Part Number Hot Search : 
MC33184 TB330SEV BSM151 KTC3198 NCP4561 SBM1F 12011 BD45245G
Product Description
Full Text Search
 

To Download AHP2828S Datasheet File

  If you can't view the Datasheet, Please click here to try to view without PDF Reader .  
 
 


  Datasheet File OCR Text:
   www.irf.com 1 high reliabilityhybrid dc/dc converters ahp28xxs series the ahp series of dc/dc converters feature high powerdensity without derating over the full military temperature range. this series is offered as lower cost alternatives to the legendary afl series with improved performance for new design applications. the ahps are form, fit and functional replacement to the afl series. the new ahp series offers a full compliment of single and dual output voltages operating from nominal +28 or +270 volt inputs with output power ranging from 66 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. same as the afl, the ahp 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. under-voltage lockout, primary and secondary referenced inhibit, soft-start and load fault protection are provided on all models. also included is input over- voltage protection, a new protection feature unique to the ahp. description  16 to 40 volt input range  3.3, 5, 8 , 9,12,15 and 28 volts outputs avail able  high power density - up to 84 w / in 3  up to 120 watt output power  parallel operation with stress and current sharing  input over-voltage protection  high efficiency - to 85%  continuous short circuit and overload protection  external synchronization port  remote sensing terminals  primary and secondary referenced inhibit functions  line rejection > 40 db - dc to 50khz  fault tolerant design  full military temperature range  ceramic feedthru copper core pins  low profile (0.380") seam welded package  dual output versions available features 28v input, single output these converters are hermetically packaged in twoenclosure variations, utilizing copper core pins to minimize resistive dc losses. three lead styles are available, each fabricated with international rectifiers rugged ceramic lead-to-package seal assuring long term hermeticity in harsh environments. complete group a test specification over the fullmilitary temperature range without output power de-rating. two grades with more limited screening are also available for use in less demanding applications. variations in electrical, mechanical and screening can be accommodated. please contact ir santa clara for special requirements. 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 ahp pd-97388 downloaded from: http:///
2 www.irf.com ahp28xxs series specifications static characteristics -55c < t case < +125c, 16v < v in < 40v unless otherwise specified. for notes to specifications, refer to page 4 absolute maximum ratings input voltage -0.5v to 50v soldering temperature 300c for 10 seconds case temperature - operating case temperature - storage -55c to +125c -65c to +135c parameter group a subgroups test conditions min nom max unit input voltage note 6 16 28 40 v output voltage ahp2803r3s ahp2805s ahp2808s ahp2809s ahp2812s ahp2815s AHP2828S ahp2803r3s ahp2805s ahp2808s ahp2809s ahp2812s ahp2815s AHP2828S 1 1 1 1 1 1 1 2, 3 2, 3 2, 3 2, 3 2, 3 2, 3 2, 3 v in = 28v, 100% load 3.27 4.95 7.92 8.91 11.88 14.85 27.72 3.23 4.90 7.84 8.82 11.76 14.70 27.44 3.30 5.00 8.00 9.00 12.00 15.00 28.00 3.33 5.05 8.08 9.09 12.12 15.15 28.28 3.37 5.10 8.16 9.18 12.24 15.30 28.56 v output current ahp2803r3s ahp2805s ahp2808s ahp2809s ahp2812s