BYW97G
BYW97G is Fast soft-recovery controlled avalanche rectifiers manufactured by NXP Semiconductors.
FEATURES
- Glass passivated
- High maximum operating temperature
- Low leakage current
- Excellent stability
- Guaranteed avalanche energy absorption capability
- Available in ammo-pack
- Also available with preformed leads for easy insertion. DESCRIPTION
BYW97 series
Rugged glass package, using a high temperature alloyed construction. This package is hermetically sealed and fatigue free as coefficients of expansion of all used parts are matched.
2/3 page k (Datasheet)
Fig.1 Simplified outline (SOD64) and symbol.
LIMITING VALUES In accordance with the Absolute Maximum Rating System (IEC 134). SYMBOL VRRM BYW97F BYW97G VR continuous reverse voltage BYW97F BYW97G IF(AV) average forward current PARAMETER repetitive peak reverse voltage
, a
MAM104
CONDITIONS
MIN.
- -
- -
MAX. 1200 1400 1200 1400 3.3 V V V V A
UNIT
Ttp = 50 °C; lead length = 10 mm see Fig.2; averaged over any 20 ms period; see also Fig.6 Tamb = 55 °C; PCB mounting (see Fig.11); see Fig.3; averaged over any 20 ms period; see also Fig.6 Ttp = 50 °C; see Fig.4 Tamb = 55 °C; see Fig.5 t = 10 ms half sine wave; Tj = Tj max prior to surge; VR = VRRMmax L = 120 m H; Tj = Tj max prior to surge; inductive load switched off see Fig.7
- IF(AV) average forward current
- 1.3
IFRM IFSM repetitive peak forward current non-repetitive peak forward current
- -
- 33 13 60
ERSM Tstg Tj non-repetitive peak reverse avalanche energy storage temperature junction temperature
- - 65
- 65
10 +175 +175 m J °C °C
1996 Sep 18
Philips Semiconductors
Product specification
Fast soft-recovery controlled avalanche rectifiers
ELECTRICAL CHARACTERISTICS Tj = 25 °C unless otherwise specified. SYMBOL VF V(BR)R PARAMETER forward voltage reverse avalanche breakdown voltage BYW97F BYW97G IR reverse current VR = VRRMmax; see Fig.9 VR = VRRMmax; Tj = 165 °C; see Fig.9 trr reverse recovery time when switched from IF = 0.5 A to IR = 1 A; measured at IR = 0.25 A; see Fig.12 f = 1 MHz; VR = 0 V; see Fig.10 when...