T85HFL100S05 IRF | Alldatasheet
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Fast recovery time characteristics Electrically isolated base plate 3500 V RMS isolating voltage Standard JEDEC package Simplified mechanical designs, rapid assembly Large creepage distances UL E78996 approved Major Ratings and Characteristics
2 www.irf.com T..HFL Series Bulletin I27107 rev. A 09/97 IF(AV) Max. average fwd current 40 70 85 A 180 o conduction, half sine wave @ Case temperature 70 70 70 oC IF(RMS) Max. RMS forward current 63 110 133 A IFSM Max. peak, one-cycle 475 830 1300 A t = 10ms No voltage forward, non-repetitive 500 870 1370 t = 8.3ms reapplied surge current 400 700 1100 t = 10ms 100% V RRM 420 730 1150 t = 8.3ms reapplied Sinusoidal half wave, I2t Maximum I 2t for fusing 1130 3460 8550 A 2s t = 10ms No voltage Initial TJ = TJ max. 1030 3160 7810 t = 8.3ms reapplied 800 2450 6050 t = 10ms 100% V RRM 730 2230 5520 t = 8.3ms reapplied I2√t Maximum I 2√t for fusing 11300 34600 85500 A 2√s t = 0.1 to 10ms, no voltage reapplied VF(TO)1 Low level value of threshold voltage VF(TO)2 High level value of threshold voltage r f1 Low level value of forward slope resistance r f2 High level value of forward slope resistance I FM = π x IF(AV), TJ = 25 oC, tp = 400µs square wave Av. power = VF(TO) x IF(AV) + rf x (IF(RMS) )2 7.0 2.77 2.15 m Ω TJ = 25 oC, (16.7% x π x IF(AV) < I < π x IF(AV)) 0.82 0.87 0.84 V T J = 25 oC, (16.7% x π x IF(AV) < I < π x IF(AV)) 0.84 0.90 0.86 T J = 25 oC, (I > π x IF(AV)) 6.8 2.67 2.07 T J = 25 oC, (I > π x IF(AV)) Parameters T40HFL T70HFL T85HFL Units Conditions VFM Max. forward voltage drop1.60 1.73 1.55 V Type number Voltage t rr VRRM , maximum repetitive VRSM , maximum non-repetitive IRRM max. Code Code peak reverse voltage peak reverse voltage T J= @25°C VV µ A
10 S02, S05, S10 100 150 100
T40HFL.. 20 S02, S05, S10 200 300 T70HFL.. 40 S02, S05, S10 400 500 T85HFL.. 60 S02, S05, S10 600 700
80 S05, S10 800 900
100 S05, S10 1000 1100
IRRM Max. peak rev. leak. current 20 mA T J = 125 oC VINS RMS isolation voltage 3500 V 50Hz, circuit to base, all terminals shorted TJ = 25°C, t = 1 s Voltage Ratings ELECTRICAL SPECIFICATIONS Forward Conduction Blocking Parameters T40HFL T70HFL T85HFL Units Conditions
3www.irf.com T..HFL Series Bulletin I27107 rev. A 09/97 TJ Junction operating temp. -40 to 125 oC Tstg Storage temperature range -40 to 150 oC R thJC Max. internal thermal resistance junction to case R thC-S Thermal resistance, case Mounting surface flat, smooth and greased. to heatsink Per module T Mounting Base to 1.3 ±10% Nm M3.5 mounting screws (2) torque ±10% heatsink Non-lubricated threads Busbar to Terminal 3 ±10% Nm M5 screws terminals; non-lubricated threads wt Approximate weight 54 (19) g (oz) See outline table Case style D-56 T-MODULE (2) A mounting compound is recommended and the torque should be rechecked after a period of about 3 hours to allow for the spread of the compound (*) Tested on LEM 300A Diodemeter Tester