ahp2815s AHP2828S v in = 16, 28, 40v - note 6 20 16 10 10 9.0 8.0 4.0 a output power ahp2803r3s ahp2805s ahp2808s ahp2809s ahp2812s ahp2815s AHP2828S note 6 66 80 80 90 108 120 112 w maximum capacitive load note 1 10,000 f output voltage temperature coefficient v in = 28v, 100% load C notes 1, 6 -0.015 +0.015 %/c output voltage regulation AHP2828S line all others line load 1, 2, 3 1, 2, 3 1, 2, 3 no load, 50% load, 100% load v in = 16, 28, 40v -70 -20 -1.0 +70 +20 +1.0 mv mv % output ripple voltage ahp2803r3s ahp2805s ahp2808s ahp2809s ahp2812s ahp2815s AHP2828S 1, 2, 3 1, 2, 3 1, 2, 3 1, 2, 3 1, 2, 3 1, 2, 3 1, 2, 3 v in = 16, 28, 40v, 100% load, bw = 10mhz 30 30 40 40 45 50 100 mv pp downloaded from: http:///
www.irf.com 3 ahp28xxs series static characteristics (continued) for notes to specifications, refer to page 4 parameter group a subgroups test conditions min nom max unit input current no load inhibit 1 inhibit 2 1 2, 3 1, 2, 3 1, 2, 3 v in = 28v i out = 0 pin 4 shorted to pin 2 pin 12 shorted to pin 8 80 100 5.0 50 ma input ripple current ahp2803r3s ahp2805s ahp2808s ahp2809s ahp2812s ahp2815s AHP2828S 1, 2, 3 1, 2, 3 1, 2, 3 1, 2, 3 1, 2, 3 1, 2, 3 1, 2, 3 v in = 28v, 100% load, bw = 10mhz 60 60 60 60 60 60 60 ma pp current limit point as a percentage of full rated load 1 2 3 v out = 90% v nom , v in = 28v, note 5 115 105 125 125 115 140 % load fault power dissipation overload or short circuit 1, 2, 3 v in = 28v 33 w efficiency ahp2803r3s ahp2805s ahp2808s ahp2809s ahp2812s ahp2815s AHP2828S 1, 2, 3 1, 2, 3 1, 2, 3 1, 2, 3 1, 2, 3 1, 2, 3 1, 2, 3 v in = 28v, 100% load 72 78 79 80 80 81 81 74 81 82 83 84 85 84 % enable inputs (inhibit function) converter off sink current converter on sink current 1, 2, 3 1, 2, 3 logical low on pin 4 or pin 12 note 1 logical high on pin 4 and pin 12 - note 9 note 1 -0.5 2.0 0.8 100 50 100 v a v a switching frequency 1, 2, 3 500 550 600 khz synchronization input frequency range pulse amplitude, hi pulse amplitude, lo pulse rise time pulse duty cycle 1, 2, 3 1, 2, 3 1, 2, 3 note 1 note 1 500 2.0 -0.5 20 700 10 0.8 100 80 khz v v ns % isolation 1 input to output or any pin to case (except pin 3). test @ 500vdc 100 m ? device weight slight variations with case style 85 g mtbf mil-hdbk-217f, aif @ t c = 70c 300 khrs downloaded from: http:///
4 www.irf.com ahp28xxs series dynamic characteristics -55c < t case < +125c, v in =28v unless otherwise specified. 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 v out has returned to within 1% of v out at 50% load. 3. line transient transition time 100 s. 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 s. 9. enable inputs internally pulled high. nominal open circuit voltage 4.0v dc . group a subgroups test conditions min nom max unit load transient response ahp2803r3s / ahp2805s amplitude recovery amplitude recovery ahp2808s amplitude recovery amplitude recovery ahp2809s amplitude recovery amplitude recovery ahp2812s amplitude recovery amplitude recovery ahp2815s amplitude recovery amplitude recovery AHP2828S amplitude recovery amplitude recovery 4, 5, 6 4, 5, 6 4, 5, 6 4, 5, 6 4, 5, 6 4, 5, 6 4, 5, 6 4, 5, 6 4, 5, 6 4, 5, 6 4, 5, 6 4, 5, 6 4, 5, 6 4, 5, 6 4, 5, 6 4, 5, 6 4, 5, 6 4, 5, 6 4, 5, 6 4, 5, 6 4, 5, 6 4, 5, 6 4, 5, 6 4, 5, 6 note 2, 8 load step 50% ? 100% load step 10% ? 50% load step 50% ? 100% load step 10% ? 50% load step 50% ? 100% load step 10% ? 50% load step 50% ? 100% load step 10% ? 50% load step 50% ? 100% load step 10% ? 50% load step 50% ? 