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 LT1117/LT1117-2.85 LT1117-3.3/LT1117-5 800mA Low Dropout Positive Regulators Adjustable and Fixed 2.85V, 3.3V, 5V DESCRIPTIO
The LT(R)1117 is a positive low dropout regulator designed to provide up to 800mA of output current. The device is available in an adjustable version and fixed output voltages of 2.85V, 3.3V and 5V. The 2.85V version is designed specifically to be used in Active Terminators for the SCSI bus. All internal circuitry is designed to operate down to 1V input to output differential. Dropout voltage is guaranteed at a maximum of 1.2V at 800mA, decreasing at lower load currents. On chip trimming adjusts the reference/output voltage to within 1%. Current limit is also trimmed in order to minimize the stress on both the regulator and the power source circuitry under overload conditions. The low profile surface mount SOT-223 package allows the device to be used in applications where space is limited. The LT1117 requires a minimum of 10F of output capacitance for stability. Output capacitors of this size or larger are normally included in most regulator designs. Unlike PNP type regulators where up to 10% of the output current is wasted as quiescent current, the quiescent current of the LT1117 flows into the load, increasing efficiency.
, LTC and LT are registered trademarks of Linear Technology Corporation.
FEATURES
s s s s s s s
Space Saving SOT-223 Surface Mount Package 3-Terminal Adjustable or Fixed 2.85V, 3.3V, 5V Output Current of 800mA Operates Down to 1V Dropout Guaranteed Dropout Voltage at Multiple Current Levels 0.2% Line Regulation Max 0.4% Load Regulation Max
APPLICATIO S
s s s s s
Active SCSI Terminators High Efficiency Linear Regulators Post Regulators for Switching Supplies Battery Chargers 5V to 3.3V Linear Regulators
TYPICAL APPLICATIO
Dropout Voltage (VIN - VOUT)
1.4 1.2
DROPOUT VOLTAGE (V)
Active Terminator for SCSI-2 Bus
110 110 LT1117-2.85 IN 4.75V TO 5.25V OUT GND 10F 110 18 TO 27 LINES
1.0 TJ = 25C 0.8 0.6 0.4 0.2 TJ = 125C
+
+
22F
110
INDICATES GUARANTEED TEST POINT
LT1117 * TA01
0 0 100 200 300 400 500 600 700 800 OUTPUT CURRENT (mA)
LT1117 * TPC01
U
U
U
-40C TJ < 0C 0C TJ 125C
1
LT1117/LT1117-2.85 LT1117-3.3/LT1117-5
ABSOLUTE
AXI U
RATI GS
Input Voltage Operating Voltage LT1117, LT1117-3.3, LT1117-5 ...................... 15V LT1117-2.85 ................................................... 10V Surge Voltage LT1117, LT1117-3.3, LT1117-5 ...................... 20V
PACKAGE/ORDER I FOR ATIO
FRONT VIEW 3 TAB IS VOUT 2 1 IN OUT ADJ/GND
ST PACKAGE 3-LEAD PLASTIC SOT-223 TJ MAX = 125C,JC = 15C/W
ORDER PART NUMBER LT1117CST LT1117CST-2.85 LT1117CST-3.3 LT1117CST-5 LT1117IST LT1117IST-2.85 LT1117IST-3.3 LT1117IST-5 ST PART MARKING 1117 1117I 11172 1117I2 11173 1117I3 11175 1117I5
Consult factory for Military grade parts.
ELECTRICAL CHARACTERISTICS
The q denotes specifications which apply over the full operating temperature range, otherwise specifications are at TJ = 25C.
