BYV26 TAYCHIPST | Alldatasheet

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repetitive peak forward current average forward current average forward current 200V-1400V 0.65A-1.05 E-mail: sales@taychipst.com Web Site: www.taychipst.com

FEATURES

MAXIMUM RATINGS AND ELECTRICAL CHARACTERISTICS

  • Glass passivated
  • High maximum operatingtemperature
  • Low leakage current
  • Excellent stability
  • Guaranteed avalanche energyabsorption capability
  • Available in ammo-pack. Fast soft-recovery controlled avalanche rectifiers BYV26 series SYMBOL PARAMETER CONDITIONS MIN. MAX. UNIT V RRM repetitive peak reverse voltage BYV26A − BYV26B − 400 V BYV26C − 600 V BYV26D − 800 V BYV26E − 1000 V BYV26F − 1200 V BYV26G − 1400 V I F(AV) tp =8 5°C; lead length = 10 mm; see Figs 2 and 3; averaged over any 20 ms period; see also Figs 10 and 11 BYV26A to E − 1.00 A BYV26F and G − 1.05 A I F(AV) amb =6 0°C; PCB mounting (see Fig.19); see Figs 4 and 5; averaged over any 20 ms period; see also Figs 10 and 11 BYV26A to E − 0.65 A BYV26F and G − 0.68 A I FRM tp =8 5°C; see Figs 6 and 7BYV26A to E − 10.0 A BYV26F and G − 9.6 A V R T T T 3.81 max MBC880 ka 28 min 28 min 4.57 max 0.81 max I FRM repetitive peak forward current T amb =6 0°C; see Figs 8 and 9 BYV26A to E − 6.0 A BYV26F and G − 6.4 A I FSM non-repetitive peak forward current t = 10 ms half sine wave; T j j max prior to surge; V R RRMmax − 30 A E RSM non-repetitive peak reverse avalanche energy I R = 400 mA; T j j max prior to surge; inductive load switched off − 10 mJ T stg storage temperature −65 +175 °C T j junction temperature see Figs 12 and 13 −65 +175 °C SYMBOL PARAMETER CONDITIONS MIN. MAX. UNIT SOD57

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ELECTRICAL CHARACTERISTICS

T j =2 5°C unless otherwise specified. SYMBOL PARAMETER CONDITIONS MIN. TYP. MAX. UNIT V F forward voltage I F = 1 A; T j j max see Figs 14 and 15BYV26A to E −− 1.3 V BYV26F and G −− 1.3 V V F forward voltage I F =1A ; see Figs 14 and 15BYV26A to E −− 2.50 V BYV26F and G −− 2.15 V V (BR)R reverse avalanche breakdown voltage I R = 0.1 mA BYV26A 300 −− V BYV26B 500 −− V BYV26C 700 −− V BYV26D 900 −− V BYV26E 1100 −− V BYV26F 1300 −− V BYV26G 1500 −− V I R reverse current V R RRMmax ; see Fig.16 −− 5 µA V R RRMmax T j = 165°C; see Fig.16 −− 150 µA t rr reverse recovery time when switched from I F = 0.5 A to I R =1A ; measured at I R = 0.25 A; see Fig.20 BYV26A to C −− 30 ns BYV26D and E −− 75 ns BYV26F and G −− 150 ns C d diode capacitance f = 1 MHz; V R =0V ; see Figs 17 and 18BYV26A to C − 45 − pF BYV26D and E − 40 − pF BYV26F and G − 35 − pF THERMAL CHARACTERISTICS Note 1. Device mounted on an epoxy-glass printed-circuit board, 1.5 mm thick; thickness of Cu-layer≥40 µm, see Fig.19. For more information please refer to the “General Part of associated Handbook” maximum slope of reverse recovery current when switched from I F = 1 A to V R ≥ 30 V and dI F /dt =−1A /µs; see Fig.21 BYV26A to C −− 7A / µs BYV26D and E −− 6A / µs BYV26F and G −− 5A / µs SYMBOL PARAMETER CONDITIONS VALUE UNIT R th j-tp thermal resistance from junction to tie-point lead length = 10 mm 46 K/W R th j-a thermal resistance from junction to ambient note 1 100 K/W SYMBOL PARAMETER CONDITIONS MIN. TYP. MAX. UNIT dI R 200V-1400V 0.65A-1.05 Fast soft-recovery controlled avalanche rectifiers BYV26 series

RATINGS AND CHARACTERISTIC CURVES BYV26 series Fig.4 Maximum average forward current as aFig.3 Maximum average forward current as a Fig.2 Maximum average forward current as aFig.1 Maximum average forward current as a 3 of 7E-mail: sales@taychipst.com Web Site: www.taychipst.com 200V-1400V 0.65A-1.05 Fast soft-recovery controlled avalanche rectifiers BYV26 series handbook, halfpage 0 200 0.5

