• Part: BYT30PI-400
  • Description: FAST RECOVERY RECTIFIER DIODES
  • Category: Diode
  • Manufacturer: STMicroelectronics
  • Size: 95.25 KB
Download BYT30PI-400 Datasheet PDF
STMicroelectronics
BYT30PI-400
BYT30PI-400 is FAST RECOVERY RECTIFIER DIODES manufactured by STMicroelectronics.
® BYT 30PI- 400 FAST RECOVERY RECTIFIER DIODES VERY LOW REVERSE RECOVERY TIME VERY LOW SWITCHING LOSSES LOW NOISE TURN-OFF SWITCHING INSULATED: Capacitance 15p F Insulating voltage 2500 VRMS SUITABLE APPLICATIONS FREE WHEELING DIODE IN CONVERTERS AND MOTOR CONTROL CIRCUITS RECTIFIER IN S.M.P.S. ABSOLUTE RATINGS (limiting values) Symbol IFRM IF (RMS) IF (AV) IFSM P Tstg Tj Parameter Repetive Peak Forward Current RMS Forward Current Average Forward Current Surge non Repetitive Forward Current Power Dissipation Storage and Junction Temperature Range Tc = 60°C δ = 0.5 tp = 10ms Sinusoidal Tc = 60°C tp ≤ 10µs Isolated DOP3I (Plastic) Value 500 50 30 350 50 - 40 to + 150 - 40 to + 150 Unit A A A A W °C Symbol VRRM VRSM Parameter Repetitive Peak Reverse Voltage Non Repetitive Peak Reverse Voltage Value 400 440 Unit V V THERMAL RESISTANCE Symbol Rth (j - c) Junction-case Parameter Value 1.8 Unit °C/W October 1999 Ed : 1A 1/5 BYT 30PI-400 ELECTRICAL CHARACTERISTICS STATIC CHARACTERISTICS Synbol IR Tj = 25°C Tj = 100°C VF Tj = 25°C Tj = 100°C IF = 30A Test Conditions VR = VRRM Min. Typ. Max. 35 6 1.5 1.4 Unit µA m A V RECOVERY CHARACTERISTICS Symbol trr Tj = 25°C IF = 1A IF = 0.5A Test Conditions di F/dt = - 15A/µs IR = 1A VR = 30V Irr = 0.25A Min. Typ. Max. 100 50 Unit ns TURN-OFF SWITCHING CHARACTERISTICS (Without Series Inductance) Symbol t IRM di F/dt = - 120A/µs di F/dt = - 240A/µs IRM di F/dt = -120A/µs di F/dt = - 240A/µs 12 Test Conditions VCC = 200 V IF = 30A Lp ≤ 0.05µH Tj = 100°C See figure 11 Min. Typ. Max. 75 50 9 A Unit ns TURN-OFF OVERVOLTAGE COEFFICIENT (With Series Inductance) Symbol C= VRP VCC Tj = 100°C di F/dt = - 30A/µs Test Conditions VCC = 60V Lp = 1µH IF = IF (AV) See note See figure 12 Min. Typ. 3.3 Max. Unit To evaluate the conduction losses use the following equations: VF = 1.1 + 0.0095 IF P = 1.1 x IF(AV) + 0.0095 IF2(RMS) Figure 1. Low frequency power losses versus average current Figure 2. Peak current versus form factor 2/5 BYT...