AFL2803R3SX/ES [INFINEON]

HIGH RELIABILITY HYBRID DC/DC CONVERTER; 高可靠性混合式DC / DC转换器
AFL2803R3SX/ES
型号: AFL2803R3SX/ES
厂家: Infineon    Infineon
描述:

HIGH RELIABILITY HYBRID DC/DC CONVERTER
高可靠性混合式DC / DC转换器

转换器 电源电路 局域网
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PD - 94462E  
AFL27003R3S  
270V Input, 3.3V Output  
HIGH RELIABILITY  
HYBRID DC/DC CONVERTER  
Description  
The AFL Series of DC/DC converters feature high power  
density with no derating over the full military temperature  
range. This series is offered as part of a complete family  
of converters providing single and dual output voltages  
and operating from nominal +28 or +270 volt inputs with  
output power ranging from 80 to 120 watts. For  
applications requiring higher output power, multiple  
converters can be operated in parallel. The internal  
current sharing circuits assure equal current distribution  
among the paralleled converters. This series  
incorporates International Rectifier’s proprietary  
magnetic pulse feedback technology providing optimum  
dynamic line and load regulation response. This  
feedback system samples the output voltage at the pulse  
width modulator fixed clock frequency, nominally 550  
KHz. Multiple converters can be synchronized to a system  
clock in the 500 KHz to 700 KHz range or to the  
synchronization output of one converter. Undervoltage  
lockout, primary and secondary referenced inhibit, soft-  
start and load fault protection are provided on all models.  
AFL  
Features  
n 160 To 400 Volt Input Range  
n 3.3 Volt Output  
n High Power Density - 46 W / in  
n 66 Watt Output Power  
n Parallel Operation with Stress and Current  
Sharing  
n Low Profile (0.380") Seam Welded Package  
n Ceramic Feedthru Copper Core Pins  
n High Efficiency - to 74%  
3
n Full Military Temperature Range  
n Continuous Short Circuit and Overload  
Protection  
n Remote Sensing Terminals  
n Primary and Secondary Referenced  
Inhibit Functions  
n Line Rejection > 60 dB - DC to 50KHz  
n External Synchronization Port  
n Fault Tolerant Design  
These converters are hermetically packaged in two  
enclosure variations, utilizing copper core pins to  
minimize resistive DC losses. Three lead styles are  
available, each fabricated with International Rectifier’s  
rugged ceramic lead-to-package seal assuring long  
term hermeticity in the most harsh environments.  
n Dual Output Versions Available  
n Standard Military Drawings Available  
Manufactured in a facility fully qualified to MIL-PRF-  
38534, these converters are available in four screening  
grades to satisfy a wide range of requirements. The CH  
grade is fully compliant to the requirements of MIL-PRF-  
38534 for class H. The HB grade is fully processed and  
screened to the class H requirement, but does not have  
material element evaluated to the class H requirement.  
Both grades are tested to meet the complete group “A”  
test specification over the full military temperature range  
without output power deration. Two grades with more  
limited screening are also available for use in less  
demanding applications. Variations in electrical,  
mechanical and screening can be accommodated.  
Contact IR Santa Clara for special requirements.  
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1
09/01/04  
AFL27003R3S  
Specifications  
ABSOLUTE MAXIMUM RATINGS  
Input Voltage  
-0.5V to 500V  
Soldering Temperature  
Case Temperature  
300°C for 10 seconds  
Operating  
Storage  
-55°C to +125°C  
-65°C to +135°C  
Electrical Performance Characteristics -55°C < TCASE < +125°C, 160V< VIN < 400V unless otherwise specified.  