100% load step 10% ? 50% -450 -450 -500 -500 -600 -600 -750 -750 -750 -750 -1200 -1200 450 200 450 400 500 200 500 400 600 200 600 400 750 200 750 400 750 200 750 400 1200 200 1200 400 mv s mv s mv s mv s mv s mv s mv s mv s mv s mv s mv s mv s line transient response amplitude recovery note 1, 2, 3 v in step = 16 ? 40v -500 500 500 mv s turn-on characteristics overshoot delay 4, 5, 6 4, 5, 6 v in = 16, 28, 40v. note 4 enable 1, 2 on. (pins 4, 12 high or open) 0 4.0 12 10 % ms load fault recovery same as turn on characteristics. line rejection mil-std-461d, cs101, 30hz to 50khz note 1 40 50 db downloaded from: http:///
www.irf.com 5 ahp28xxs series ahp28xxs circuit description figure i. ahp single output block diagram figure ii. enable input equivalent circuit circuit operation and application information inhibiting converter output as an alternative to application and removal of the dc voltageto 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. 1 dc in p ut enable 1 4 s y nc out p ut 5 6 sync input case 3 2 input return input filter primary bias supply control fb output filter current sens e error amp & ref share am p lifier sense amplifier 7 +output 10 +sense 11 share 12 enable 2 9 -sense 8 output return the ahp series of converters employ a forward switchedmode 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. a power mosfet is used to chop the dc input voltage into a high frequency square wave, applying this chopped voltage to the power transformer at the nominal converter switching frequency. maintaining a dc voltage within the specified operating range at the input assures continuous generation of the primary bias voltage. the switched voltage impressed on the secondary output transformer winding is rectified and filtered to generate the converter dc 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 mosfet, narrowing the width if the output voltage is too high and widening it if it is too low, thereby regulating the output voltage. remote sensing connection of the + and - sense leads at a remotely located load permits compensation for excessive resistancebetween the converter output and the load when their physical separation could cause undesirable voltage drop. this connection allows regulation to the placard voltage at the point of application. when the remote sensing feature is not used the sense leads should be connected to their respective output terminals at the converter. figure iii. illustrates a typical remotely sensed application. 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 save for minor differences in standby current. (see specification table). pin 4 or pin 12 1n4148 100 k 290 k 200 k 2n3904 +5.6v disable pin 2 or pin 8 downloaded from: http:///
6 www.irf.com ahp28xxs series figure iii. preferred connection for parallel operation synchronization of multiple converters parallel operation-current and stress sharing when operating multiple converters, system requirementsoften dictate operation of the converters at a common frequency. to accommodate this requirement, the ahp series converters provide both a synchronization input and a synchronization output. the sync input port permits synchronization of an ahp connverter 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 than 100 ns, maximum low level of +0.8 volts and a minimum high level of +2.0 volts. the sync output of another converter which has been designated as the master oscillator providesa convenient frequency source for this mode of operation. 