0.2 K/W
Thermal and Mechanical Specifications 0.85 0.53 0.46 K/W Per module, DC operation T40HFL T70HFL T85HFL Parameter Units Conditions (*) S02 S05 S10 S02 S05 S10 S02 S05 S10 trr Maximum reverse T J = 25 °C, -diF/dt = 100A/µs recovery time IF = 1 A to VR = 30V TJ = 25 °C, -diF/dt = 25A/µs IFM = π x rated IF(AV),VR = -30 V Q rr Maximum reverse T J = 25 °C, -diF/dt = 100A/µs recovered charge I F = 1 A to VR = 30V TJ = 25 °C, -diF/dt = 25A/µs IFM = π x rated IF(AV)VR = -30 V 200 500 1000 200 500 1000 200 500 1000 ns 70 110 270 70 110 270 80 120 290 ns Reverse Recovery Characteristics Sinusoidal conduction @ TJ max. Rectangular conduction @ T J max.Devices Units180o 120o 90o 60o 30o 180o 120o 90o 60o 30o ΔR Conduction (The following table shows the increment of thermal resistance RthJC when devices operate at different conduction angles than DC) Parameters T40HFL T70HFL T85HFL Units Conditions
4 www.irf.com T..HFL Series Bulletin I27107 rev. A 09/97 Device Code 21 5 T 40 HFL 100 S10 1 - Module type 2 - Current rating: 40 = 40A (avg) 70 = 70A (avg) 85 = 85A (avg) 3 - Fast recovery diode 4 - Voltage code : code x 10 = V RRM 5 - trr code: S02 = 200ns S05 = 500ns S10 = 1000ns Ordering Information Table Outline Table All dimensions in millimeters (inches)
T..HFL Series Bulletin I27107 rev. A 09/97 www.irf.com Fig. 1 - Current Ratings Characteristics Fig. 2 - Current Ratings Characteristics Fig. 3 - Current Ratings Characteristics Fig. 4 - Current Ratings Characteristics Fig. 5 - Current Ratings Characteristics Fig. 6 - Current Ratings Characteristics 100 110 120 130 0 1 02 03 04 05 30° 60° 90° 120° 180° Maximum Allowable Case Temperature (°C) Conduction Angle Average Forward Current (A) T40HFL.. Series R (DC) = 0.85 K/WthJC 100 110 120 130 0 1 02 03 04 05 06 07 DC 30° 60° 90° 120° 180° Maximum Allowable Case Temperature (°C) Conduction Period Average Forward Current (A) T40HFL.. Series R (DC) = 0.85 K/WthJC 100 110 120 130 0 1 02 03 04 05 06 07 08 30° 60° 90° 120° 180° Maximum Allowable Case Temperature (°C) Conduction Angle Average Forward Current (A) T70HFL.. Series R (DC) = 0.53 K/WthJC 100 110 120 130 0 20 40 60 80 100 12 DC 30° 60° 90° 120° 180° Maximum Allowable Case Temperature (°C) Conduction Period Average Forward Current (A) T70HFL.. Series R (DC) = 0.53 K/WthJC 100 110 120 130 0 1 02 03 04 05 06 07 08 09 30° 60° 90° 120° 180° Maximum Allowable Case Temperature (°C) Conduction Angle Average Forward Current (A) T85HFL.. Series R (DC) = 0.46 K/WthJC 100 110 120 130 0 20 40 60 80 100 120 14 DC 30° 60° 90° 120° 180° Maximum Allowable Case Temperature (°C) Conduction Period Average Forward Current (A) T85HFL.. Series R (DC) = 0.46 K/WthJC
