SPX1129N-5.0 [EXAR]

Fixed Positive LDO Regulator, 5V, 0.7V Dropout, PBCY3, TO-92, 3 PIN;
SPX1129N-5.0
型号: SPX1129N-5.0
厂家: EXAR CORPORATION    EXAR CORPORATION
描述:

Fixed Positive LDO Regulator, 5V, 0.7V Dropout, PBCY3, TO-92, 3 PIN

输出元件 调节器
文件: 总5页 (文件大小:167K)
中文:  中文翻译
下载:  下载PDF数据表文档文件
SPX1129  
500mA Low Dropout Voltage Regulator  
(PRELIMINARY INFORMATION)  
FEATURES  
APPLICATIONS  
Battery Powered Systems  
Cordless Telephones  
1% Output Accuracy 2.5V, 3.3V, 5V, @ 500mA Output  
Very Low Quiescent Current  
0.4V Dropout Voltage  
Radio Control Systems  
Portable/Palm Top/Notebook Computers  
Portable Consumer Equipment  
Portable Instrumentation  
Bar Code Scanners  
Extremely Tight Load and Line Regulation  
Current & Thermal Limiting  
Logic-Controlled Electronic Shutdown  
Reverse Battery Protection  
Output Programmable From 1.24 To 20V  
Equivalent Replacement For LT1129  
SMPS Post-Regulator  
Voltage Reference  
Automotive Electronics  
PRODUCT DESCRIPTION  
The SPX1129 is a low power voltage regulator. This device is an excellent choice for use in battery-powered applications such as  
cordless telephones, radio control systems, and portable computers. The SPX1129 features very low quiescent current and very low  
dropout voltage of 0.4 volts. This includes a tight initial tolerance of 1% max, and very low output temperature coefficient, making  
the SPX1129 useful as a low-power voltage reference.  
The error flag output feature is used as power-on reset for warning of a low output voltage, due to falling voltage input of batteries.  
The SPX1129 is offered TO-92, SOT-223, TO-220, TO-252 and TO-263 in 3 & 5 leads.  
PIN CONNECTIONS  
TO-263-5 (T)  
TO-252 (R)  
TO-92 (N)  
TO-263-3 (T)  
SPX1129  
SOT-223 (M3)  
SPX1129  
TO-220-3 (U)  
1
2
3
3
2
1
VIN  
1) OUTPUT  
2) SENSE/ ADJ  
3) GND  
4) SHDN  
SPX1129  
GND  
VOUT  
1
2
3
SPX1129  
1
3
2
1
2
4
5
3
VOUT  
1
2
3
4) V  
VIN GND VOUT  
GND  
VIN  
IN  
Top View  
Front View  
Bottom View  
VOUT GND VIN  
Top View  
Top View  
VOUT  
VIN  
GND  
VOUT  
SHDN  
Front View  
<0.25V OFF  
ON  
ON  
>2.8V  
NC  
Rev. 10/25/00  
SPX1129  
ABSOLUTE MAXIMUM RATINGS  
Power Dissipation……………………...… Internally Limited  
Lead Temp. (Soldering, 5 Seconds)…………….……. 260°C  
Storage Temperature Range……………… -65°C to + 150°C  
Operating Junction Temperature Range  
Maximum Input Supply Voltage....................................... +20V  
Shutdown Input Voltage ...................................... -0.6V to 6.5V  
SPX1129……………………………..… -40°C to + 125°C  
ELECTRICAL CHARACTERISTICS at V = ±15V, T = 25°C, unless otherwise specified.  
applies over the full  
Boldface  
S
A
operating temperature range.  
PARAMETER  
Typ.  