 


  




 




 


!"

 

 #  


 
 
 

$
 

$
%# $


&'

 
"
 
%
 



 


 ( 

%  

 

% "


 

(


)*
  (



   
  
 
 

 # (  


 $ "



 +
(
 # (

 

  
(
 
 (   "
&  
 

  

,
---" figure iii. illustrates the preferred connection scheme foroperation of a set of ahp converters with outputs operating in parallel. use of this connection permits equal sharing among the members of a set whose load current exceeds the capacity of an individual ahp. an important feature of ahp series operating in the parallel mode is that in additionto 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 temperature, the current it provides to the load will be reduced as compensation for the temperature induced stress on that device. when external synchronization is not required, the sync inpin should be left open (unconnected )thereby permitting the converter to operate at its own internally set frequency. optional synchronization connection power input (other converters) share bus 16 7 12 - sense enable 2 + vout return + sense share vin rtn case enable 1 sync out sync in 167 12 - sense enable 2 + vout return + sense share vin rtn case enable 1 sync out sync in 167 12 - sense enable 2 + vout return + sense share vin rtn case enable 1 sync out sync in to load ahp ahp ahp downloaded from: http:///
www.irf.com 7 ahp28xxs series a conservative aid to estimating the total heat sink surfacearea (a heat sink ) required to set the maximum case temp- erature rise ( ? t) above ambient temperature is given by the following expression: a heat sink ?? ? ?? ? ? ? ? t p 80 30 085 143 . . . where ? t pp eff out = == ? ?? ? ?? ? case temperature rise above ambient device dissipation in watts 1 1 ? t = 85 - 25 = 60c and the required heat sink area is from the specification table, the worst case full loadefficiency for this device is 83%; therefore the power dissipation at full load is given by because of the incorporation of many innovativetechnological concepts, the ahp 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 125c, this heat must be transferred by conduction to an appropriate heat dissipater held in intimate contact with the converter base-plate. when operating in the shared mode, it is important thatsymmetry of connection be maintained as an assurance of optimum load sharing performance. thus, converter outputs should be connected to the load with equal lengths of wire of the same gauge and 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 output and return pins connected at a star point which is located as close as possible to the load. as a consequence of the topology utilized in the currentsharing circuit, the share pin may be used for other functions. in applications requiring only 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 total output current to +2.20v at full load. 1 sil-pad is a registered trade mark of bergquist, minneapolis, mn thermal considerations because the effectiveness of this heat transfer is dependenton the intimacy of the baseplate/heatsink interface, it is strongly recommended that a high thermal conductivity heat transferring 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 the trade name of sil-pad ? 400 1 . this particular product is an insulator but electrically conductive versions are alsoavailable. use of these materials assures maximum surface contact with the heat dissipater thereby compensating for any minor surface variations. while other available types of heat conductive materials and thermal compounds provide similar effectiveness, these alternatives are often less convenient and can be somewhat messy to use. as an example, it is desired to maintain the case temperatureof an ahp2815s at +85c while operating in an open area whose ambient temperature is held at a constant+25c; then thus, a total heat sink surface area (including fins, if any) of 71 in 2 in this example, would limit case rise to 60c above ambient. a flat aluminum plate, 0.25" thick and ofapproximate dimension 4" by 9" (36 in 2 per side) would suffice for this application in a still air environment. notethat to meet the criteria in this example, both sides of the plate require unrestricted exposure to the ambient air. () p =? ? ? ?? ? ?? =? = 120 1 83 1 120 0 205 24 6 . .. w a = 60 80 24.6 in heat sink 0.85 ? ?? ? ?? ? ?= ? 143 2 30 71 . . downloaded from: http:///
8 www.irf.com ahp28xxs series input filterundervoltage lockout the ahp28xxs series converters incorporate a single stagelc input filter whose elements dominate the input load impedance characteristic during the turn-on. the input circuit is as shown in figure iv. figure iv. input filter circuit a minimum voltage is required at the input of the converterto initiate operation. this voltage is set to 14.0 0.5 volts. to preclude the possibility of noise or other variations at theinput falsely initiating and halting converter operation, a hysteresis of approximately 1.0 volts is incorporated in this circuit. thus if the input voltage droops to 13.0 0.5 volts, the converter will shut down and remain inoperative until theinput voltage returns to 14.0 volts. output voltage adjust input over-voltage protection one additional protection feature is incorporated into theahp input circuit. it is an input over-voltage protection. the output will shutdown and restart at approximately 110% of the maximum rated input voltage. this protection feature is unique to the ahp. pin 1 pin 2 3.5h 11.2 fd in addition to permitting close voltage regulation of remotelylocated 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 in the locations as shown in figure v or figure vi depending on the desired output voltage. the range of adjustment and corresponding range of resistance values can be determined by use of the equations presented below. ,
./ 
0
"1/2
3
/ 
3
./ 
0
"/2

