev.A.7  
3
EM5303/A  
Absolute Maximum Ratings (Note 1)  
Supply voltage, VCC-------------------------------------------------------------- -0.3V to 16V  
PHASE to GND  
DC------------------------------------------------------------------------------------- -5V to 16V  
<200nS------------------------------------------------------------------------------- -10V to 32V  
BOOT to PHASE-------------------------------------------------------------------- 16V  
BOOT to GND  
DC------------------------------------------------------------------------------------- -0.3V to PHASE+16V  
<200nS------------------------------------------------------------------------------- -0.3V to 42V  
UGATE  
DC -----------------------------------------------------------------------------------  
VPHASE -0.3V to VBOOT + 0.3V  
<200ns------------------------------------------------------------------------------ VPHASE -5V to VBOOT +5V  
LGATE  
DC------------------------------------------------------------------------------------  
<200ns------------------------------------------------------------------------------  
-0.3V to VCC + 0.3V  
-5V to VCC+5V  
EN & FB------------------------------------------------------------------------------ -0.3V to 6V  
Power Dissipation, PD @ TA = 25°C, PSOP-8 ------------------------------ 1.33W  
Package Thermal Resistance, ΘJA, PSOP-8 (Note 2)-------------------------- 75°C/W  
Junction Temperature----------------------------------------------------------- 150°C  
Lead Temperature (Soldering, 10 sec.)-------------------------------------- 260°C  
Storage Temperature Range--------------------------------------------------- -65°C to 150°C  
ESD susceptibility(Note3)  
HBM (Human Body Mode)----------------------------------------------------- 2KV  
MM (Machine Mode)------------------------------------------------------------ 200V  
Recommended Operating Conditions (Note4)  
Supply Voltage, VCC --------------------------------------------------------  
Junction Temperature ----------------------------------------------------  
Ambient Temperature ----------------------------------------------------  
4.5V to 13.2V  
-40°C to 125°C  
-40°C to 85°C  
Electrical Characteristics  
VCC=12V, TA=25, unless otherwise specified  
Parameter  
Symbol  
Test Conditions  
Pin Min Typ  
Max Units  
Supply Input Section  
Supply Voltage  
VCC  
5
5
5
5
5
4.5  
4
13.2  
4.4  
V
mA  
mA  
V
Supply Current  
ICC  
LGATE, UGATE open, Switching.  
No Switching.  
3
Quiescent Supply Current  
Power on Reset Threshold  
Power on Reset Hysteresis  
ICCQ  
VCCRTH  
VCCHYS  
2
4.2  
0.2  
V
Internal Oscillator  
EM5303  
170 200 230  
255 300 345  
1
KHz  
KHz  
Vp-p  
Free Running Frequency  
Ramp Amplitude  
FSW  
EM5303A  
VOSC  
2012/10/16  
Rev.A.7  
4
EM5303/A  
Error Amplifier  
Open Loop DC Gain  
Gain-Bandwidth Product  
Slew Rate  
AO  
Guaranteed by Design  
Guaranteed by Design  
Guaranteed by Design  
Guaranteed by Design  
55  
3
70  
10  
6
dB  
GBW  
SR  
MHz  
V/us  
mS  
Trans-conductance  
PWM Controller Gate Drivers  
gm  
0.2  
0.7  
VBOOT - VPHASE = 12V,  
VBOOT - VUGATE = 6V  
VBOOT - VPHASE = 12V,  
VUGATE – VPHASE = 6V  
VBOOT - VPHASE = 12V,  
Upper Gate Sourcing Current  
Upper Gate Sinking Current  
Upper Gate RDS(ON) Sinking  
IUG_SRC  
IUG_SNK  
RUG_SNK  
2
2
2
-1  
1.5  
2
A
A
Ω
4
VUGATE – VPHASE = 0.1V  
Lower Gate Sourcing Current  
Lower Gate Sinking Current  
Lower Gate RDS(ON) Sinking  
PHASE Falling to LGATE Rising  
Delay  
ILG_SRC  
ILG_SNK  
RLG_SNK  
VCC – VLGATE = 6V  
4
4
4
-1  
1.5  
2
A
A
Ω
VLGATE = 6V  
VLGATE = 0.1V  
4
VCC = 12V; VPHASE < 1.2V to  
VLGATE > 1.2V  
30  
30  
90  
ns  
ns  
LGATE Falling to UGATE Rising  
Delay  
VCC = 12V; VLGATE < 1.2V to  
(VUGATE - VPHASE) > 1.2V  
90  
Reference Voltage  
Nominal Feedback Voltage  
Enable Voltage  
VFB  
VEN  
6
7
0.591 0.6 0.609  
0.3 0.35  
V
V
EN Enable Threshold  
Protection section  
FB Under Voltage Protection  
FB Over Voltage Protection  
VCC Over Voltage Protection  
Over Current Threshold  
Soft-Start Interval  
VFB_UVP FB falling  
6
6
5
55  
115 130 145  
16 17 18  
-425 -375 -325  
2.4 3.6 5.4  
150 165  
65  
75  
%
%
VFB_OVP FB rising  
VCC_OVP  
VOCP  
TSS  
V
mV  
ms  
Temperature Shutdown  
TSD  
Guaranteed by Design  
Note 1. Stresses listed as the above “Absolute Maximum Ratings” may cause permanent damage to the device. These are for  
stress ratings. Functional operation of the device at these or any other conditions beyond those indicated in the  
operational sections of the specifications is not implied. Exposure to absolute maximum rating conditions for extended  
periods may remain possibility to affect device reliability.  