PARAMETER Reference Voltage Output Voltage LT1117 LT1117-2.85 CONDITIONS IOUT = 10mA, (VIN - VOUT) = 2V, TJ = 25C 10 IOUT 800mA, 1.4V (VIN - VOUT) 10V IOUT = 10mA, VIN = 4.85V, TJ = 25C 0 IOUT 800mA, 4.25V VIN 10V 0 IOUT 500mA, VIN = 3.95V IOUT = 10mA, VIN = 5V, TJ = 25C 0 IOUT 800mA, 4.75V VIN 10V IOUT = 10mA, VIN = 7V, TJ = 25C 0 IOUT 800mA, 6.50V VIN 12V IOUT = 10mA, 1.5V VIN - VOUT 15V (Note 2) IOUT = 0mA, 4.25V VIN 10V (Note 2) IOUT = 0mA, 4.75V VIN 15V (Note 2) IOUT = 0mA, 6.5V VIN 15V (Note 2)
q q q q q q q q q
LT1117-3.3 LT1117-5 Line Regulation LT1117 LT1117-2.85 LT1117-3.3 LT1117-5
2
U
U
W
WW U
W
(Note 1)
Operating JunctionTemperature Range C Grade ................................................. 0C to 125C I Grade ............................................. - 40C to 125C Storage Temperature Range ................. - 65C to 150C Lead Temperature ................... (See Soldering Methods)
ORDER PART NUMBER LT1117CM LT1117CM-2.85 LT1117CM-3.3 LT1117CM-5
FRONT VIEW 3 TAB IS VOUT 2 1 M PACKAGE 3-LEAD PLASTIC DD IN OUT ADJ/GND
TJ MAX = 125C,JC = 10C/W
DD PART MARKING 1117 11172 11173 11175
MIN 1.238 1.225 2.820 2.790 2.790 3.267 3.235 4.950 4.900
TYP
MAX
UNITS V V V V V V V V V % mV mV mV
1.250 1.262 1.250 1.270 2.850 2.880 2.850 2.910 2.850 2.910 3.300 3.333 3.300 3.365 5.000 5.050 5.000 5.100 0.035 1 1 1 0.2 6 6 10
LT1117/LT1117-2.85 LT1117-3.3/LT1117-5
ELECTRICAL CHARACTERISTICS
The q denotes specifications which apply over the full operating temperature range, otherwise specifications are at TJ = 25C.
PARAMETER Load Regulation LT1117 LT1117-2.85 LT1117-3.3 LT1117-5 CONDITIONS (VIN - VOUT) = 3V, 10mA IOUT 800mA (Note 2) VIN = 4.25V, 0 IOUT 800mA (Note 2) VIN = 4.75V, 0 IOUT 800mA (Note 2) VIN = 6.5V, 0 IOUT 800mA (Note 2) IOUT = 100mA, 0C TJ 125C (Note 3) IOUT = 500mA, 0C TJ 125C (Note 3) IOUT = 800mA, 0C TJ 125C (Note 3) IOUT = 100mA, - 40C TJ < 0C (Note 3) IOUT = 500mA, - 40C TJ < 0C (Note 3) IOUT = 800mA, - 40C TJ < 0C (Note 3) Current Limit Minimum Load Current Quiescent Current LT1117 LT1117-2.85 LT1117-3.3 LT1117-5 (VIN - VOUT) = 5V, TJ = 25C, (VIN - VOUT) = 15V (Note 4) VIN 10V VIN 15V VIN 15V TA = 25C, 30ms Pulse fRIPPLE = 120Hz, (VIN - VOUT) = 3V, VRIPPLE = 1VP-P 10mA IOUT 800mA, 1.4V (VIN - VOUT) 10V TA = 125C, 1000Hrs (% of VOUT), 10Hz f 10kHz (Junction-to-Case, at Tab)
q q q q q q q q q q q
MIN
TYP 0.1 1 1 1 1.00 1.05 1.10 1.00 1.05 1.10
MAX 0.4 10 10 15 1.10 1.15 1.20 1.20 1.25 1.30 1200 5 10 10 10 0.1 120 5
UNITS % mV mV mV V V V V V V mA mA mA mA mA %/W dB A A % % % C/W
Dropout Voltage
800
950 1.7 5 5 5 0.01
Thermal Regulation Ripple Rejection Adjust Pin Current Adjust Pin Current Change Temperature Stability Long Term Stability RMS Output Noise Thermal Resistance
60
75 55 0.2 0.5 0.3 0.003 15
Note 1: Absolute Maximum Ratings are those values beyond which the life to the device may be imparied. Note 2: See thermal regulation specification for changes in output voltage due to heating effects. Load regulation and line regulation are measured at a constant junction temperature by low duty cycle pulse testing.
Note 3: Dropout voltage is specified over the full output current range of the device. Dropout voltage is defined as the minimum input/output differential measured at the specified output current. Test points and limits are also shown on the Dropout Voltage curve. Note 4: Minimum load current is defined as the minimum output current required to maintain regulation.