Group A  
Parameter  
INPUT VOLTAGE  
Subgroups  
Test Conditions  
Min  
Nom  
Max  
Unit  
Note 6  
160  
270  
400  
V
OUTPUT VOLTAGE  
V
= 270 Volts, 100% Load  
IN  
1
3.27  
3.23  
3.30  
3.33  
3.37  
V
V
2, 3  
OUTPUT CURRENT  
V
= 160, 270, 400 Volts, Note 6  
20  
66  
A
IN  
OUTPUT POWER  
Note 6  
Note 1  
W
MAXIMUM CAPACITIVE LOAD  
4
10,000  
-0.015  
µfd  
OUTPUT VOLTAGE  
TEMPERATURE COEFFICIENT  
V
= 270 Volts, 100% Load - Note 1, 6  
+0.015  
%/°C  
IN  
OUTPUT VOLTAGE REGULATION  
Line  
1, 2, 3  
1, 2, 3  
No Load, 50% Load, 100% Load  
-10.0  
-35.0  
+10.0  
+35.0  
mV  
mV  
V
= 160, 270, 400 Volts  
IN  
Load  
OUTPUT RIPPLE VOLTAGE  
V
= 160, 270, 400 Volts, 100% Load,  
IN  
1, 2, 3  
30  
mV  
pp  
BW = 10MHz  
V
IN  
= 270 Volts  
INPUT CURRENT  
1
2, 3  
1, 2, 3  
1, 2, 3  
15.0  
17.0  
3.00  
5.00  
mA  
No Load  
I
= 0  
OUT  
mA  
mA  
mA  
Inhibit 1  
Inhibit 2  
Pin 4 Shorted to Pin 2  
Pin 12 Shorted to Pin 8  
INPUT RIPPLE CURRENT  
V
= 270 Volts, 100% Load  
IN  
B.W. = 10MHz  
1, 2, 3  
60  
mA  
pp  
CURRENT LIMIT POINT  
V
OUT  
= 90% V  
Note 5  
NOM  
1
2
3
115  
105  
125  
125  
115  
140  
%
%
%
Expressed as a  
Percentage  
of Full Rated Load  
LOAD FAULT POWER  
DISSIPATION  
VIN = 270 Volts  
1, 2, 3  
30  
W
Overload or Short Circuit  
EFFICIENCY  
VIN = 270 Volts, 100% Load  
1, 2, 3  
1, 2, 3  
1
72  
74  
%
SWITCHING FREQUENCY  
ISOLATION  
500  
100  
550  
600  
KHz  
MΩ  
Input to Output or Any Pin to Case  
(except Pin 3). Test @ 500VDC  
MTBF  
MIL-HDBK-217F, AIF @ T = 40°C  
300  
KHrs  
C
For Notes to Specifications, refer to page 3  
2
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AFL27003R3S  
Elecrical Performance Characteristics (Continued)  
Group A  
Subgroups  
Parameter  
ENABLE INPUTS  
Test Conditions  
Min  
Nom  
Max  
Unit  
(Inhibit Function)  
1, 2, 3  
1, 2, 3  
Logical Low, Pin 4 or Pin 12  
Note 1  
Logical High, Pin 4 and Pin 12 - Note 9  
Note 1  
-0.5  
2.0  
0.8  
100  
50  
V
µA  
V
Converter Off  
Sink Current  
Converter On  
Sink Current  
100  
µA  
SYNCHRONIZATION INPUT  
Frequency Range  
1, 2, 3  
1, 2, 3  
1, 2, 3  
500  
2.0  
-0.5  
700  
10  
0.8  
100  
80  
KHz  
V
V
nSec  
%
Pulse Amplitude, Hi  
Pulse Amplitude, Lo  
Pulse Rise Time  
Note 1  
Note 1  
20  
Pulse Duty Cycle  
LOAD TRANSIENT RESPONSE  
Note 2, 8  
4, 5, 6  
4, 5, 6  
Load Step 50% 100%  
-450  
-450  
450  
200  
mV  
µSec  
Amplitude  
Recovery  
4, 5, 6  
4, 5, 6  
Load Step 10% 50%  
450  
400  
mV  
µSec  
Amplitude  
Recovery  
LINE TRANSIENT RESPONSE  
Note 1, 2, 3  
V
Step = 160 400 Volts  
-500  
500  
500  
mV  
µSec  
Amplitude  
Recovery  
IN  
TURN-ON CHARACTERISTICS  
V
= 160, 270, 400 Volts. Note 4  
IN  
Overshoot  
Delay  
4, 5, 6  
4, 5, 6  
Enable 1, 2 on. (Pins 4, 12 high or open)  
250  
120  
mV  
mSec  
50  
60  
75  
70  
LOAD FAULT RECOVERY  
LINE REJECTION  
Same as Turn On Characteristics.  
