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  Datasheet File OCR Text:
 1
3
TO -24
2 1 - Anode 1 2 - Common Cathode Back of Case - Cathode 3 - Anode 2
1 2 3
7
APT30D100BCT
1000V
2x30A
ULTRAFAST SOFT RECOVERY RECTIFIER DIODES
PRODUCT APPLICATIONS
* Parallel Diode * * * * *
-Switchmode Power Supply -Inverters Free Wheeling Diode -Motor Controllers -Converters Snubber Diode Uninterruptible Power Supply (UPS) Induction Heating High Speed Rectifiers
PRODUCT FEATURES
* Ultrafast Recovery Times * Soft Recovery Characteristics * Popular TO-247 Package * Low Forward Voltage * High Blocking Voltage * Low Leakage Current
PRODUCT BENEFITS
* Low Losses * Low Noise Switching * Cooler Operation * Higher Reliability Systems * Increased System Power
Density
MAXIMUM RATINGS
Symbol VR VRRM VRWM IF(AV) IF(RMS) IFSM TJ,TSTG TL Characteristic / Test Conditions Maximum D.C. Reverse Voltage Maximum Peak Repetitive Reverse Voltage Maximum Working Peak Reverse Voltage
All Ratings Are Per Leg: TC = 25C unless otherwise specified.
APT30D100BCT UNIT
1000
Volts
Maximum Average Forward Current (TC = 85C, Duty Cycle = 0.5) RMS Forward Current Non-Repetitive Forward Surge Current (TJ = 45C, 8.3ms) Operating and StorageTemperature Range Lead Temperature: 0.063" from Case for 10 Sec.
30 70 210 -55 to 150 300
C Amps
STATIC ELECTRICAL CHARACTERISTICS
Symbol Characteristic / Test Conditions IF = 30A VF Maximum Forward Voltage IF = 60A IF = 30A, TJ = 150C IRM CT LS Maximum Reverse Leakage Current VR = VR Rated VR = VR Rated, TJ = 125C Junction Capacitance, VR = 200V Series Inductance (Lead to Lead 5mm from Base)
APT Website - http://www.advancedpower.com
Bend, Oregon 97702-1035 F-33700 Merignac - France Phone: (541) 382-8028 Phone: (33) 5 57 92 15 15 FAX: (541) 388-0364 FAX: (33) 5 56 47 97 61
MIN
TYP
MAX
UNIT
2.3 2.1 1.9 250 500 30 10
A pF nH
053-0014 Rev -
Volts
USA
405 S.W. Columbia Street
EUROPE
Avenue J.F. Kennedy Bat B4 Parc Cadera Nord
DYNAMIC CHARACTERISTICS
Symbol trr1 trr2 trr3 tfr1 tfr2 IRRM1 IRRM2 Qrr1 Qrr2 Vfr1 Vfr2 diM/dt IF = 30A, diF /dt = -240A/s, VR =540V (See Figure 10) Characteristic Reverse Recovery Time, IF = 1.0A, diF /dt = -15A/s, VR = 30V, TJ = 25C Reverse Recovery Time IF = 30A, diF /dt = -240A/s, VR = 540V Forward Recovery Time IF = 30A, diF /dt = 240A/s, VR = 540V Reverse Recovery Current IF = 30A, diF /dt = -240A/s, VR = 540V Recovery Charge IF = 30A, diF /dt = -240A/s, VR = 540V Forward Recovery Voltage IF = 30A, diF /dt = 240A/s, VR = 540V Rate of Fall of Recovery Current TJ = 25C TJ = 100C TJ = 25C TJ = 100C TJ = 25C TJ = 100C TJ = 25C TJ = 100C TJ = 25C TJ = 100C TJ = 25C TJ = 100C MIN TYP
APT30D100BCT
MAX UNIT
60 60 120 165 165 6 10 180
75
ns
13
Amps
18
nC
600 8.4
Volts
8.4 450
A/s
250
THERMAL AND MECHANICAL CHARACTERISTICS
Symbol RJC RJA WT Characteristic / Test Conditions Junction-to-Case Thermal Resistance Junction-to-Ambient Thermal Resistance MIN TYP MAX UNIT C/W oz gm
0.90 40 0.22
Package Weight
6.1 10
Maximum Mounting Torque (Screw Type = 6-32 or 3mm Machine)
lb*in N*m
Torque
1.1
1.0 0.5 D=0.5
, THERMAL IMPEDANCE (C/W)
0.2 0.1 0.05 0.05 0.02 0.01 0.01 0.005
t2 DUTY FACTOR D = t1 / t2