T..HFL Series Bulletin I27107 rev. A 09/97 www.irf.com Fig. 7 - Forward Power Loss Characteristics Fig. 8 - Forward Power Loss Characteristics Fig. 9 - Forward Power Loss Characteristics Fig. 10 - Forward Power Loss Characteristics Fig. 11 - Forward Power Loss Characteristics Fig. 12 - Forward Power Loss Characteristics 100 110 0 1 02 03 04 05 06 07 08 09 Average Forward Current (A) RMS Limit Maximum Average Forward Power Loss (W) Conduction Angle 180° 120° 90° 60° 30° T85HFL.. Series T = 125°C J 100 120 140 160 0 20 40 60 80 100 120 14 DC 180° 120° 90° 60° 30° RMS Limit Conduction Period Average Forward Current (A) Maximum Average Forward Power Loss (W) T85HFL.. Series T = 125°CJ 0 1 02 03 04 05 06 07 DC 180° 120° 90° 60° 30° RMS Limit Conduction Period Average Forward Current (A) Maximum Average Forward Power Loss (W) T40HFL.. Series T = 125°CJ 100 120 140 0 20 40 60 80 100 12 DC 180° 120° 90° 60° 30° RMS Limit Conduction Period Average Forward Current (A) Maximum Average Forward Power Loss (W) T70HFL.. Series T = 125°CJ 100 0 1 02 03 04 05 06 07 Average Forward Current (A) RMS Limit Maximum Average Forward Power Loss (W) Conduction Angle 180° 120° 90° 60° 30° T70HFL.. Series T = 125°C J 0 5 10 15 20 25 30 35 4 Average Forward Current (A) RMS Limit Maximum Average Forward Power Loss (W) Conduction Angle 180° 120° 90° 60° 30° T40HFL.. Series T = 125°C J
T..HFL Series Bulletin I27107 rev. A 09/97 www.irf.com Fig. 13 - Maximum Non-Repetitive Surge Current Fig. 14 - Maximum Non-Repetitive Surge Current Fig. 15 - Maximum Non-Repetitive Surge Current Fig. 16 - Maximum Non-Repetitive Surge Current Fig. 17 - Maximum Non-Repetitive Surge Current Fig. 18 - Maximum Non-Repetitive Surge Current 100 150 200 250 300 350 400 450 500 0.01 0.1 Peak Half Sine Wave Forward Current (A) Pulse Train Duration (s) Maximum Non Repetitive Surge Current T40HFL.. Series Initial T = 125°C No Voltage Reapplied Rated V Reapplied Versus Pulse Train Duration. RRM J 200 300 400 500 600 700 800 1 10 100 Peak Half Sine Wave Forward Current (A) Number Of Equal Amplitude Half Cycle Current Pulses (N) T70HFL.. Series Initial T = 125°C @ 60 Hz 0.0083 s @ 50 Hz 0.0100 s At Any Rated Load Condition And With Rated V Applied Follow ing Surge. J RRM 150 250 350 450 550 650 750 850 0.01 0.1 Peak Half Sine Wave Forward Current (A) Pulse Train Duration (s) Maximum Non Repetitive Surge Current T70HFL.. Series Initial T = 125°C No Voltage Reapplied Rated V Reapplied Versus Pulse Train Duration. RRM J 100 150 200 250 300 350 400 450 1 10 100 Peak Half Sine Wave Forward Current (A) Number Of Equal Amplitude Half Cycle Current Pulses (N) T40HFL.. Series Initial T = 125°C @ 60 Hz 0.0083 s @ 50 Hz 0.0100 s At Any Rated Load Condition And With Rated V Applied Following Surge.RRM J 300 400 500 600 700 800 900 1000 1100 1200 