TYPICAL PERFOR A CE CHARACTERISTICS
Minimum Operating Current (Adjustable Device)
4 MINIMUM OPERATING CURRENT (mA) 1.25
OUTPUT VOLTAGE DEVIATION (%)
SHORT CIRCUIT CURRENT (A)
3
TJ = 125C TJ = 25C
2 TJ = -55C 1
0 0 5 10 15 INPUT/OUTPUT DIFFERENTIAL (V) 20
UW
LT1117 * TPC02
Short-Circuit Current
0.10 TJ = 125C TJ = 25C 0.75 0.05 0 - 0.05 - 0.10 - 0.15
Load Regulation
ILOAD = 800mA
1.00
0.50
0.25
0 0 5 10 INPUT/OUTPUT DIFFERENTIAL (V) 15
- 0.20 -50
-25
0 25 50 75 TEMPERATURE (C)
100
125
LT1117 * TPC03
LT1117 * TPC04
3
LT1117/LT1117-2.85 LT1117-3.3/LT1117-5
TYPICAL PERFOR A CE CHARACTERISTICS
LT1117 Ripple Rejection
100 90 80 RIPPLE REJECTION (dB) 70 60 50 40 30 20 10 0 CADJ = 200F AT f < 60Hz CADJ = 25F AT f > 60Hz IOUT = 0.5A 10 100 1k 10k FREQUENCY (Hz) 100k (VIN - VOUT) VDROPOUT VRIPPLE 3VP-P VRIPPLE 0.5VP-P
RIPPLE REJECTION (dB)
(VIN - VOUT) 3V
fRIPPLE = 120Hz VRIPPLE 3VP-P fRIPPLE = 20kHz VRIPPLE 0.5VP-P
OUTPUT VOLTAGE CHANGE (%)
Adjust Pin Current
100
OUPUT VOLTAGE DEVIATION (V)
90
AJUST PIN CURRENT (A)
0.2 0.1 0 -0.1 -0.2
80 70 60 50 40
OUPUT VOLTAGE DEVIATION (V)
LOAD CURRENT (A)
20 10 0 -50 -25 0 25 50 75 100 125 150 TEMPERATURE (C)
LT1117 * TPC08
0.5 0 -0.5 0 10 20 30 40 50 60 70 80 90 100 TIME (s)
LT1117 * TPC09
LOAD CURRENT (A)
30
LT1117-2.8 Line Transient Response
OUPUT VOLTAGE DEVIATION (mV)
OUPUT VOLTAGE DEVIATION (mV) CIN = 1F 40 COUT = 10F TANTALUM IOUT = 0.1A 20 0 -20 -40 60 60 40 20 0 -20 -40 INPUT VOLTAGE (V) 7.50 6.50 5.50
INPUT VOLTAGE (V)
5.25 4.25 3.25 0 20 40 60 80 100 120 140 160 180 200 TIME (s)
LT1117 * TPC11
4
UW
LT1117 * TPC05
LT1117 Ripple Rejection vs Current
100 VOUT = 5V 90 CADJ = 25F COUT = 25F 80 70 60 50 40 30 20 10 0 0 0.2 0.4 0.6 OUTPUT CURRENT (A) 0.8 2.0
Temperature Stability
1.0
0
-1.0
-2.0 -50 -25
0
25 50 75 100 125 150 TEMPERATURE (C)
LT1117 * TPC07
LT1117 * TPC06
LT1117-2.85 Load Transient Response
0.3 CIN = 10F COUT = 10F TANTALUM VIN = 4.25V PRELOAD = 0.1A 0.3
LT1117-5 Load Transient Response
CIN = 10F 0.2 COUT = 10F TANTALUM VIN = 6.5V 0.1 PRELOAD = 0.1A 0 -0.1 -0.2 0.5 0 -0.5 0 10 20 30 40 50 60 70 80 90 100 TIME (s)
LT1117 * TPC10
LT1117-5 Line Transient Response
CIN = 1F COUT = 10F TANTALUM IOUT = 0.1A
0
20 40 60 80 100 120 140 160 180 200 TIME (s)
LT1117 * TPC12
LT1117/LT1117-2.85 LT1117-3.3/LT1117-5
BLOCK DIAGRA W
IN
+ -
THERMAL LIMIT
ADJ
OUT
GND
FOR FIXED VOLTAGE DEVICE
LT1117 * BD01
APPLICATIO HI TS
The LT1117 family of 3-terminal regulators are easy to use. They are protected against short circuit and thermal overloads. Thermal protection circuitry will shut down the regulator should the junction temperature exceed 165C at the sense point. These regulators are pin compatible with older 3-terminal adjustable regulators, offer lower dropout voltage and more precise reference tolerance. Reference stability over temperature is improved over older types of regulators. Stability The LT1117 family of regulators requires an output capacitor as part of the device frequency compensation. A minimum of 10F of tantalum or 50F of aluminum electrolytic is required. The ESR of the output capacitor should be less than 0.5. Surface mount tantalum capacitors, which have very low ESR, are available from several manufacturers. When using the LT1117 adjustable device the adjust terminal can be bypassed to improve ripple rejection. When the adjust terminal is bypassed the required value of the output capacitor increases. The device will require an output capacitor of 22F tantalum or 150F aluminum electrolytic when the adjust pin is bypassed. Normally, capacitor