CS52015-1GDP3 [ONSEMI]

1.5 A Adjustable Linear Regulator; 1.5一个可调线性稳压器
CS52015-1GDP3
型号: CS52015-1GDP3
厂家: ONSEMI    ONSEMI
描述:

1.5 A Adjustable Linear Regulator
1.5一个可调线性稳压器

线性稳压器IC 调节器 电源电路 输出元件
文件: 总9页 (文件大小:243K)
中文:  中文翻译
下载:  下载PDF数据表文档文件
CS52015−1  
1.5 A Adjustable Linear  
Regulator  
The CS520151 linear regulator provides 1.5 A with an accuracy of  
±1.0%. The device uses two external resistors to set the output voltage  
within a 1.25 V to 5.5 V range.  
The regulator is intended for use as a post regulator and  
microprocessor supply. The fast loop response and low dropout  
voltage make this regulator ideal for applications where low voltage  
operation and good transient response are important.  
The circuit is designed to operate with dropout voltages less than 1.4 V  
at 1.5 A output current. Device protection includes overcurrent and  
thermal shutdown.  
http://onsemi.com  
TO2203  
T SUFFIX  
The CS520151 is pin compatible with the LT1086 family of linear  
regulators but has lower dropout voltage.  
The regulator is available in TO2203, surface mount D PAK3,  
CASE 221A  
2
1
2
3
3
Tab = V  
OUT  
and SOT223 packages.  
Pin 1. Adj  
2. V  
2
D PAK3  
OUT  
Features  
Output Current to 1.5 A  
Output Accuracy to ±1.0% Over Temperature  
Dropout Voltage (typical) 1.05 V @ 1.5 A  
Fast Transient Response  
Fault Protection  
3. V  
DP SUFFIX  
CASE 418AB  
IN  
1
2
SOT223  
ST SUFFIX  
CASE 318E  
1
2
3
Current Limit  
Thermal Shutdown  
ORDERING INFORMATION  
See detailed ordering and shipping information in the package  
dimensions section on page 7 of this data sheet.  
5.0 V  
V
IN  
V
OUT  
3.3 V @ 1.5 A  
DEVICE MARKING INFORMATION  
See general marking information in the device marking  
section on page 7 of this data sheet.  
CS520151  
124 W  
1.0%  
Adj  
10 mF  
5.0 V  
22 mF  
5.0 V  
200 W  
1.0%  
0.1 mF  
5.0 V  
Tantalum  
Figure 1. Application Diagram  
© Semiconductor Components Industries, LLC, 2006  
1
Publication Order Number:  
September, 2006 Rev. 7  
CS520151/D  
CS520151  
MAXIMUM RATINGS*  
Parameter  
Value  
7.0  
Unit  
V
Supply Voltage, V  
CC  
Operating Temperature Range  
Junction Temperature  
40 to +70  
150  
°C  
°C  
°C  
Storage Temperature Range  
Lead Temperature Soldering:  
60 to +150  
Wave Solder (through hole styles only) Note 1  
Reflow (SMD styles only) Note 2  
260 Peak  
230 Peak  
°C  
°C  
ESD Damage Threshold  
2.0  
kV  
1. 10 second maximum.  
2. 60 second maximum above 183°C  
*The maximum package power dissipation must be observed.  