MIL-STD-461, CS101, 30Hz to 50KHz  
Note 1  
dB  
Notes to Specifications:  
1. Parameters not 100% tested but are guaranteed to the limits specified in the table.  
2. Recovery time is measured from the initiation of the transient to where VOUT has returned to within ±1% of VOUT  
at 50% load.  
3. Line transient transition time 100 µSec.  
4. Turn-on delay is measured with an input voltage rise time of between 100 and 500 volts per millisecond.  
5. Current limit point is that condition of excess load causing output voltage to drop to 90% of nominal.  
6. Parameter verified as part of another test.  
7. All electrical tests are performed with the remote sense leads connected to the output leads at the load.  
8. Load transient transition time 10 µSec.  
9. Enable inputs internally pulled high. Nominal open circuit voltage 4.0VDC.  
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3
AFL27003R3S  
AFL27003R3S Circuit Description  
Figure I. AFL Single Output Block Diagram  
INPUT  
FILTER  
DC INPUT  
ENABLE 1  
1
4
OUTPUT  
FILTER  
PRIMARY  
BIAS SUPPLY  
+ OUTPUT  
+ SENSE  
7
10  
CURRENT  
SENSE  
SYNC OUTPUT  
5
SHARE  
11  
12  
SHARE  
CONTROL  
AMPLIFIER  
ERROR  
AMP  
& REF  
SYNC INPUT  
CASE  
6
3
ENABLE 2  
SENSE  
AMPLIFIER  
9
8
- SENSE  
INPUT RETURN  
2
OUTPUT RETURN  
not used, the sense leads should be connected to their  
respective output terminals at the converter. Figure III.  
illustrates a typical application.  
Circuit Operation and Application Information  
The AFL series of converters employ a forward switched  
mode converter topology. (refer to Figure I.) Operation of  
the device is initiated when a DC voltage whose magnitude  
is within the specified input limits is applied between pins 1  
and 2. If pin 4 is enabled (at a logical 1 or open) the primary  
bias supply will begin generating a regulated housekeeping  
voltage bringing the circuitry on the primary side of the  
converter to life. Two power MOSFETs used to chop the  
DC input voltage into a high frequency square wave, apply  
this chopped voltage to the power transformer. As this  
switching is initiated, a voltage is impressed on a second  
winding of the power transformer which is then rectified and  
applied to the primary bias supply. When this occurs, the  
input voltage is shut out and the primary bias voltage  
becomes exclusively internally generated.  
Inhibiting Converter Output  
As an alternative to application and removal of the DC  
voltage to the input, the user can control the converter  
output by providing TTL compatible, positive logic signals  
to either of two enable pins (pin 4 or 12). The distinction  
between these two signal ports is that enable 1 (pin 4) is  
referenced to the input return (pin 2) while enable 2 (pin 12)  
is referenced to the output return (pin 8). Thus, the user  
has access to an inhibit function on either side of the isolation  
barrier. Each port is internally pulled “high” so that when  
not used, an open connection on both enable pins permits  
normal converter operation. When their use is desired, a  
logical “low” on either port will shut the converter down.  
The switched voltage impressed on the secondary output  
transformer winding is rectified and filtered to provide the  
converter output voltage. An error amplifier on the  
secondary side compares the output voltage to a precision  
reference and generates an error signal proportional to the  
difference. This error signal is magnetically coupled through  
the feedback transformer into the controller section of the  
converter varying the pulse width of the square wave signal  
driving the MOSFETs, narrowing the width if the output  
voltage is too high and widening it if it is too low.  
Figure II. Enable Input Equivalent Circuit  
+5.6V  
100K  
1N4148  
Pin 4 or  
Pin 12  
Disable  
290K  
Remote Sensing  
2N3904  
Connection of the + and - sense leads at a remotely locat-  
led load permits compensation for resistive voltage drop  
between the converter output and the load when they are  
physically separated by a significant distance. This  
connection allows regulation to the placard voltage at the  
point of application.When the remote sensing features is  
150K  
Pin 2 or  
Pin 8  
4
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AFL27003R3S  
Internally, these ports differ slightly in their function. In use,  
a low on Enable 1 completely shuts down all circuits in the  
converter while a low on Enable 2 shuts down the secondary  
side while altering the controller duty cycle to near zero.  
Externally, the use of either port is transparent to the user  
save for minor differences in idle current. (See specification  
table).  
high level of +2.0 volts. The sync output of another converter  
which has been designated as the master oscillator provides  
a convenient frequency source for this mode of operation.  