values on the order of 100F are used in the output of many regulators to ensure good load transient response with large load current changes. Output capacitance can be increased without limit and larger values of output capacitance further improve stability and transient response. Protection Diodes In normal operation, the LT1117 family does not need any protection diodes. Older adjustable regulators required protection diodes between the adjust pin and the output and between the output and input to prevent over stressing the die. The internal current paths on the LT1117 adjust pin are limited by internal resistors. Therefore, even with capacitors on the adjust pin, no protection diode is needed to ensure device safety under short-circuit conditions.
UU
5
LT1117/LT1117-2.85 LT1117-3.3/LT1117-5
APPLICATIO HI TS
The adjust pin can be driven, on a transient basis, 25V with respect to the output without any device degradation. Diodes between input and output are not usually needed. The internal diode between the output and input pins of the device can withstand microsecond surge currents of 10A to 20A. Normal power supply cycling can not generate currents of this magnitude. Only with extremely large output capacitors, such as 1000F and larger, and with the input pin instantaneously shorted to ground can damage occur. A crowbar circuit at the input of the LT1117 in combination with a large output capacitor could generate currents large enough to cause damage. In this case a diode from output to input is recommended, as shown in Figure 1.
D1 1N4002 (OPTIONAL)
VIN
IN ADJ
Output Voltage The LT1117 develops a 1.25V reference voltage between the output and the adjust terminal (see Figure 2). By placing a resistor between these two terminals, a constant current is caused to flow through R1 and down through R2
VIN IN
VIN
+
IN ADJ IADJ 50A
R2 VOUT = VREF 1 + -- + IADJ R2 R1
Figure 2. Basic Adjustable Regulator
6
UU
LT1117
to set the overall output voltage. Normally this current is chosen to be the specified minimum load current of 10mA. Because IADJ is very small and constant when compared to the current through R1, it represents a small error and can usually be ignored. For fixed voltage devices R1 and R2 are included in the device. Load Regulation Because the LT1117 is a 3-terminal device, it is not possible to provide true remote load sensing. Load regulation will be limited by the resistance of the wire connecting the regulator to the load. The data sheet specification for load regulation is measured at the output pin of the device. Negative side sensing is a true Kelvin connection, with the bottom of the output divider returned to the negative side of the load. Although it may not be immediately obvious, best load regulation is obtained when the top of the resistor divider (R1) is returned directly to the output pin of the device, not to the load. This is illustrated in Figure 3. Connected as shown, RP is not multiplied by the divider ratio. If R1 were connected to the load, the effective resistance between the regulator and the load would be: RP x R2 + R1 ,RP = Parasitic Line Resistance R1
LT1117 OUT ADJ R1 CONNECT R1 TO CASE R2 RL RP PARASITIC LINE RESISTANCE
OUT R1
+
VOUT COUT 150F
+
CADJ 10F
R2
LT1117 * TA02
Figure 1
LT1117
LT1117 * TA04
OUT VREF R1
VOUT
CONNECT R2 TO LOAD
()
Figure 3. Connections for Best Load Regulation
R2
LT1117 * TA03
For fixed voltage devices the top of R1 is internally Kelvin connected, and the ground pin can be used for negative side sensing.