11 0 1 0 0 Peak Half Sine Wave Forward Current (A) Number Of Equal Amplitude Half Cycle Current Pulses (N) T85HFL.. Series Initial T = 125°C @ 60 Hz 0.0083 s @ 50 Hz 0.0100 s At Any Rated Load Condition And With Rated V Applied Following Surge.RRM J 300 400 500 600 700 800 900 1000 1100 1200 1300 0.01 0.1 Peak Half Sine Wave Forward Current (A) Pulse Train Duration (s) Maximum Non Repetitive Surge Current Initial T = 125 °C No Voltage Reapplied Rated V Reapplied Versus Pulse Train Duration. RRM J T85HFL.. Series
T..HFL Series Bulletin I27107 rev. A 09/97 www.irf.com Fig. 20 - Recovery Charge CharacteristicsFig. 19 - Recovery Time Characteristics Fig. 21 - Recovery Current Characteristics Fig. 22 - Recovery Time Characteristics Fig. 24 - Recovery Current CharacteristicsFig. 23 - Recovery Charge Characteristics Fig. 25 - Recovery Time Characteristics Fig. 26 - Recovery Charge Characteristics Fig. 27 - Recovery Current Characteristics 10 20 30 40 50 60 70 80 90 100 100A 220A 172A 50A Rate Of Fall Of Forward Current - di/dt (A/ µs) Maximum Reverse Recovery Current - Irr (A ) I = 300A T40HFL..S02 T70HFL..S02 T = 125 °C FM J 10 20 30 40 50 60 70 80 90 100 100A 220A 172A 50A Rate Of Fall Of Forward Current - di/dt (A/ µs) Maximum Reverse Recovery Charge - Qrr ( µC) I = 300AFM T40HFL..S02 T70HFL..S02 T = 125 °C J 0.45 0.46 0.47 0.48 0.49 0.5 0.51 10 100 100A 220A 172A 50A Rate Of Fall Of Forward Current - di/dt (A/ µs) Maximum Reverse Recovery Time - Trr (µs) I = 300AFM T40HFL..S02 T70HFL..S02 T = 125 °CJ 10 20 30 40 50 60 70 80 90 100 220A 172A 100A 50A Maximum Reverse Recovery Current - Irr (A) Rate Of Fall Of Forward Current - di/dt (A/ µs) I = 300AFM T40HFL..S05 T70HFL..S05 T = 125 °CJ 10 20 30 40 50 60 70 80 90 100 Rate Of Fall Of Forward Current - di/dt (A/ µs) Maximum Reverse Recovery Charge - Qrr (µC) 220A 172A 100A 50A I = 300AFM T40HFL..S05 T70HFL..S05 T = 125 °C J 0.6 0.7 0.8 0.9 1.1 10 100 100A 220A 172A 50A Maximum Reverse Recovery Time - Trr (µs) Rate Of Fall Of Forward Current - di/dt (A/ µs) I = 300AFM T40HFL..S05 T70HFL..S05 T = 125 °CJ 10 20 30 40 50 60 70 80 90 100 100A 50A 200A Maximum Reverse Recovery Current - Irr (A ) Rate Of Fall Of Forward Current - di/dt (A/ µs) I = 300AFM T40HFL..S10 T70HFL..S10 T = 125 °CJ 10 20 30 40 50 60 70 80 90 100 100A 50A 200A Maximum Reverse Recovery Charge - Qrr ( µC) Rate Of Fall Of Forward Current - di/dt (A/ µs) I = 300AFM T40HFL..S10 T70HFL..S10 T = 125 °C J 1.1 1.2 1.3 1.4 1.5 1.6 1.7 1.8 10 100 100A 50A 200A Maximum Reverse Recovery Time - Trr ( µs) Rate Of Fall Of Forward Current - di/dt (A/ µs) I = 300AFM T40HFL..S10 T70HFL..S10 T = 125 °C J