Note 2.  
θ
JA is measured in the natural convection at TA=25oC on a 4-layers high effective thermal conductivity test board with  
minimum copper area of JEDEC 51-7 thermal measurement standard. The case point of θJC is on the expose pad for  
PSOP-8 package.  
Note 3. Devices are ESD sensitive. Handling precaution is recommended.  
Note 4. The device is not guaranteed to function outside its operating conditions.  
2012/10/16  
Rev.A.7  
5
EM5303/A  
Typical Operating Characteristics  
Power On Waveform  
Turn On from EN  
VIN  
VEN  
VOUT  
VOUT  
LGATE  
ILx  
LGATE  
ILx  
VIN=12VVOUT=1.2VCOUT=1000uFNo Load. VIN=12VVOUT=1.2VCOUT=1000uFNo Load.  
Turn Off from EN  
Switching Waveforms: UGATE Turn On  
VOUT  
UGATE  
VEN  
PHASE  
UGATE - PHASE  
LGATE  
ILx  
LGATE  
VIN=12VVOUT=1.2VCOUT=1000uFIOUT=6A.  
VIN=12VIOUT=10A  
Power Sequencing Operation  
Switching Waveforms: UGATE Turn Off  
UGATE  
PHASE  
VIN  
VOUT  
UGATE-PHASE  
LGATE  
LGATE  
VIN=12VIOUT=10A  
VCC =12V ReadyVOUT = 1.2V, COUT = 1000uF,  
No Load.  
2012/10/16  
Rev.A.7  
6
EM5303/A  
Load Transient Response  
Over Current Protection  
IOUT  
Phase  
VOUT  
VOUT  
Phase  
IOUT  
VIN=12VVOUT=1.2VCOUT=1000uF.  
VIN=12V, VOUT=1.2V, COUT=1000uF.  
Output short Ground  
Over Current Protection  
Load Regulation  
Phase  
VOUT  
IOUT  
Output current (A)  
VIN=12V, VOUT=1.2V, COUT=1000uF.  
Turn On to Short Circuit  
Line Regulation  
Switching Frequency vs. Input Voltage  
Input Voltage (V)  
Input Voltage (V)  
2012/10/16  
Rev.A.7  
7
EM5303/A  
Switching Frequency vs. Junction  
Temperature  
Output Voltage vs. Junction  
Temperature  
Junction Temperature ()  
Junction Temperature ()  
2012/10/16  
Rev.A.7  
8
EM5303/A  
Functional Description  
UVP, Under Voltage Protection  
EM5303/A is a voltage mode synchronous buck  
PWM controller. The compensation circuit is  
implemented internally to minimize the external  
component count. This device provides complete  
protection function such as over current protection,  
under voltage protection and over voltage  
protection.  
The FB voltage is monitored for under voltage  
protection. The UVP threshold is typical 0.4V.  
When UVP is triggered, EM5303/A will shut down  
the converter and cycles the soft start function in a  
hiccup mode.  
OVP, Over Voltage Protection  
The FB voltage is monitored for over voltage  
protection. The OVP threshold is typical 0.8V.  
When OVP is triggered, EM5303/A will turn off  
upper MOSFET and turn on lower MOSFET.  
Supply Voltage  
The VCC pin provides the bias supply of EM5303/A  
control circuit, as well as lower MOSFET’s gate and  
the BOOT voltage for the upper MOSFET’s gate. A  
minimum 0.1uF ceramic capacitor is recommended  
to bypass the supply voltage.  