0.1
NOTE:
JC
PDM
SINGLE PULSE
t1
Z
053-0014 Rev -
PEAK TJ =PDM x Z JC + TC
0.001 10-5
10-3 10-2 10-1 1.0 RECTANGULAR PULSE DURATION (SECONDS) FIGURE 1, MAXIMUM EFFECTIVE TRANSIENT THERMAL IMPEDANCE, JUNCTION-TO-CASE vs PULSE DURATION
10-4
10
APT30D100BCT
100 Qrr, REVERSE RECOVERY CHARGE (nano-COULOMBS) 3000
TJ = 100C VR = 540V
IF, FORWARD CURRENT (AMPERES)
80 TJ = 25C 60 TJ = 150C TJ = 100C 40 TJ = -55C
2500 2000 1500 30A 1000 500 60A
20
15A
0 1 2 3 4 VF, ANODE-TO-CATHODE VOLTAGE (VOLTS) Figure 2, Forward Voltage Drop vs Forward Current 50 IRRM, REVERSE RECOVERY CURRENT (AMPERES)
TJ = 100C VR = 540V
0
0 10 50 100 500 1000 diF /dt, CURRENT SLEW RATE (AMPERES/SEC) Figure 3, Reverse Recovery Charge vs Current Slew Rate 2.0
60A Kf, DYNAMIC PARAMETERS (NORMALIZED) 1.6 Qrr 1.2 IRRM trr
40 30A 30 15A 20
0.8
trr
10
0.4
Qrr
0 0 200 400 600 800 1000 diF /dt, CURRENT SLEW RATE (AMPERES/SEC) Figure 4, Reverse Recovery Current vs Current Slew Rate 300
TJ = 100C VR = 540V
-25 0 25 50 75 100 125 150 TJ, JUNCTION TEMPERATURE (C) Figure 5, Dynamic Parameters vs Junction Temperature 1200 tfr, FORWARD RECOVERY TIME (nano-SECONDS)
TJ = 100C VR = 540V IF = 30A
0.0
-50
30 Vfr, FORWARD RECOVERY VOLTAGE (VOLTS)
trr, REVERSE RECOVERY TIME (nano-SECONDS)
240 60A 180 30A 15A 120
1000 800 600 400 200
25 20 15 10 5
Vfr
60
tfr
0 0 200 400 600 800 1000 diF /dt, CURRENT SLEW RATE (AMPERES/SEC) Figure 6, Reverse Recovery Time vs Current Slew Rate 500
0 0 0 200 400 600 800 1000 diF /dt, CURRENT SLEW RATE (AMPERES/SEC) Figure 7, Forward Recovery Voltage/Time vs Current Slew Rate
CJ, JUNCTION CAPACITANCE (pico-FARADS)
100
50
10 0.01
0.05
0.1
0.5 1 5 VR, REVERSE VOLTAGE (VOLTS)
10
50
100
200
Figure 8, Junction Capacitance vs Reverse Voltage
053-0014 Rev -
Vr
APT30D100BCT
D.U.T. 30H
trr/Qrr Waveform
+15v diF /dt Adjust 0v -15v
PEARSON 411 CURRENT TRANSFORMER
Figure 9, Diode Reverse Recovery Test Circuit and Waveforms
1 2 3 4
IF - Forward Conduction Current diF /dt - Current Slew Rate, Rate of Forward Current Change Through Zero Crossing. Zero IRRM - Peak Reverse Recovery Current. trr - Reverse Recovery Time Measured from Point of IF 3 Current Falling Through Zero to a Tangent Line { 6 diM/dt} Extrapolated Through Zero Defined by 0.75 and 0.50 IRRM. 5 0.5 IRRM 0.75 IRRM 2 Qrr = 1/2 (trr . IRRM) 1 4 6
5 6
Qrr - Area Under the Curve Defined by IRRM and trr. diM/dt - Maximum Rate of Current Change During the Trailing Portion of trr.
Figure 10, Diode Reverse Recovery Waveform and Definitions
TO-247AD Package Outline
4.69 (.185) 5.31 (.209) 1.49 (.059) 2.49 (.098) 6.15 (.242) BSC 20.80 (.819) 21.46 (.845)
15.49 (.610) 16.26 (.640) 5.38 (.212) 6.20 (.244)
Common Cathode
3.55 (.140) 3.81 (.150)
4.50 (.177) Max. 0.40 (.016) 0.79 (.031)
2.87 (.113) 3.12 (.123) 1.65 (.065) 2.13 (.084)
19.81 (.780) 20.32 (.800) 1.01 (.040) 1.40 (.055)
Anode 1 Common Cathode Anode 2
2.21 (.087) 2.59 (.102)
053-0014 Rev -
5.45 (.215) BSC 2-Plcs.
Dimensions in Millimeters and (Inches)
APT Reserves the right to change, without notice, the specifications and information contained herein.


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