  
   
$ 

04
 
54

 
54
  



 


 ,
/"

  
(
.6  2

 
  7 ? ? ? ? ? ? ? ? ? = 25.0 1000 nom out nom adj v v v r for v nom < v out < (v nom + 0.25v), a resistor is connected between the +sense and +output pins with the Csenseconnected to the output return as shown in figure vi. the resistor value (r adj ) is calculated as follows: ? ? ? ? ? ? ? ? ? ? = 1 25.0 1000 nom out adj v v r v nom = device nominal output voltage v out = desired output voltage r adj = value of the external resistor required to achieve the desired vout finding a resistor value for a particular output voltage, issimply a matter of substituting the desired output voltage and the nominal device voltage into the equation and solving for the corresponding resistor value. figure v. connection for v out > v nom + 0.25v figure vi. connection for v nom < v out < (v nom + 0.25v) enable 2 share +sense - sense return +vout ahp28xxs r adj to load enable 2 share +sense - sense return +vout ahp28xxs r adj to load downloaded from: http:///
www.irf.com 9 ahp28xxs series attempts to adjust the output voltage to a value greater than120% 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, completelysafe operation fully within normal component derating is assured. 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 ahp28xxs 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 very large is ? 250mv above nominal device voltage. the consequence is that if the +sense connection isunintentionally broken, an ahp28xxs has a fail-safe output voltage of vout + 250mv, where the 250mv 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 + 500mv. this 500mv is also essentially constant independent of the nominal output voltage. while operation in this condition is not damaging to the device, not all performance parameters will be met. general application information the ahp28xxs series of converters are capable ofproviding large transient currents to user loads on demand. because the nominal input voltage range in this series is relatively low, the resulting input current demands will be correspondingly large. it is important therefore, that the line impedance be kept very low to prevent steady state and transient input currents from degrading the supply voltage between the voltage source and the converter input. in applications requiring high static currents and largetransients, it is recommended that the input leads be made of adequate size to minimize resistive losses, and that a good quality capacitor of approximately100 fd be connected directly across the input terminals to assure an adequatelylow impedance at the input terminals. table i relates nominal resistance values and selected wire sizes. table 1. nominal resistance of cu wire wire size, awg resistance per ft 24 ga 25.7 m ? 22 ga 16.2 m ? 20 ga 10.1 m ? 18 ga 6.4 m ? 16 ga 4.0 m ? 14 ga 2.5 m ? 12 ga 1.6 m ? as an example of the effects of parasitic resistance,consider an ahp2815s operating at full power of 120 w. from the specification sheet, this device has a minimum efficiency of 83% which represents an input power of more than 145 w. if we consider the case where line voltage is at its minimum of 16 volts, the steady state input current necessary for this example will be slightly greater than 9amperes. if this device were connected to a voltage source with 10 feet of 20 gauge wire, the round trip (input and return) would result in 0.2 ? of resistance and 1.8 volts of drop from the source to the converter. to assure 16 voltsat the input, a source closer to 18 volts would be required. in applications using the paralleling option, this drop will be multiplied by the number of paralleled devices. by choosing 14 or 16 gauge wire in this example, theparasitic resistance and resulting voltage drop will be reduced to 25% or 31% of that with 20 gauge wire. another potential problem resulting from parasitically inducedvoltage drop on the input lines is with regard to the operation of the enable 1 port. the minimum and maximum operating levels required to operate this port are specified with respect to the input common return line at the converter. if a logic signal is generated with respect to a common that is distant from the converter, the effects of the voltage drop over the return line must be considered when establishing the worst case ttl switching levels. these drops will effectively impart a shift to the logic levels. in figure vii, it can be seen that referred to system ground, the voltage on the input return pin is given by e rtn = i rtn r p downloaded from: http:///