ELECTRICAL CHARACTERISTICS (C = 10 mF, C  
= 22 mF Tantalum, V  
+ V  
< V < 7.0 V, 0°C T 70°C,  
IN  
OUT  
OUT  
DROPOUT  
IN  
A
T +150°C, unless otherwise specified, I  
J
= 1.5 A)  
full load  
Characteristic  
Adjustable Output Voltage  
Reference Voltage (Notes 3 and 4)  
Test Conditions  
Min  
Typ  
Max  
Unit  
V
IN  
V  
= 1.5 V; V = 0 V  
1.241  
1.254  
1.266  
V
OUT  
Adj  
10 mA I  
1.5 A  
(1.0%)  
(+1.0%)  
OUT  
Line Regulation  
1.5 V V V  
5.75 V; I  
= 10 mA  
0.02  
0.04  
1.05  
3.1  
0.20  
0.4  
1.4  
%
%
IN  
OUT  
OUT  
Load Regulation (Notes 3 and 4)  
Dropout Voltage (Note 5)  
Current Limit  
V
IN  
V  
= 1.5 V; 10 mA I  
1.5 A  
OUT  
OUT  
I
= 1.5 A  
V
OUT  
V
IN  
V
IN  
V
IN  
V  
= 3.0 V; T 25°C  
1.6  
A
OUT  
J
Minimum Load Current (Note 6)  
Adjust Pin Current  
= 7.0 V, V = 0 V  
0.6  
2.0  
100  
0.020  
mA  
mA  
%/W  
dB  
Adj  
V  
= 3.0 V; I  
= 10 mA  
50  
OUT  
OUT  
Thermal Regulation (Note 7)  
Ripple Rejection (Note 7)  
30 ms Pulse, T = 25°C  
0.002  
80  
A
f = 120 Hz; I  
= 1.5 A; V V = 3.0 V;  
OUT  
OUT  
IN  
V
= 1.0 V  
RIPPLE  
PP  
Thermal Shutdown (Note 8)  
150  
180  
25  
210  
°C  
°C  
Thermal Shutdown Hysteresis (Note 8)  
3. Load regulation and output voltage are measured at a constant junction temperature by low duty cycle pulse testing. Changes in output  
voltage due to temperature changes must be taken into account separately.  
4. Specifications apply for an external Kelvin sense connection at a point on the output pin 1/4” from the bottom of the package.  
5. Dropout voltage is a measurement of the minimum input/output differential at full load.  
6. The minimum load current is the minimum current required to maintain regulation. Normally the current in the resistor divider used to set the  
output voltage is selected to meet the minimum requirement.  
7. Guaranteed by design, not 100% tested in production.  
8. Thermal shutdown is 100% functionally tested in production.  
PACKAGE PIN DESCRIPTION  
Package Pin Number  
2
TO2203 D PAK3 SOT223  
Pin Symbol  
Function  
1
2
3
1
2
3
1
2
3
Adj  
Adjust pin (low side of the internal reference).  
V
OUT  
Regulated output voltage (case).  
Input voltage.  
V
IN  
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2
 
CS520151  
V
OUT  
V
IN  
Output  
Current  
Limit  
Thermal  
Shutdown  
+
Error  
Amplifier  
Adj  
Bandgap  
Figure 2. Block Diagram  
TYPICAL PERFORMANCE CHARACTERISTICS  
0.10  
0.08  
0.06  
0.04  
1.05  
1.00  
0.95  
0.90  
0.85  
0.80  
0.75  
T
= 0°C  
CASE  
T
= 25°C  
CASE  
0.02  
0.00  
0.02  
0.04  
0.06  
0.08  
0.10  
0.12  
T
= 125°C  
CASE  
900  
0
300  
600  
1200  
1500  
0
10 20 30 40 50 60 70 80 90 100 110 120 130  
I
(mA)  
T (°C)  
J
OUT  
Figure 3. Dropout Voltage vs. Output  
Current  
Figure 4. Reference Voltage vs.  
Temperature  
0.100  
0.075  
0.050  
0.025  
0.000  
0.65  
0.60  
0.55  
0.50  
0.45  
0.40  
T
= 25°C  
CASE  
T
= 0°C  
CASE  
T
= 125°C  
CASE  
T
= 25°C  
CASE  
T
= 125°C  
CASE  
C
IN  
= C  
= 22 mF Tantalum  
OUT  
T
= 0°C  
CASE  
0
1
2
1
2
3
4
5
6
7
Output Current (A)  
V
IN  
V  
(V)  
OUT  
Figure 5. Load Regulation vs. Output  
Current  
Figure 6. Minimum Load Current vs.  
IN VOUT  
V
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3
CS520151  
85  
75  
65  
55  
45  
35  
25  
15  
70  
65  
60  
55  
50  
45  
40  
I
= 10 mA  
O
T
= 25°C  
= 1.5 A  
CASE  
I
OUT  
(V V  
V
C
) = 3.0 V  
OUT  
IN  
= 1.0 V  
PP  
RIPPLE  
= 0.1 mF  
Adj  
1
2
3
4
5
6
0
10 20 30 40 50 60 70 80 90 100 110 120 130  
10  
10  
10  
10  
10  
10  
Temperature (°C)  
Frequency (Hz)  
Figure 7. Adjust Pin Current vs.  