UNITS  
CONDITIONS  
SPX1129  
Min Max  
(Note 2)  
2.5V Version  
Output Voltage  
2.475  
2.450  
2.525  
2.550  
25  
V
µA  
V
2.5  
2.5  
16  
1mA IL 500mA  
VOUT = 2.5V, VIN = 0V  
Reverse Output Current  
3.3V Version  
Output Voltage  
3.3  
3.3  
16  
3.267  
3.217  
3.333  
3.382  
25  
1mA IL 500mA  
VOUT = 3.3V, VIN = 0V  
Reverse Output Current  
5V Version  
Output Voltage  
µA  
V
5.0  
5.0  
16  
4.950  
5.050  
5.120  
25  
4.880  
1mA IL 500mA  
VOUT = 5.0V, VIN = 0V  
Reverse Output Current  
µA  
All Voltage Options  
Output Voltage  
20  
ppm/°C  
100  
10  
Temperature Coefficient  
Line Regulation (Note 3)  
(Note 1)  
1.5  
0.04  
%max  
%max  
6V VIN 20V (Note 4)  
Load Regulation (Note 3)  
IL = 1 to 500mA  
IL = 0.1 to 1mA  
IL = 1mA  
0.20  
0.30  
0.16  
0.25  
0.55  
0.70  
150  
500  
2.5  
Dropout Voltage  
(Note 5)  
0.13  
0.42  
V
IL = 500mA  
Ground Current  
IL = 1mA  
100  
350  
1.5  
4.0  
7
200  
58  
µA  
IL = 10mA  
IL = 50mA  
IL = 100mA  
IL = 500mA  
VOUT = 0  
mA  
7.0  
14  
Current Limit  
Ripple Rejection  
mA  
dB  
500  
VIN – VOUT 1V (Avg), VRIPPLE = 0.5Vp-p  
fripple = 120Hz, ILOAD = 500mA, TJ = 25°C  
VIN = -20V, VOUT = 0V  
50  
Input Reverse Leakage Current  
1.0  
mA  
Rev. 10/25/00  
SPX1129  
Note 1: Output or reference voltage temperature coefficients defined as the worst-case voltage change divided by the total temperature range.  
Note 2: Unless otherwise specified all limits are guaranteed for TJ = 25°C, VIN = 6V, IL = 100µA and CL = 1µF. Additional conditions for the 8-pin versions are  
feedback tied to 5V tap and output tied to output sense (VOUT = 5V) and VSHUTDOWN 0.8V.  
Note 3: Regulation is measured at constant junction temperature, using pulse testing with a low duty cycle. Changes in output voltage due to heating effects are  
covered under the specification for thermal regulation.  
Note 4: Line regulation for the SPX1129 is tested at 150°C for IL = 1 mA. For IL = 100µA and TJ = 125°C, line regulation is guaranteed by design to 0.2%. See  
typical performance characteristics for line regulation versus temperature and load current.  
Note 5: Dropout voltage is defined as the input to output differential at which the output voltage drops 100 mV below its nominal value measured at 1V differential at  
very low values of programmed output voltage, the minimum input supply voltage of 2V (2.3V over temperature) must be taken into account.  
Note 6: Comparator thresholds are expressed in terms of a voltage differential at the feedback terminal below the nominal reference voltage measured at 6V input. To  
express these thresholds in terms of output voltage change, multiply by the error amplifier gain = VOUT/VREF = (R1 + R2)/R2. For example, at a programmed output  
voltage of 5V, the Error output is guaranteed to go low when the output drops by 95 mV x 5V/1.235 = 384 mV. Thresholds remain constant as a percent of VOUT as  
VOUT is varied, with the dropout warning occurring at typically 5% below nominal, 7.5% guaranteed.  
APPLICATION HINTS  
This problem can be fixed by adding a 100pF capacitor between  
output and feedback and increasing the output capacitor to at least  
3.3µF.  
EXTERNAL CAPACITORS  
The stability of the SPX1129 requires a 2.2µF or greater  
capacitor between output and ground. Oscillation could occur  
without this capacitor. Most types of tantalum or aluminum  
electrolytic works fine here. For operations of below -25°C solid  
tantalum is recommended since the many aluminum types have  
electrolytes the freeze at about -30°C. The ESR of about 5or  
less and resonant frequency above 500kHz are the most  
important parameters in the value of the capacitor. The capacitor  
value can be increased without limit.  
ERROR DETECTION COMPARATOR OUTPUT  
The Comparator produces a logic low output whenever the SPX1129  
output falls out of regulation by more than around 5%. This is around  
60mV offset divided by the 1.235 reference voltage. This trip level  
remains 5% below normal regardless of the programmed output  
voltage of the regulator. Figure 1 shows the timing diagram depicting  
the ERROR signal and the regulator output voltage as the SPX1129  
input is ramped up and down. The ERROR signal becomes low at  
around 1.3V input, and goes high around 5V input (input voltage at  
which Vout = 4.75). Since the SPX1129’s dropout voltage is load  
dependent, the input voltage trip point (around 5V) will vary with the  
load current. The output voltage trip point (approx. 4.75V) does not  
vary with load.  