10 www.irf.com ahp28xxs series incorporation of a 100 fd capacitor at the input terminalsis recommended as compensation for the dynamic effects of the parasitic resistance of the input cable reacting with the complex impedance of the converter input, and to provide an energy reservoir for transient input current requirements. figure vii. problems of parasitic resistance in input leads vinrtn case enable 1 sync out sync in r p r p i rtn i in e source system ground e rtn 100 fd therefore, the logic signal level generated in the systemmust be capable of a ttl logic high plus sufficient additional amplitude to overcome e rtn . when the converter is inhibited, i rtn diminishes to near zero and e rtn will then be at system ground. (see text) downloaded from: http:///
www.irf.com 11 ahp28xxs series ahp28xxs case outlines case x case w pin variation of case y 1.260 1.500 2.500 2.760 3.000 ? 0.128 0.2501.000 ref 0.200 typ non-cum 0.050 0.220 pin? 0.040 0.238 max 0.380 max 2.975 max 1 6 7 12 0.050 0.220 0.250 1.000 pin ? 0.040 0.525 0.380 max 2.800 0.42 case y case z pin variation of case y 1.500 1.750 2.500 0.25 typ 1.150 0.050 0.220 1 6 7 12 1.750 0.375 2.00 0.2501.000 ref 0.200 typ non-cum pin? 0.040 0.300 ? 0.140 0.238 max 0.380 max 2.975 max 0.050 0.220 0.2501.000 ref pin ? 0.040 0.525 0.380 max 2.800 0.36 ber yllia w arning : these converters are hermetically sealed; however they contain beo substrates and should not be ground or subjected to any o ther operations including exposure to acids, which may produce beryllium dust or fumes containing beryllium tolerances, unless otherwise specified: .xx = 0.010 .xxx = 0.005 downloaded from: http:///
12 www.irf.com ahp28xxs series pin no. designation 1 positive input 2 input return 3 case 4 enable 1 5 sync output 6 sync input 7 positive output 8 output return 9 return sense 10 positive sense 11 share 12 enable 2 ahp28xxs pin designation part numbering world headquarters: 233 kansas st., el segundo, california 90245, tel: (310) 322 3331 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. 04/2009 available screening levels and process variations for ahp28xxs series. * per commercial standards ahp 28 05 s x / ch model input voltage 28 = 28v 270 = 270v output voltage 05 = 5v, 08 = 8v 09 = 9v, 12 = 12v 15 = 15v, 28 = 28v outputs s = single d = dual case style w, x, y, z screening level es, hb, ch blank = min screening requirement mil-std-883 method no suffix es suffix hb suffix ch suffix temperature range -20c to +85c -55c to +125c -55c to +125c -55c to +125c element evaluation mil-h-38534 internal visual 2017    temperature cycle 1010 cond b cond c cond c constant acceleration 2001, y1 axis 500g 3000g 3000g burn-in 1015 48hrs @ 85 c 48hrs @ 125c 160hrs @ 125c 160hrs @ 125c final electrical (group a) mil-prf-38534 specification 25c 25c -55, +25, +125c -55, +25, +125c seal, fine & gross 1014 cond c cond a, c cond a, c cond a, c external visual 2009    downloaded from: http:///


▲Up To Search▲   

 
Price & Availability of AHP2828S

All Rights Reserved © IC-ON-LINE 2003 - 2022  

[Add Bookmark] [Contact Us] [Link exchange] [Privacy policy]
Mirror Sites :  [www.datasheet.hk]   [www.maxim4u.com]  [www.ic-on-line.cn] [www.ic-on-line.com] [www.ic-on-line.net] [www.alldatasheet.com.cn] [www.gdcy.com]  [www.gdcy.net]


 . . . . .
  We use cookies to deliver the best possible web experience and assist with our advertising efforts. By continuing to use this site, you consent to the use of cookies. For more information on cookies, please take a look at our Privacy Policy. X