100 T tp ( C)

o IF(AV) (A) 20 15 10 lead length (mm) function of tie-point temperature (including losses due to reverse leakage). function of tie-point temperature (including losses due to reverse leakage). handbook, halfpage 0 200 o IF(AV) (A) lead length 10 mm handbook, halfpage 0 200 0.5

100 T ( C)

o IF(AV) (A) amb function of ambient temperature (including losses due to reverse leakage). function of ambient temperature (including losses due to reverse leakage). handbook, halfpage 0 200 0.5 100 o IF(AV) (A)

Fig.6 Maximum repetitive peak forward current as a function of pulse time (square pulse) and duty factor. Fig.5 Maximum repetitive peak forward current as a function of pulse time (square pulse) and duty factor. 4 of 7E-mail: sales@taychipst.com Web Site: www.taychipst.com 11 0 1 0 t (ms)p IFRM (A) = 0.05δ 0.1 0.2 0.5 BYV26A to E. T tp =8 5°C; R th j-tp = 46 K/W. V RRMmax during 1−δ ; curves include derating for T j max at V RRM = 1000 V. BYV26F and G. T tp =8 5°C; R th j-tp = 46 K/W. V RRMmax during 1−δ ; curves include derating for T j max at V RRM = 1400 V. 11 0 1 0 t (ms)p IFRM (A) = 0.05δ 0.1 0.2 0.5 200V-1400V 0.65A-1.05 Fast soft-recovery controlled avalanche rectifiers BYV26 series

Fig.8 Maximum repetitive peak forward current as a function of pulse time (square pulse) and duty factor. Fig.7 Maximum repetitive peak forward current as a function of pulse time (square pulse) and duty factor. 5 of 7E-mail: sales@taychipst.com Web Site: www.taychipst.com 11 0 1 0 t (ms)p IFRM (A) = 0.05δ 0.1 0.2 0.5 BYV26A to E T amb =6 0°C; R th j-a = 100 K/W. V RRMmax during 1−δ ; curves include derating for T j max at V RRM = 1000 V. BYV26F and G T amb =6 0°C; R th j-a = 100 K/W. V RRMmax during 1−δ ; curves include derating for T j max at V RRM = 1400 V. 11 0 1 0 t (ms)p IFRM (A) = 0.05δ 0.1 0.2 0.5 200V-1400V 0.65A-1.05 Fast soft-recovery controlled avalanche rectifiers BYV26 series

Fig.12 Maximum permissible junction temperatureFig.11 Maximum permissible junction temperature Fig.10 Maximum steady state power dissipationFig.9 Maximum steady state power dissipation 6 of 7 E-mail: sales@taychipst.com Web Site: www.taychipst.com P (W)

0.5 IF(AV)(A)

2 1.57 1.42 a = 3 2.5 BYV26A to E a=I F(RMS) F(AV) ; V R RRMmax ;δ = 0.5. (forward plus leakage current losses, excluding switching losses) as a function of average forward current. BYV26F and G a=I F(RMS) F(AV) ; V R RRMmax ;δ = 0.5. (forward plus leakage current losses, excluding switching losses) as a function of average forward current. P (W) 1.42 a = 3 2.5 2 1.57 BYV26A to E Solid line = V R Dotted line = V RRM ;δ = 0.5. as a function of reverse voltage. handbook, halfpage 200 0 400 1200 800 100 V (V)R T j ( C) o ABCDE BYV26F and G Solid line = V R Dotted line = V RRM ;δ = 0.5. as a function of reverse voltage. handbook, halfpage 200 0 2000 1000 100 V (V)R T j ( C) o FG 200V-1400V 0.65A-1.05 Fast soft-recovery controlled avalanche rectifiers BYV26 series

Fig.16 Diode capacitance as a function of reverseFig.15 Reverse current as a function of junction Fig.14 Forward current as a function of forwardFig.13 Forward current as a function of forward 7 of 7E-mail: sales@taychipst.com Web Site: www.taychipst.com BYV26A to E Dotted line: T j = 175°C. Solid line: T j =2 5°C. voltage; maximum values. handbook, halfpage 024 8 (A) IF VF (V) BYV26F and G Dotted line: T j = 175°C. Solid line: T j =2 5°C. voltage; maximum values. handbook, halfpage 02 6 (A) IF VF (V) temperature; maximum values. handbook, halfpage 0 100 200 (µA) IR Tj (°C) V R RRMmax BYV26A to E f = 1 MHz; T j =2 5°C. voltage, typical values. handbook, halfpage 1 10 10 V (V)R C d (pF) BYV26A,B,C BYV26D,E 200V-1400V 0.65A-1.05 Fast soft-recovery controlled avalanche rectifiers BYV26 series