Temperature  
Figure 8. Ripple Rejection vs. Frequency  
3.5  
3.3  
3.1  
2.9  
2.7  
2.5  
2.3  
2.1  
1.9  
300  
200  
100  
0
V
C
C
= 3.3 V  
OUT  
100  
200  
1500  
750  
0
= C = 22 mF Tantalum  
OUT  
IN  
= 0.1 mF  
Adj  
1.7  
1.5  
0
1
2
3
4
5
6
7
8
9
10  
1.0 1.5 2.0 2.5 3.0 3.5 4.0 4.5 5.0 5.5 6.0 6.5 7.0  
V (V)  
Time (mS)  
V
IN  
OUT  
Figure 9. Transient Response  
Figure 10. Short Circuit Current vs.  
IN VOUT  
V
APPLICATIONS INFORMATION  
The CS520151 linear regulator provides adjustable  
voltages at currents up to 1.5 A. The regulator is protected  
against overcurrent conditions and includes thermal  
shutdown.  
The CS520151 has a composite PNPNPN output  
transistor and requires an output capacitor for stability. A  
detailed procedure for selecting this capacitor is included in  
the Stability Considerations section.  
A resistor divider network R1 and R2 causes a fixed current  
to flow to ground. This current creates a voltage across R2  
that adds to the 1.25 V across R1 and sets the overall output  
voltage. The adjust pin current (typically 50 mA) also flows  
through R2 and adds a small error that should be taken into  
account if precise adjustment of V  
is necessary.  
OUT  
The output voltage is set according to the formula:  
ǒR1 ) R2Ǔ) I  
V
+ V  
 
  R2  
Adj  
OUT  
REF  
R1  
Adjustable Operation  
The CS520151 has an output voltage range of 1.25 V to  
5.5 V. An external resistor divider sets the output voltage as  
shown in Figure 11. The regulator maintains a fixed 1.25V  
(typical) reference between the output pin and the adjust pin.  
The term I × R2 represents the error added by the adjust  
pin current.  
Adj  
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4
CS520151  
R1 is chosen so that the minimum load current is at least  
illustrated in Figure 12; however, the design of clamp  
circuitry must be done on an application by application  
basis. Care must be taken to ensure the clamp actually  
protects the design. Components used in the clamp design  
must be able to withstand the short circuit condition  
indefinitely while protecting the IC.  
2.0 mA. R1 and R2 should be the same type, e.g. metal film  
for best tracking over temperature. While not required, a  
bypass capacitor from the adjust pin to ground will improve  
ripple rejection and transient response. A 0.1 mF tantalum  
capacitor is recommended for “first cut” design. Type and  
value may be varied to obtain optimum performance vs.  
price.  
EXTERNAL SUPPLY  
V
IN  
V
OUT  
V
IN  
V
OUT  
CS520151  
C
V
C
2
1
REF  
Adj  
R
R
1
2
V
IN  
V
OUT  
V
Adj  
I
Adj  
C
Adj  
V
OUT  
Figure 11. Resistor Divider Scheme  
Short Circuit Protection  
Figure 12. Short Circuit Protection Circuit for  
High Voltage Application.  
The CS520151 linear regulator has an absolute  
maximum specification of 7.0 V for the voltage difference  
Stability Considerations  
between V and V . However, the IC may be used to  
OUT  
IN  
The output compensation capacitor helps determine three  
main characteristics of a linear regulator: startup delay,  
load transient response, and loop stability.  
regulate voltages in excess of 7.0 V. The main considerations  
in such a design are powerup and short circuit capability.  
