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SFR1020CG-TA3-T Datasheet(Fiches technique) 2 Page - Unisonic Technologies

Numéro de pièce SFR1020CG-TA3-T
Description  High Surge Current Capability
Télécharger  4 Pages
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Fabricant  UTC [Unisonic Technologies]
Site Internet  http://www.utc-ic.com
Logo UTC - Unisonic Technologies

SFR1020CG-TA3-T Datasheet(HTML) 2 Page - Unisonic Technologies

  SFR1020CG-TA3-T Datenblatt HTML 1Page - Unisonic Technologies SFR1020CG-TA3-T Datasheet HTML 2Page - Unisonic Technologies SFR1020CG-TA3-T Datenblatt HTML 3Page - Unisonic Technologies SFR1020CG-TA3-T Datenblatt HTML 4Page - Unisonic Technologies  
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SFR1020C
DIODE
UNISONICTECHNOLOGIESCO.,LTD
2 of 4
www.unisonic.com.tw
QW-R601-004.C
ABSOLUTE MAXIMUM RATING (limiting values, per leg)
PARAMETER
SYMBOL
RATINGS
UNIT
Repetitive Peak Reverse Voltage
VRRM
200
V
RMS Forward Current
IF(RMS)
10
A
Average Forward Current δ= 0.5
TC=125°C (Per leg)
IF(AV)
5
A
Surge Non Repetitive Forward Current, tp=10ms Sinusoidal
IFSM
50
A
Storage temperature range
Tstg
-60 ~ +150
°C
Note 1. Absolute maximum ratings are those values beyond which the device could be permanently damaged.
Absolute maximum ratings are stress ratings only and functional device operation is not implied.
2. The device is guaranteed to meet performance specification within 0°C~70°C operating temperature range
and assured by design from –20°C~85°C.
ELECTRICAL CHARACTERISTICS (per leg)
PARAMETER
SYMBOL
TEST CONDITIONS
MIN
TYP
MAX
UNIT
TJ = 25°C
50
μA
Reverse Leakage Current
(Note1)
IR
TJ = 100°C
VR = VRRM
0.6
mA
TJ = 25°C
IF = 5 A
0.9
V
Forward Voltage Drop
(Note2)
VF
TJ = 125°C
IF = 5 A
0.69
0.74
V
Note1. tp = 5 ms, δ< 2 %
2. tp = 380 μs, δ< 2 %
To evaluate the conduction losses use the following equation: P = 0.78× IF(AV) + 0.042 × IF
2(RMS)
RECOVERY CHARACTERISTICS
PARAMETER
SYMBOL
TEST CONDITIONS
MIN
TYP
MAX
UNIT
Reverse Recovery Time
trr
TJ= 25°C, IF = 0.5A, VF = 30V, IR = 1A
40
ns
Formard Recovery Time
tfr
TJ = 25°C, IF= 1A, dIF/dt = 50 A/μs
VR =30V
33
ns
VFP
TJ= 25°C, IF= 1A, dIF/dt = 50 A/μs
3
V
Note: When diodes 1 and 2 are used simultaneously :
∆TJ (diode 1) = P(diode 1)×Rth(j-c)( per leg) + P(diode 2) × Rth(c)


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