LT1117/LT1117-2.85 LT1117-3.3/LT1117-5
APPLICATIO HI TS
Thermal Considerations LT1117 series regulators have internal thermal limiting circuitry designed to protect the device during overload conditions. For continuous normal load conditions however, the maximum junction temperature rating of 125C must not be exceeded. It is important to give careful consideration to all sources of thermal resistance from junction to ambient. For the SOT-223 package, which is designed to be surface mounted, additional heat sources mounted near the device must also be considered. Heat sinking is accomplished using the heat spreading capability of the PC board and its copper traces. The thermal resistance of the LT1117 is 15C/W from the junction to the tab. Thermal resistances from tab to ambient can be as low as 30C/W. The total thermal resistance from junction to ambient can be as low as 45C/W. This requires a reasonable sized PC board with at least one layer of copper to spread the heat across the board and couple it into the surrounding air. Experiments have shown that the heat spreading copper layer does not need to be electrically connected to the tab of the device. The PC material can be very effective at transmitting heat between the pad area, attached to the tab of the device, and a ground plane layer either inside or on the opposite side of the board. Although the actual thermal resistance of the PC material is high, the Length/Area ratio of the thermal resistor between layers is small. The data in Table 1 was taken using 1/16" FR-4 board with 1oz. copper foil. It can be used as a rough guideline in estimating thermal resistance.
Table 1.
COPPER AREA TOPSIDE* 2500 Sq. mm 1000 Sq. mm 225 Sq. mm 100 Sq. mm 1000 Sq. mm 1000 Sq. mm BACKSIDE 2500 Sq. mm 2500 Sq. mm 2500 Sq. mm 2500 Sq. mm 1000 Sq. mm 0 THERMAL RESISTANCE BOARD AREA (JUNCTION-TO-AMBIENT) 2500 Sq. mm 2500 Sq. mm 2500 Sq. mm 2500 Sq. mm 1000 Sq. mm 1000 Sq. mm 45C/W 45C/W 53C/W 59C/W 52C/W 55C/W
* Tab of device attached to topside copper
UU
The thermal resistance for each application will be affected by thermal interactions with other components on the board. Some experimentation will be necessary to determine the actual value. The power dissipation of the LT1117 is equal to: PD = ( VIN - VOUT )( IOUT ) Maximum junction temperature will be equal to: TJ = TA(MAX) + PD(Thermal Resistance (junction-toambient)) Maximum junction temperature must not exceed 125C. Ripple Rejection The curves for Ripple Rejection were generated using an adjustable device with the adjust pin bypassed. These curves will hold true for all values of output voltage. For proper bypassing, and ripple rejection approaching the values shown, the impedance of the adjust pin capacitor, at the ripple frequency, should be < R1. R1 is normally in the range of 100 to 200. The size of the required adjust pin capacitor is a function of the input ripple frequency. At 120Hz, with R1 = 100, the adjust pin capacitor should be > 13F. At 10kHz only 0.16F is needed. For fixed voltage devices, and adjustable devices without an adjust pin capacitor, the output ripple will increase as the ratio of the output voltage to the reference voltage (VOUT/ VREF). For example, with the output voltage equal to 5V, the output ripple will be increased by the ratio of 5V/1.25V. It will increase by a factor of four. Ripple rejection will be degraded by 12dB from the value shown on the curve.