When external synchronization is not required, the sync in  
pin should be left unconnected thereby permitting the  
converter to operate at its’ own internally set frequency.  
The sync output signal is a continuous pulse train set at  
550 ±50 KHz, with a duty cycle of 15 ±5%. This signal is  
referenced to the input return and has been tailored to be  
compatible with the AFL sync input port. Transition times  
are less than 100 ns and the low level output impedance is  
less than 50 ohms. This signal is active when the DC input  
voltage is within the specified operating range and the  
converter is not inhibited. This output has adequate drive  
reserve to synchronize at least five additional converters.  
A typical synchronization connection option is illustrated in  
Figure III.  
Synchronization of Multiple Converters  
When operating multiple converters, system requirements  
often dictate operation of the converters at a common  
frequency. To accommodate this requirement, the AFL  
series converters provide both a synchronization input and  
output.  
The sync input port permits synchronization of an AFL  
converter to any compatible external frequency source  
operating between 500 and 700 KHz. This input signal  
should be referenced to the input return and have a 10% to  
90% duty cycle. Compatibility requires transition times less  
th an100 ns, maximum low level of +0.8 volts and a minimum  
Figure III. Preferred Connection for Parallel Operation  
1
12  
Power  
Input  
Enable 2  
Vin  
Rtn  
Share  
+ Sense  
- Sense  
Return  
Case  
AFL  
AFL  
Enable 1  
Sync Out  
Sync In  
+ Vout  
6
1
7
Optional  
Synchronization  
Connection  
Share Bus  
12  
Enable 2  
Share  
Vin  
Rtn  
Case  
+ Sense  
- Sense  
Return  
+ Vout  
Enable 1  
Sync Out  
Sync In  
to Load  
7
6
1
12  
Enable 2  
Share  
Vin  
Rtn  
Case  
+ Sense  
- Sense  
Return  
+ Vout  
AFL  
Enable 1  
Sync Out  
Sync In  
7
6
(Other Converters)  
Parallel Operation-Current and Stress Sharing  
AFL series operating in the parallel mode is that in addition  
to sharing the current, the stress induced by temperature  
will also be shared. Thus if one member of a paralleled set  
is operating at a higher case temperture, the current it pro-  
vides to the load will be reduced as compensation for the  
temperature induced stress on that device.  
Figure III. illustrates the preferred connection scheme for  
operation of a set of AFL converters with outputs operating  
in parallel. Use of this connection permits equal sharing of  
a load current exceeding the capacity of an individual AFL  
among the members of the set. An important feature of the  
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5
AFL27003R3S  
When operating in the shared mode, it is important that for minor variations of either surface. While other available  
symmetry of connection be maintained as an assurance of types of heat conductive materials and compounds may  
optimum load sharing performance. Thus, converter outputs provide similar performance, these alternatives are often  
should be connected to the load with equal lengths of wire of  
the same gauge and sense leads from each converter should  
be connected to a common physical point, preferably at the  
load along with the converter output and return leads. All  
converters in a paralleled set must have their share pins  
connected together. This arrangement is diagrammatically  
illustrated in Figure III. showing the outputs and sense pins  
connected at a star point which is located close as possible  
to the load.  
less convinient and are frequently messy to use.  
A conservative aid to estimating the total heat sink surface  
area (AHEAT SINK) required to set the maximum case  
temperature rise (T) above ambient temperature is given  
by the following expression:  
1.43  
T  
A
HEAT SINK  
3.0  
0.85  
As a consequence of the topology utilized in the current  
sharing circuit, the share pin may be used for other functions.  
In applications requiring a single converter, the voltage  
appearing on the share pin may be used as a “current  
monitor”. The share pin open circuit voltage is nominally  
+1.00v at no load and increases linearly with increasing  
output current to +2.20v at full load. The share pin voltage  
is referenced to the output return pin.  
80P  
where  
T = Case temperature rise above ambient  
1
1  
P = Device dissipation in Watts = P  
OUTEff  
As an example, it is desired to maintain the case temperature  
of an AFL27015S at +85°C in an area where the ambient  
temperature is held at a constant +25°C; then  
Thermal Considerations  
Because of the incorporation of many innovative  
technological concepts, the AFL series of converters is  
capable of providing very high output power from a package  
of very small volume. These magnitudes of power density  
can only be obtained by combining high circuit efficiency  
with effective methods of heat removal from the die junctions.  