At lower values of output current, less output capacitance is  
required for stability. For the currents below 10mA the value of  
the capacitor can be reduced to 0.5µF and 0.15µF for 1mA. More  
output capacitance needed for the 8-pin version at voltages below  
5V since it runs the error amplifier at lower gain. At worst case  
5µF or greater must be used for the condition of 250mA load at  
1.23V output.  
The error comparator has an open-collector output, which requires an  
external pull-up resistor. Depending on the system requirements the  
resistor may be returned to 5V output or other supply voltage. In  
determining the value of this resistor, note that the output is rated to  
sink 400µA, this value adds to battery drain in a low battery  
condition. Suggested values range from 100K to 1M. If the output  
is unused this resistor is not required.  
The SPX1129, unlike other low dropout regulators will remain  
stable and in regulation with no load in addition to the internal  
voltage divider.  
This feature is especially important in  
application like CMOS RAM keep-alive. When setting the output  
voltage of the SPX1129, a minimum load of 10mA is  
recommended.  
If there is more than 10 inches of wire between the input and the  
AC filter capacitor or if a battery is used as the input then a 0.1µF  
tantalum or aluminum electrolytic capacitor should be placed  
from the input to the ground.  
PROGRAMMING THE OUTPUT VOLTAGE OF  
SPX1129  
The SPX1129 may be pin-strapped for 5V using its internal voltage  
divider by tying Pin 1 (output) to Pin 2 (sense) and Pin 7 (feedback)  
Instability can occur if there is stray capacitance to the SPX1129  
feedback terminal (pin 7). This could cause more problems when  
using a higher value of external resistors to set the output voltage.  
to Pin 6 (5V Tap).  
SHUTDOWN  
4.75V  
VOUT  
OUTPUT  
VOLTAGE  
VIN  
8
5
1
2
SPX1129  
ERROR*  
GND  
3, 6, 7  
ADJ  
+
5.0V  
+
INPUT  
VOLTAGE  
+
1.3V  
+
* See Application Information.  
Figure 1. ERROR Output Timing  
Figure 2. Adjustable Voltage Regulator  
Rev. 10/25/00  
SPX1129  
Also, it may be programmed for any output voltage between its  
1.235V reference and its 30V maximum rating. As seen in  
Figure 2, an external pair of resistors is required.  
Refer to the below equation for the programming of the output  
voltage:  
REDUCING OUTPUT NOISE  
It may be an advantage to reduce the AC noise present at the output.  
One way is to reduce the regulator bandwidth by increasing the size of  
the output capacitor. This is the only way that noise can be reduced  
on the 3 lead SPX1129 but is relatively inefficient, as increasing the  
capacitor from 1µF to 220µF only decreases the noise from 430µV to  
160µV Vrms for a 100kHz bandwidth at 5V output.  
V
OUT = VREF × (1 + R1/ R2)+ IFBR1  
Noise could also be reduced fourfold by a bypass capacitor across R1,  
since it reduces the high frequency gain from 4 to unity. Pick  
The VREF is 1.235 and IFB is the feedback bias current, nominally  
-20nA. The minimum recommended load current of 1 µA forces  
an upper limit of 1.2 Mon value of R2. If no load is presented  
the IFB produces an error of typically 2% in VOUT, which may be  
eliminated at room temperature by trimming R1. To improve the  
accuracy choose the value of R2 = 100k this reduces the error by  
0.17% and increases the resistor program current by 12µA. Since  
the SPX1129 typically draws 60 µA at no load with Pin 2 open-  
circuited this is a small price to pay  
C
BYPASS 1 / 2πR1 × 200 Hz  
or choose 0.01µF. When doing this, the output capacitor must be  
increased to 3.3µF to maintain stability. These changes reduce the  
output noise from 430µV to 100µV Vrms for a 100kHz bandwidth at  
5V output. With the bypass capacitor added, noise no longer scales  
with output voltage so that improvements are more dramatic at higher  
output voltages.  