7
LT1117/LT1117-2.85 LT1117-3.3/LT1117-5
TYPICAL APPLICATIO S
1.2V to 10V Adjustable Regulator
LT1117 VIN IN ADJ OUT R1 121 VOUT
VIN IN
+
C1* 10F
R2 1k
* NEEDED IF DEVICE IS FAR FROM FILTER CAPACITORS R2 V -- OUT = 1.25V 1 + R1
()
VIN
+
10F 121
100pF
+
RETURN
Adjusting Output Voltage of Fixed Regulators
LT1117-5 VIN > 12V 10F
+
IN GND
OUT
+
10F* 1k
* OPTIONAL IMPROVES RIPPLE REJECTION
LT1117 * TA05
8
U
5V Regulator with Shutdown
LT1117 OUT ADJ 10F 1k TTL 1k 2N3904 121 1% 5V
+
+
C2 100F
+
100F 365 1%
LT1117 * TA06
LT1117 * TA05
Remote Sensing
LT1117 IN ADJ 100F 25 6 1 8 4 365 OUT RP (MAX. DROP 300mV)
OUTPUT 5V
+
VIN 7 LM301A
- +
2 RL
3 1k 5F
RETURN 25
LT1117 * TA07
Regulator with Reference
LT1117-5
+
5V TO 10V 100F
VIN > 11.5V 10F
+
IN GND
OUT
+
10V 100F
5VOUT LT1029
LT1117 * TA06
LT1117/LT1117-2.85 LT1117-3.3/LT1117-5
TYPICAL APPLICATIO S
Battery Charger
LT1117 VIN IN 1.25V ADJ OUT RS R1 R2 VOUT - 1.25V 1 + -- R1 R2 -RS 1 + -- R1 1 IF VOUT
VIN 10F
IF =
IF = VOUT
R2 -RS 1 + -- R1
Improving Ripple Rejection
LT1117 VIN 10F
+
IN ADJ
OUT
R1 121 1%
R2 365 * C1 IMPROVES RIPPLE 1% REJECTION. XC SHOULD BE R1 AT RIPPLE FREQUENCY
+
+VIN MUR410 SWITCHING REGULATOR IN LT1117-5 OUT GND 470F
U
Battery Backed Up Regulated Supply
LT1117-5
+
IN GND
OUT
5.2V LINE 5.0V BATTERY
() () ()
6.5V
LT1117 * TA07
50 SELECT FOR CHARGE RATE
LT1117-5 IN GND OUT
+
10F
+
100F
LT1117 * TA08
Automatic Light Control
LT1117 VIN 16.5V 10F 150F
+
IN ADJ
OUT 1.2k 100F
C1 10F
LT1117 * TA09 LT1117 * TA10
High Efficiency Dual Supply
FEEDBACK PATH MUR410 3.3V OUTPUT (TYPICAL)
+
470F
MUR410 IN
LT1117-5 OUT GND 470F +5V 0.5A
+
+
10F 1N4002
+
+
10F 1N4002 -5V 0.5A
LT1117 * TA11
9
LT1117/LT1117-2.85 LT1117-3.3/LT1117-5
TYPICAL APPLICATIO S
High Efficiency Dual Linear Supply
(HEAT SINK) 2N6667 Q1 (DARLINGTON)
+
MDA201
+
4700F
-
130VAC TO 90VAC
STANCOR P-8685 (HEAT SINK) 2N6667 (DARLINGTON)
+
MDA201
+
4700F
-
* = 1 % FILM RESISTORS MDA = MOTOROLA L1 = PULSE ENGINEERING, INC. #PE-92106
VIN
FLOATING INPUT
10
U
L1 285H MBR360 10k 1k
LT1117-5
+
1000F 510k 30k V+ 1/2 LT1018 2.4k
IN GND
OUT
5V 0.5A
LT1004-2.5
+
100F 20k* 30.1k*
D11 1N4002
+ -
L1 285H MBR360 10k 1k
LT1117-5
+
1000F 510k 30k 2.4k
IN GND
OUT
LT1004-2.5
+
100F 20k* 30.1k*
D2 1N4002
+
1/2 LT1018 V-
-
-5V 0.5A
LT1117 * TA12
Low Dropout Negative Supply
LT1117-5 IN OUT GND 10F
+
+
100F VOUT = -5V
LT1117 * TA13
LT1117/LT1117-2.85 LT1117-3.3/LT1117-5
SOLDERI G
The SOT-223 is manufactured with gull wing leadform for surface mount applications. The leads and heat sink are solder plated and allow easy soldering using nonactive or mildly active fluxes. The package is constructed with three leads exiting one side of the package and one heat sink exiting the other side, and the die attached to the heat sink internally. The recommended methods of soldering SOT-223 are: vapor phase reflow and infrared reflow with preheat of component to within 65C of the solder temperature. Hand soldering and wave soldering are not recommended since
PACKAGE DESCRIPTIO
0.256 (6.502)
0.060 (1.524)
0.060 (1.524)
0.183 (4.648)
0.075 (1.905) 0.300 (7.620) BOTTOM VIEW OF DD PAK HATCHED AREA IS SOLDER PLATED COPPER HEAT SINK +0.012 0.143 - 0.020 0.090 - 0.110 (2.286 - 2.794) 0.050 (1.270) BSC 0.013 - 0.023 (0.330 - 0.584)
0.248 - 0.264 (6.30 - 6.71) 0.114 - 0.124 (2.90 - 3.15)
0.264 - 0.287 (6.70 - 7.30) 0.130 - 0.146 (3.30 - 3.71)
0.0905 (2.30) NOM
Information furnished by Linear Technology Corporation is believed to be accurate and reliable. However, no responsibility is assumed for its use. Linear Technology Corporation makes no representation that the interconnection of its circuits as described herein will not infringe on existing patent rights.