This requirement has been effectively addressed inside the  
device; but when operating at maximum loads, a significant  
amount of heat will be generated and this heat must be  
conducted away from the case. To maintain the case  
temperature at or below the specified maximum of 125°C,  
this heat must be transferred by conduction to an  
appropriate heat dissipater held in intimate contact with the  
converter base-plate.  
T = 85 - 25 = 60°C  
From the Specification Table, the worst case full load  
efficiency for this device is 83%; therefore the power  
dissipation at full load is given by  
1
.83  
(
)
P = 120•  
1 = 1200.205 = 24.6W  
and the required heat sink area is  
1.43  
60  
3.0 = 71 in2  
Because effectiveness of this heat transfer is dependent  
on the intimacy of the baseplate/heatsink interface, it is  
strongly recommended that a high thermal conductivity heat  
transferance medium is inserted between the baseplate  
and heatsink. The material most frequently utilized at the  
factory during all testing and burn-in processes is sold under  
A
HEAT SINK  
=
0.85  
80 24.6  
Thus, a total heat sink surface area (including fins, if any) of  
2
71 in in this example, would limit case rise to 60°C above  
ambient. A flat aluminum plate, 0.25" thick and of  
1
2
the trade name of Sil-Pad® 400 . This particular pro duct  
approximate dimension 4" by 9" (36 in per side) would  
is an insulator but electrically conductive versions are also  
available. Use of these materials assures maximum surface  
contact with the heat dissipator thereby compensating  
suffice for this application in a still air environment. Note  
that to meet the criteria in this example, both sides of the  
plate require unrestricted exposure to the ambient air.  
1
Sil-Pad is a registered Trade Mark of Bergquist, Minneapolis, MN  
6
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AFL27003R3S  
Input Filter  
Finding a resistor value for a particular output voltage, is  
simply a matter of substituting the desired output voltage  
and the nominal device voltage into the equation and solving  
The AFL270XXS series converters incorporate a LC input  
filter whose elements dominate the input load impedance  
characteristic at turn-on. The input circuit is as shown in  
Figure IV.  
for the corresponding resistor value.  
Figure V. Connection for VOUT Adjustment  
Figure IV. Input Filter Circuit  
Enable 2  
8.4µH  
Share  
RADJ  
Pin 1  
+ Sense  
AFL270xxS  
- Sense  
0.54µfd  
Return  
To Load  
+ Vout  
Pin 2  
Caution: Do not set Radj < 500Ω  
Attempts to adjust the output voltage to a value greater than  
120% of nominal should be avoided because of the potential  
of exceeding internal component stress ratings and  
subsequent operation to failure. Under no circumstance  
should the external setting resistor be made less than 500.  
By remaining within this specified range of values, completely  
safe operation fully within normal component derating limits  
is assured.  
Undervoltage Lockout  
A minimum voltage is required at the input of the converter  
to initiate operation. This voltage is set to 150 ± 5 volts. To  
preclude the possibility of noise or other variations at the  
input falsely initiating and halting converter operation, a  
hysteresis of approximately 10 volts is incorporated in this  
circuit. Thus if the input voltage droops to 140 ± 4 volts, the  
converter will shut down and remain inoperative until the  
input voltage returns to 150 volts.  
Examination of the equation relating output voltage and  
resistor value reveals a special benefit of the circuit topology  
utilized for remote sensing of output voltage in the  
AFL270XXS series of converters. It is apparent that as the  
resistance increases, the output voltage approaches the  
nominal set value of the device. In fact the calculated limiting  
value of output voltage as the adjusting resistor becomes  
Output VoltageAdjust  
In addition to permitting close voltage regulation of remotely  
located loads, it is possible to utilize the converter sense  
pins to incrementally increase the output voltage over a  
limited range. The adjustments made possible by this method  
are intended as a means to “trim” the output to a voltage  
setting for some particular application, but are not intended  
to create an adjustable output converter. These output  
voltage setting variations are obtained by connecting an  
appropriate resistor value between the +sense and -sense  
pins while connecting the -sense pin to the output return pin  
as shown in Figure V. below. The range of adjustment and  
corresponding range of resistance values can be determined  
very large is 25mV above nominal device voltage.  