Output Inductor Selection  
The output inductor is selected to meet the output  
voltage ripple requirements and minimize the  
response time to the load transient. The inductor  
value determines the current ripple and voltage  
ripple. The ripple current is approximately the  
following equation:  
Power ON Reset  
To let EM5303/A start to operation, VCC voltage  
must be higher than its POR voltage even when EN  
voltage is pulled higher than enable high voltage.  
Typical POR voltage is 4.2V.  
V VOUT  
VOUT  
IN  
Enable  
ΔIL =  
L
V *F  
IN  
To let EM5303/A start to operation, EN voltage  
must be higher than its enable voltage. Typical  
enable voltage is 0.3V.  
SW  
Output Capacitor Selection  
An output capacitor is required to filter the output  
and supply the load transient. The selection of  
output capacitor depends on the output ripple  
voltage. The output ripple voltage is approximately  
bounded by the following equation:  
Soft Start  
EM5303/A provides soft start function internally.  
The FB voltage will track the internal soft start  
signal, which ramps up from zero during soft start  
period.  
1
ΔVOUT = ΔIL *(ESR +  
)
OCP, Over Current Protection  
8*F * COUT  
SW  
The over current function protects the converter  
from a shorted output by using lower MOSFET’s  
on-resistance to monitor the current. The OCP level  
can be calculated as the following equation:  
Input Capacitor Selection  
Use a mix of input bypass capacitors to control the  
voltage overshoot across the MOSFET. Use small  
ceramic capacitors for high frequency decoupling  
and bulk capacitors to supply the current needed  
each time the upper MOSFET turn on. Place the  
small ceramic capacitors physically close to the  
MOSFETs and between the drain of the upper  
MOSFET and the source of the lower MOSFET. The  
important parameters of the input capacitor are  
the voltage rating and the RMS current rating.  
VOCP  
IOCP = −  
RDS(ON)  
When OCP is triggered, EM5303/A will shut down  
the converter and cycles the soft start function in a  
hiccup mode. If over current condition still exist  
after 3 times of hiccup, EM5303/A will shut down  
the controller and latch.  
2012/10/16  
Rev.A.7  
9
EM5303/A  
In high current applications, the MOSFET power  
dissipation, package selection and heat sink are the  
dominate design factor. The power dissipation  
includes two loss components: conduction loss and  
switching loss. The conduction losses are the  
largest component of power dissipation for both  
the upper and lower MOSFETs. These losses are  
distributed between the two MOSFETs according  
to duty factor.  
The capacitor voltage rating should be at least 1.25  
times greater than the maximum input voltage and  
a voltage rating of 1.5 times is a conservative  
guideline. The RMS current rating requirement can  
be expressed as the following equation:  
IRMS = IOUT D(1 -D)  
For a through hole design, several electrolytic  
capacitors may be needed. For surface mount  
designs, solid tantalum capacitors can also be used  
but caution must be exercised with regard to the  
capacitor surge current rating. These capacitors  
must be capable of handling the surge current at  
power-up. Some capacitor series available from  
reputable manufacturers are surge current tested.  
The power dissipations in the two MOSFETs are  
approximately the following equation:  
PDUPPER = I2OUT *RDS(ON) *D + 0.5*IOUT *V *F *tSW  
IN  
SW  
PDLOWER = I2OUT *RDS(ON) *(1 - D)  
Where D is the duty cycle, tSW is the combined  
switch ON and OFF time.  
Power MOSFET Selection  
The EM5303/A requires two N-Channel power  
MOSFETs. These should be selected based upon  
on-resistance, breakdown voltage, gate supply  
requirement,  
requirements.  
and  
thermal  
management  
2012/10/16  
Rev.A.7  
10  
EM5303/A  
Ordering & Marking Information  
Device Name: EM5303GE/EM5303AGE for PSOP-8  
EM  
5303  
EM5303GE Device Name  
ABCDEFG  
ABCDEFG: Date Code  
EM  
5303A  
EM5303AGE Device Name  
ABCDEFG: Date Code  
ABCDEFG  
Outline Drawing  
J
F
I
I
K
G
E
H
D
M
N
B
C
A
Dimension in mm  
Dimension  
A
B
C
D
E
F
G
H
I
J
K
M
N
Min.  
4.70 3.70 5.80 0.33  
1.20 0.02 0.40 0.19 0.25  
1.94 1.94  
0  
Typ.  
1.27  
Max.  
5.10 4.10 6.20 0.51  
1.62 0.15 0.83 0.26 0.50  
2.49 2.49  
8∘  
2012/10/16  
Rev.A.7  
11  

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