HEAT SINK REQUIREMENTS  
Depending on the maximum ambient temperature and maximum  
power dissipation a heat sink may be required with the SPX1129.  
The junction temperature range has to be within the range  
specified under Absolute Maximum Ratings under all possible  
operating conditions. To find out if a heat sink is required, the  
maximum power dissipation of the device needs to be calculated.  
This is the maximum specific AC voltage that must be taken into  
consideration at input. Figure 3 shows the condition and power  
dissipation which should be calculated with the following  
formula:  
IIN  
5V  
+
VOUT  
OUT  
IN  
IL  
P
TOTAL = (VIN - 5) * IL + (VIN) IG  
SPX1129  
Next step is to calculate the temperature rise TR (max). TJ (max)  
maximum allowable junction temperature, TA (max) maximum  
ambient temperature :  
LOAD  
+
2.2uF  
GND  
TR (max) = TJ (max) - TA (max)  
IG  
IIN = IL + IG  
Junction to ambient thermal resistance θ(J-A) can be calculated  
after determining of PTOTAL & TR (max):  
Figure 3. Fixed +5V Regulator Circuit  
θ(J-A) = TR (max)/P(max)  
If the θ(J-A) is 60°C/W or higher, the device could be operated  
without a heat sink. If the value is below 60°C/W then the heat  
sink is required and the thermal resistance of the heat sink can be  
calculated by the following formula, θ(J-C) junction to case, θ(C-H)  
case to heat sink, θ(H-A) heat sink to ambient:  
θ(J-A) = θ(J-C) + θ(C-H) + θ(H-A)  
Rev. 10/25/00  
SPX1129  
ORDERING INFORMATION  
Ordering No. Temperature Output Voltages  
Packages  
TO-92  
2.5V  
3.3V  
5.0V  
2.5V  
3.3V  
5.0V  
2.5V  
3.3V  
5.0V  
2.5V  
3.3V  
5.0V  
2.5V  
3.3V  
5.0V  
2.5V  
3.3V  
5.0V  
SPX1129N-2.5  
SPX1129N-3.3  
SPX1129N-5.0  
SPX1129M3-2.5  
SPX1129M3-3.3  
SPX1129M3-5.0  
SPX1129U-2.5  
SPX1129U-3.3  
SPX1129U-5.0  
SPX1129T-2.5  
SPX1129T-3.3  
SPX1129T-5.0  
SPX1129T3-2.5  
SPX1129T3-3.3  
SPX1129T3-5.0  
SPX1129R-2.5  
SPX1129R-3.3  
SPX1129R-5.0  
-40°C to 125°C  
-40°C to 125°C  
-40°C to 125°C  
-40°C to 125°C  
-40°C to 125°C  
-40°C to 125°C  
-40°C to 125°C  
-40°C to 125°C  
-40°C to 125°C  
-40°C to 125°C  
-40°C to 125°C  
-40°C to 125°C  
-40°C to 125°C  
-40°C to 125°C  
-40°C to 125°C  
-40°C to 125°C  
-40°C to 125°C  
-40°C to 125°C  
TO-92  
TO-92  
3 Lead SOT-223  
3 Lead SOT-223  
3 Lead SOT-223  
3 Lead TO-220  
3 Lead TO-220  
3 Lead TO-220  
5 Lead TO-263  
5 Lead TO-263  
5 Lead TO-263  
3 Lead TO-263  
3 Lead TO-263  
3 Lead TO-263  
3 Lead TO-252  
3 Lead TO-252  
3 Lead TO-252  
Corporation  
SIGNAL PROCESSING EXCELLENCE  
Sipex Corporation  
Headquarters and Main Offices:  
22 Linnell Circle  
Billerica, MA 01821  
TEL: (978) 667-8700  
FAX: (978) 670-9001  
e-mail: sales@sipex.com  
233 South Hillview Drive  
Milpitas, CA 95035  
TEL: (408) 935-7600  
FAX: (408) 934-7500  
Sipex Corporation reserves the right to make changes to any products described herein. Sipex does not assume any liability arising out of the application or use of any product or circuit described  
hereing; neither does it convey any license under its patent rights nor the rights of others.  
Rev. 10/25/00  

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