The consequence is that if the +sense connection is  
unintentionally broken, an AFL270XXS has a fail-safe output  
voltage of Vout + 25mV, where the 25mV is independent of  
the nominal output voltage. It can be further demonstrated  
that in the event of both the + and - sense connections  
being broken, the output will be limited to Vout + 440mV.  
This 440 mV is also essentially constant independent of the  
nominal output voltage. While operation in this condition is  
not damaging to the device, not at all performance  
parameters will be met.  
by use of the following equation.  
VNOM  
Radj = 100•  
VOUT - VNOM -.025  
Where VNOM = device nominal output voltage, and  
VOUT = desired output voltage  
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7
AFL27003R3S  
AFL27003R3S Case Outlines  
Case X  
Case W  
Pin Variation of Case Y  
3.000  
2.760  
ø 0.128  
0.050  
0.050  
0.250  
1.000  
0.250  
1.000  
1.260 1.500  
0.200 Typ  
Non-cum  
Ref  
Pin  
ø 0.040  
Pin  
ø 0.040  
0.220  
2.500  
0.220  
0.525  
2.800  
2.975 max  
0.238 max  
0.42  
0.380  
Max  
0.380  
Max  
Case Y  
Case Z  
Pin Variation of Case Y  
1.150  
0.300  
ø 0.140  
0.25 typ  
0.050  
0.050  
0.250  
0.250  
1.000  
Ref  
1.500 1.750 2.00  
1.000  
Ref  
0.200 Typ  
Non-cum  
Pin  
ø 0.040  
Pin  
ø 0.040  
0.220  
0.220  
1.750  
2.500  
0.375  
0.36  
2.800  
2.975 max  
0.525  
0.238 max  
0.380  
Max  
0.380  
Max  
Tolerances, unless otherwise specified: .XX  
.XXX  
=
=
±0.010  
±0.005  
BERYLLIA WARNING: These converters are hermetically sealed; however they contain BeO substrates and should not be ground or subjected to any other  
operations including exposure to acids, which may produce Beryllium dust or fumes containing Beryllium  
8
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AFL27003R3S  
Available Screening Levels and Process Variations for AFL27003R3S Series.  
MIL-STD-883  
Method  
No  
ES  
HB  
CH  
Requirement  
Temperature Range  
Element Evaluation  
Internal Visual  
Suffix  
Suffix  
Suffix  
Suffix  
-20 to +85°C  
-55°C to +125°C  
-55°C to +125°C  
-55°C to +125°C  
MIL-PRF-38534  
2017  
1010  
2001  
1015  
Temperature Cycle  
Constant Acceleration  
Burn-in  
Cond B  
500g  
Cond C  
Cond A  
Cond C  
Cond A  
48hrs @ 85°C  
48hrs @ 125°C  
25°C  
160hrs @ 125°C  
160hrs @ 125°C  
Final Electrical (Group A)  
MIL-PRF-38534  
& Specification  
25°C  
-55, +25, +125°C -55, +25, +125°C  
Seal, Fine & Gross  
1014  
2009  
Cond C  
Cond A, C  
Cond A, C  
Cond A, C  
External Visual  
* per Commercial Standards  
AFL27003R3S Pin Designation  
Part Numbering  
AFL 270 03R3 S X / CH  
Pin No.  
Designation  
Positive Input  
Input Return  
Case  
Model  
Screening  
1
2
, ES  
Input Voltage  
Case Style  
W, X, Y, Z  
HB, CH  
270 = 270V  
28 = 28V  
3
Output Voltage  
Outputs  
S = Single  
D = Dual  
4
Enable 1  
03R3 = 3.3V  
5
Sync Output  
Sync Input  
Positive Output  
Output Return  
Return Sense  
Positive Sense  
Share  
6
7
8
9
10  
11  
12  
Enable 2  
WORLD HEADQUARTERS: 233 Kansas St., El Segundo, California 90245, Tel: (310) 252-7105  
IR SANTA CLARA: 2270 Martin Av., Santa Clara, California 95050, Tel: (408) 727-0500  
Visit us at www.irf.com for sales contact information.  
Data and specifications subject to change without notice. 09/2004  
www.irf.com  
9

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