T..HFL Series Bulletin I27107 rev. A 09/97 www.irf.com Fig. 28 - Recovery Time CharacteristicsFig. 29 - Recovery Charge CharacteristicsFig. 30 - Recovery Current Characteristics Fig. 31 - Recovery Time CharacteristicsFig. 32 - Recovery Charge Characteristics Fig. 33 - Recovery Current Characteristics Fig. 34 - Recovery Time CharacteristicsFig. 35 - Recovery Charge Characteristics Fig. 36 - Recovery Current Characteristics 10 20 30 40 50 60 70 80 90 100 200A 100A 50A Maximum Reverse Recovery Current - Irr (A) Rate Of Fall Of Forward Current - di/dt (A/ µs) T85HFL..S02 T = 125°C I = 300A J FM 10 20 30 40 50 60 70 80 90 100 200A 100A 50A Maximum Reverse Recovery Charge - Qrr (µC) Rate Of Fall Of Forward Current - di/dt (A/ µs) T85HFL..S02 T = 125 °C I = 300A J FM 0.6 0.7 0.8 0.9 1.1 1.2 10 100 100A 50A 200A Maximum Reverse Recovery Time - Trr (µs) Rate Of Fall Of Forward Current - di/dt (A/ µs) T85HFL..S02 T = 125°C I = 300A J FM 10 20 30 40 50 60 70 80 90 100 100A 50A 200A Maximum Reverse Recovery Current - Irr (A) Rate Of Fall Of Forward Current - di/dt (A/ µs) T85HFL..S05 T = 125°C I = 300A J FM 10 20 30 40 50 60 70 80 90 100 200A Maximum Reverse Recovery Charge - Qrr (µC) Rate Of Fall Of Forward Current - di/dt (A/ µs) T85HFL..S05 T = 125°C 100A 50A J I = 300AFM 0.8 0.9 1.1 1.2 1.3 10 100 100A 50A 200A Maximum Reverse Recovery Time - Trr (µs) Rate Of Fall Of Forward Current - di/dt (A/ µs) I = 300A T85HFL..S05 T = 125°C FM J 10 20 30 40 50 60 70 80 90 100 100A 50A 200A Maximum Reverse Recovery Current - Irr (A ) I = 300A T85HFL..S10 T = 125°C Rate Of Fall Of Forward Current - di/dt (A/µs) FM J 10 20 30 40 50 60 70 80 90 100 200A Maximum Reverse Recovery Charge - Qrr (µC) Rate Of Fall Of Forward Current - di/dt (A/ µs) 100A 50A T85HFL..S10 T = 125°CJ I = 300AFM 1.1 1.2 1.3 1.4 1.5 1.6 1.7 1.8 1.9 10 100 100A 50A 200A Maximum Reverse Recovery Time - Trr (µs) Rate Of Fall Of Forward Current - di/dt (A/ µs) T85HFL..S10 T = 125°C I = 300A J FM
T..HFL Series Bulletin I27107 rev. A 09/97 www.irf.com Fig. 37 - Frequency Characteristics Fig. 38 - Frequency Characteristics Fig. 39 - Maximum Forward Energy Power Loss Characteristics 1E0 1E1 1E2 1E3 1E4 1E1 1E2 1E3 1 0.01 0.02 0.04 0.1 0.2 0.4 1 2 4 10 20 joules per pulse Peak Forward Current (A) Pulse Basewidth (µs) tp 1E4 T40HFL.. Series Sinusoida l Pulse T = 125 °CJ 1E1 1E2 1E3 1E 4 0.01 0. 02 0.04 0.1 0.2 0.4 1 2 410 20 joules per pulse Trapezoidal Pulse Pulse Basewidth (µs) T40HFL.. Series T = 125°C di/dt = 50A/µs 1E1 tp J 1E1 1E2 1E3 1E4 1E1 1E2 1E3 1
50 Hz4001000 200150025001000020000 5000
Peak Forward Current (A) Pulse Basewidth (µs) tp 1E4 T40HFL.. Series Sinusoidal Pulse T = 70°CC 1E1 1E2 1E3 1E4 1E1 1E2 1E3 1E Peak Forward Current (A) Pulse Basewidth (µs) tp 1E4 Sinusoidal Pulse T = 90°CC T40HFL.. Series 1E11 E 21 E 31 E 4
50 Hz4001000 200150025005000
Pulse Basewidth ( µs) Trapezoidal Pulse tp T40HFL.. 1E1 T = 90 °CC 1E11 E 21 E 31 E 4 Pulse Basewidth ( µs) T40HFL.. Series Trapezoidal Pulse T = 70 °C Ctp 1E1