In most applications, rampup of the power supply to V  
IN  
The capacitor value and type is based on cost, availability,  
size and temperature constraints. A tantalum or aluminum  
electrolytic capacitor is best, since a film or ceramic  
capacitor with almost zero ESR can cause instability. The  
aluminum electrolytic capacitor is the least expensive  
solution. However, when the circuit operates at low  
temperatures, both the value and ESR of the capacitor will  
vary considerably. The capacitor manufacturer’s data sheet  
provides this information.  
is fairly slow, typically on the order of several tens of  
milliseconds, while the regulator responds in less than one  
microsecond. In this case, the linear regulator begins  
charging the load as soon as the V to V  
differential is  
IN  
OUT  
large enough that the pass transistor conducts current. The  
load at this point is essentially at ground, and the supply  
voltage is on the order of several hundred millivolts, with the  
result that the pass transistor is in dropout. As the supply to  
V
IN  
increases, the pass transistor will remain in dropout, and  
A 22 mF tantalum capacitor will work for most  
applications, but with high current regulators such as the  
CS520151 the transient response and stability improve  
with higher values of capacitance. The majority of  
applications for this regulator involve large changes in load  
current so the output capacitor must supply the  
instantaneous load current. The ESR of the output capacitor  
causes an immediate drop in output voltage given by:  
current is passed to the load until V  
reaches the point at  
OUT  
which the IC is in regulation. Further increase in the supply  
voltage brings the pass transistor out of dropout. The result  
is that the output voltage follows the power supply rampup,  
staying in dropout until the regulation point is reached. In  
this manner, any output voltage may be regulated. There is  
no theoretical limit to the regulated voltage as long as the  
V
IN  
to V  
differential of 7.0 V is not exceeded.  
OUT  
However, the possibility of destroying the IC in a short  
DV + DI   ESR  
circuit condition is very real for this type of design. Short  
circuit conditions will result in the immediate operation of  
the pass transistor outside of its safe operating area.  
Overvoltage stresses will then cause destruction of the pass  
transistor before overcurrent or thermal shutdown circuitry  
can become active. Additional circuitry may be required to  
For microprocessor applications it is customary to use an  
output capacitor network consisting of several tantalum and  
ceramic capacitors in parallel. This reduces the overall ESR  
and reduces the instantaneous output voltage drop under  
transient load conditions. The output capacitor network  
should be as close as possible to the load for the best results.  
clamp the V to V  
differential to less than 7.0 V if  
IN  
OUT  
failsafe operation is required. One possible clamp circuit is  
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5
 
CS520151  
Protection Diodes  
Calculating Power Dissipation and Heat Sink  
Requirements  
When large external capacitors are used with a linear  
regulator it is sometimes necessary to add protection diodes.  
If the input voltage of the regulator gets shorted, the output  
capacitor will discharge into the output of the regulator. The  
discharge current depends on the value of the capacitor, the  
The CS520151 linear regulator includes thermal  
shutdown and current limit circuitry to protect the device.  
High power regulators such as these usually operate at high  
junction temperatures so it is important to calculate the  
power dissipation and junction temperatures accurately to  
ensure that an adequate heat sink is used.  
output voltage and the rate at which V drops. In the  
IN  
CS520151 linear regulator, the discharge path is through a  
large junction and protection diodes are not usually needed.  
If the regulator is used with large values of output  
capacitance and the input voltage is instantaneously shorted  
to ground, damage can occur. In this case, a diode connected  
as shown in Figure 13 is recommended.  
The case is connected to V  
on the CS520151,  
OUT  
electrical isolation may be required for some applications.  
Thermal compound should always be used with high current  
regulators such as these.  
The thermal characteristics of an IC depend on the  
following four factors:  
1. Maximum Ambient Temperature T (°C)  
IN4002 (Optional)  
A
V
IN  
V
OUT  
2. Power dissipation P (Watts)  
D
V
V
OUT  
IN  
3. Maximum junction temperature T (°C)  
J
CS520151  
4. Thermal resistance junction to ambient R  
(°C/W)  
qJA  
C
C
2
1
Adj  
R
R
These four are related by the equation  
1
2
T + T ) P   R  
QJA  
(1)  
J
A
D
C
Adj  
The maximum ambient temperature and the power  
dissipation are determined by the design while the  
maximum junction temperature and the thermal resistance  
depend on the manufacturer and the package type.  
Figure 13. Protection Diode for Large Output  
Capacitors  
The maximum power dissipation for a regulator is:  
Output Voltage Sensing  
{
}
I
P
+ V  
* V  
) V  
I
Since the CS520151 is a three terminal regulator, it is not  
possible to provide true remote load sensing. Load  
regulation is limited by the resistance of the conductors  
connecting the regulator to the load.  