U
WU
ETHODS
these methods can easily damage the part with excessive thermal gradients across the package. Care must be exercised during surface mount to minimize large (> 30C per second) thermal shock to the package.
LT1117 * TA15
Dimensions in inches (millimeters) unless otherwise noted. M Package 3-Lead Plastic DD Pak
(LTC DWG # 05-08-1460)
0.060 (1.524) TYP 0.390 - 0.415 (9.906 - 10.541) 15 TYP 0.165 - 0.180 (4.191 - 4.572)
0.045 - 0.055 (1.143 - 1.397) +0.008 0.004 -0.004
0.330 - 0.370 (8.382 - 9.398)
0.059 (1.499) TYP
(
+0.203 0.102 -0.102
)
0.095 - 0.115 (2.413 - 2.921) 0.050 0.012 (1.270 0.305)
(
+0.305 3.632 -0.508
)
M (DD3) 1098
ST Package 3-Lead Plastic SOT-223
(LTC DWG # 05-08-1630)
10 - 16 0.071 (1.80) MAX 10 MAX 0.010 - 0.014 (0.25 - 0.36)
10 - 16 0.024 - 0.033 (0.60 - 0.84) 0.181 (4.60) NOM 0.033 - 0.041 (0.84 - 1.04) 0.012 (0.31) MIN 0.0008 - 0.0040 (0.0203 - 0.1016)
ST3 (SOT-233) 1298
11
LT1117/LT1117-2.85 LT1117-3.3/LT1117-5
TYPICAL APPLICATIO U
High Efficiency Regulator
1mH 28V INPUT 10k MR1122 10,000F 470 28V 1k 1N914 2k OUTPUT ADJUST LT1117
+
IN ADJ
OUT 240
OUTPUT
+
100F
1M 4N28 10k
+
LT1011
-
1N914
10k 28V
LT1117 * TA14
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PART NUMBER LT1120 LT1121 LT1129 LT1175 LT1374 LT1521 LT1573 LT1575 LT1735 LT1761 Series LT1762 Series LT1763 Series LT1764 Series LT1962 LT1963 DESCRIPTION 125mA Low Dropout Regulator with 20A IQ 150mA Micropower Low Dropout Regulator 700mA Micropower Low Dropout Regulator 500mA Negative Low Dropout Micropower Regulator 4.5A, 500kHz Step-Down Converter 300mA Low Dropout Micropower Regulator with Shutdown UltraFast Transient Response Low Dropout Regulator UltraFast Transient Response Low Dropout Regulator Synchronous Step-Down Converter 100mA, Low Noise, Low Dropout Micropower Regulators in SOT-23 150mA, Low Noise, LDO Micropower Regulators 500mA, Low Noise, LDO Micropower Regulators 3A, Low Noise, Fast Transient Response LDO 300mA, Low Noise, LDO Micropower Regulator 1.5A, Low Noise, Fast Transient Response LDO
TM
COMMENTS Includes 2.5V Reference and Comparator 30A IQ, SOT-223 Package 50A Quiescent Current 45A IQ, 0.26V Dropout Voltage, SOT-223 Package 4.5A, 0.07 Internal Switch, SO-8 Package 15A IQ, Reverse Battery Protection Drives External PNP Drives External N-Channel MOSFET High Efficiency, OPTI-LOOPTM Compensation 20A Quiescent Current, 20VRMS Noise, SOT-23 Package 25A Quiescent Current, 20VRMS Noise, MSOP Package 30A Quiescent Current, 20VRMS Noise, SO-8 Package 40VRMS Noise, DD and TO-220 Packages 20VRMS Noise, MSOP Package 40VRMS Noise, SOT-223 Package
UltraFast and OPT-LOOP are trademarks of Linear Technology Corporation.
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Linear Technology Corporation
1630 McCarthy Blvd., Milpitas, CA 95035-7417
(408)432-1900 FAX: (408) 434-0507 www.linear-tech.com
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sn1117 1117fcs LT/TP 0500 2K REV C * PRINTED IN USA (c) LINEAR TECHNOLOGY CORPORATION 1993


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