T..HFL Series Bulletin I27107 rev. A 09/97 www.irf.com Fig. 40 - Frequency Characteristics Fig. 41 - Frequency Characteristics Fig. 42 - Maximum Forward Energy Power Loss Characteristics 1E0 1E1 1E2 1E3 1E4 1E1 1E2 1E3 1E4 0.01 0.02 0.04 0.1 0.2 0.4 1 2 4 10 20 joules per pulse Peak Forward Current (A) Pulse Basewidth (µs) tp 1E4 T70HFL.. Series Sinusoidal Pulse T = 125°CJ 1E1 1E2 1E3 1E 4 0.1 20 joules per pulse 104 0.4 0.2 0.040.02 0.01 T70HFL.. Series Trapezoidal pulse T = 125°C di/dt = 50A/µs Pulse Basewidth (µs) 1E1 tp J 1E1 1E2 1E3 1E4 1E1 1E2 1E3 1E4 Peak Forward Current (A) Pulse Basewidth (µs) tp 1E4 T 70HFL.. Series Sinusoidal Pulse T = 70°CC 1E1 1E2 1E3 1E4 1E1 1E2 1E3 1E4 Peak Forward Current (A) Pulse Basewidth (µs) tp 1E4 T70HFL.. Series Sinusoidal Pulse T = 90°CC 1E1 1E2 1E3 1E 4
50 Hz40 01000 200150025005000
Pulse Basewidth (µs) tp 1E1 T70HFL.. Series Trapezoidal Pulse T = 70°CC 1E1 1E2 1E3 1E 4 Pulse Basewidth (µs) tp 1E1 T70HFL.. S eries Trapezoidal Pulse T = 90°CC
T..HFL Series Bulletin I27107 rev. A 09/97 www.irf.com Fig. 43 - Frequency Characteristics Fig. 44 - Frequency Characteristics Fig. 45 - Maximum Forward Energy Power Loss Characteristics 1E0 1E1 1E2 1E3 1E4 1E1 1E2 1E3 1E 0.01 0.02 0.04 0.1 0.2 0.4 20 joules per pulse Peak Forward Current (A) Pulse Basewidth (µs) tp 1E4 T85HFL.. Series Sinusoidal Pulse T = 125 °CJ 1E1 1E2 1E3 1E 4 0.01 0. 02 0.04 0.1 0.2 0.4 1 4 10 20 jou les p er pu lse Pulse Basewidth (µs) tp 1E1 T85HFL.. S eries Trap ezoid al Pul se T = 125°C di/dt = 50A/µs J 1E1 1E2 1E3 1E4 1E1 1E2 1E3 1E Pulse Basewidth (µs) Peak Forward Current (A) tp 1E4 T85HF L.. Series Sinusoidal Pulse T = 70°CC 1E1 1E2 1E3 1E4 1E1 1E2 1E3 1E
50 Hz40010 00 200150025001000020000 5000
Peak Forward Current (A) Pulse Basewidth (µs) tp 1E4 T85HFL.. Series Sinusoid al P ulse T = 90°CC 1E1 1E2 1E3 1E 4 Pulse Basewidth (µs) tp 1E1 T85HFL.. Series Trapezoidal Pulse T = 70°CC 1E1 1E2 1E3 1E 4 Pulse Basewidth (µs) tp 1E1 T85HFL.. Series Trapezoidal Pulse T = 90°CC
T..HFL Series Bulletin I27107 rev. A 09/97 www.irf.com Fig. 46 - Forward Voltage Drop Characteristics Fig. 47 - Forward Voltage Drop Characteristics Fig. 48 - Forward Voltage Drop Characteristics Fig. 49 - Thermal Impedance ZthJC Characteristics 100 1000 T = 25°CJ Instantaneous Forward Current (A) Instantaneous Forward Voltage (V) T = 125°CJ T40HFL.. Series 100 1000 10000 0123456 7 T = 25°CJ Instantaneous Forward Current (A) Instantaneous Forward Voltage (V) T70HFL.. Series T = 125°CJ 100 1000 10000 0123456 7 T = 25°CJ Instantaneous Forward Current (A) Instantaneous Forward Voltage (V) T = 125°CJ T85HFL.. Series 0.001 0.01 0.1 Square Wave Pulse Duration (s) thJCTransient Thermal Impedance Z (K/W) Steady State Value: R = 0.85 K/W R = 0.53 K/W R = 0.46 K/W (DC Operation) T40HFL.. Series T70HFL.. Series T85HFL.. Series thJC thJC thJC