For the adjustable regulator, the best load regulation  
occurs when R1 is connected directly to the output pin of the  
regulator as shown in Figure 14. If R1 is connected to the  
load, RC is multiplied by the divider ratio and the effective  
resistance between the regulator and the load becomes.  
D(max)  
IN(max)  
OUT(min) OUT(max)  
IN(max) Q  
(2)  
where:  
V
V
is the maximum input voltage,  
IN(max)  
OUT(min)  
OUT(max)  
is the minimum output voltage,  
I
is the maximum output current, for the  
application  
I is the maximum quiescent current at I  
.
OUT(max)  
Q
R1 ) R2  
ǒ
Ǔ
R
 
A heat sink effectively increases the surface area of the  
package to improve the flow of heat away from the IC and  
into the surrounding air.  
C
R1  
where R = conductor parasitic resistance.  
C
Each material in the heat flow path between the IC and the  
outside environment has a thermal resistance. Like series  
electrical resistances, these resistances are summed to  
Conductor Parasitic  
Resistance  
R
C
V
IN  
V
IN  
V
OUT  
determine R , the total thermal resistance between the  
qJA  
CS520151  
junction and the surrounding air.  
R
R
1
2
R
LOAD  
1. Thermal Resistance of the junction to case, R  
qJC  
Adj  
(°C/W)  
2. Thermal Resistance of the case to Heat Sink, R  
qCS  
(°C/W)  
3. Thermal Resistance of the Heat Sink to the ambient  
air, R (°C/W)  
qSA  
These are connected by the equation:  
Figure 14. Grounding Scheme for Adjustable Output  
Regulator to Minimize Parasitic Resistance Effects  
(3)  
R
+ R  
) R  
) R  
QCS QSA  
QJA  
QJC  
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6
 
CS520151  
The value for R  
result can be substituted in equation (1).  
The value for R is 3.5°C/W for a given package type  
is calculated using equation (3) and the  
grease used?), and the contact area between the heat sink and  
the package. Once these calculations are complete, the  
maximum permissible value of R can be calculated and  
qJA  
qJC  
q
JA  
based on an average die size. For a high current regulator  
such as the CS520151 the majority of the heat is generated  
the proper heat sink selected. For further discussion on heat  
sink selection, see application note “Thermal  
Management,” document number AND8036/D, available  
through the Literature Distribution Center or via our website  
at http://onsemi.com.  
in the power transistor section. The value for R  
depends  
qSA  
on the heat sink type, while R  
depends on factors such as  
qCS  
package type, heat sink interface (is an insulator and thermal  
ADDITIONAL ORDERING INFORMATION  
Orderable Part Number  
CS520151GT3  
Type*  
Package  
Shipping  
1.5 A, Adj. Output  
1.5 A, Adj. Output  
1.5 A, Adj. Output  
1.5 A, Adj. Output  
1.5 A, Adj. Output  
TO2203, STRAIGHT  
50 Units / Rail  
2
CS520151GDP3  
CS520151GDPR3  
CS520151GST3  
CS520151GSTR3  
D PAK3  
50 Units / Rail  
2
D PAK3  
750 / Tape & Reel  
80 Units / Rail  
SOT223  
SOT223  
2500 / Tape & Reel  
*Consult your local sales representative for fixed output voltage versions.  
†For information on tape and reel specifications, including part orientation and tape sizes, please refer to our Tape and Reel Packaging  
Specifications Brochure, BRD8011/D.  
MARKING DIAGRAMS  
2
TO2203  
T SUFFIX  
CASE 221A  
D PAK3  
DP SUFFIX  
CASE 418AB  
SOT223  
ST SUFFIX  
CASE 318E  
AYW  
52015  
CS  
520151  
AWLYWW  
CS520151  
AWLYWW  
1
1
1
A
= Assembly Location  
WL, L = Wafer Lot  
YY, Y = Year  
WW, W = Work Week  
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7
CS520151  
PACKAGE DIMENSIONS  
TO2203  
T SUFFIX  
CASE 221A08  
ISSUE AA  
NOTES:  
SEATING  
PLANE  
T−  
1. DIMENSIONING AND TOLERANCING PER ANSI  
Y14.5M, 1982.  
2. CONTROLLING DIMENSION: INCH.  
F
B−  
C
T
INCHES  
DIM MIN MAX  
MILLIMETERS  
S
MIN  
14.23  
9.66  
3.56  
0.64  
3.53  
MAX  
15.87  
10.66  
4.82  
A
B
C
D
F
0.560  
0.380  
0.140  
0.025  
0.139  
0.625  
0.420  
0.190  
0.035  
0.155  
4
Q
A
K
0.89  
3.93  
1
2
3
U
G
H
J
0.100 BSC  
2.54 BSC  
−−−  
0.012  
0.500  
0.045  
0.280  
0.045  
0.580  
0.060  
−−−  
0.31  
7.11  
1.14  
H
L
Y−  
K
L
12.70  
1.15  
14.73  
1.52  
N
Q
R
S
T
0.200 BSC  
5.08 BSC  
0.100  
0.080  
0.020  
0.235  
0.000  
0.045  
0.135  
0.115  
0.055  
0.255  
0.050  
−−−  
2.54  
2.04  
0.51  
5.97  
0.00  
1.15  
3.42  
2.92  
1.39  
6.47  
1.27  
−−−  
R
J
V
G
U
V
D 3 PL  
M
M
0.25 (0.010)  
B
Y
N
D2PAK3  
DP SUFFIX  
CASE 418AB01  
ISSUE O  
For D2PAK Outline and  
Dimensions Contact Factory  
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8
CS520151  
PACKAGE DIMENSIONS  
SOT223  
ST SUFFIX  
CASE 318E04  
ISSUE K  
A
F
NOTES:  
1. DIMENSIONING AND TOLERANCING PER ANSI  
Y14.5M, 1982.  
2. CONTROLLING DIMENSION: INCH.  
4
2
INCHES  
DIM MIN MAX  
MILLIMETERS  
S
B
MIN  
6.30  
3.30  
1.50  
0.60  
2.90  
2.20  
0.020  
0.24  
1.50  
0.85  
0
MAX  
6.70  
3.70  
1.75  
0.89  
3.20  
2.40  
0.100  
0.35  
2.00  
1.05  
10  
1
3
A
B
C
D
F
0.249  
0.130  
0.060  
0.024  
0.115  
0.087  
0.263  
0.145  
0.068  
0.035  
0.126  
0.094  
D
G
H
J
L
0.0008 0.0040  
G
0.009  
0.060  
0.033  
0
0.014  
0.078  
0.041  
10  
J
K
L
C
M
S
_
_
_
_
0.08 (0003)  
0.264  
0.287  
6.70  
7.30  
M
H
K
PACKAGE THERMAL DATA  
2
Parameter  
TO2203  
D PAK3  
SOT223  
15  
Unit  
R
R
Typical  
Typical  
3.5  
50  
3.5  
°C/W  
°C/W  
q
q
JC  
JA  
1050*  
156  
* Depending on thermal properties of substrate. R  
= R  
+ R  
q
JC CA  
q
q
JA  
ON Semiconductor and  
are registered trademarks of Semiconductor Components Industries, LLC (SCILLC). SCILLC reserves the right to make changes without further notice  
to any products herein. SCILLC makes no warranty, representation or guarantee regarding the suitability of its products for any particular purpose, nor does SCILLC assume any liability  
arising out of the application or use of any product or circuit, and specifically disclaims any and all liability, including without limitation special, consequential or incidental damages.  
“Typical” parameters which may be provided in SCILLC data sheets and/or specifications can and do vary in different applications and actual performance may vary over time. All  
operating parameters, including “Typicals” must be validated for each customer application by customer’s technical experts. SCILLC does not convey any license under its patent rights  
nor the rights of others. SCILLC products are not designed, intended, or authorized for use as components in systems intended for surgical implant into the body, or other applications  
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Buyer purchase or use SCILLC products for any such unintended or unauthorized application, Buyer shall indemnify and hold SCILLC and its officers, employees, subsidiaries, affiliates,  
and distributors harmless against all claims, costs, damages, and expenses, and reasonable attorney fees arising out of, directly or indirectly, any claim of personal injury or death  
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PUBLICATION ORDERING INFORMATION  
LITERATURE FULFILLMENT:  
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Europe, Middle East and Africa Technical Support:  
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Order Literature: http://www.onsemi.com/orderlit  
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Email: orderlit@onsemi.com  
For additional information, please contact your local  
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CS520151/D  

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