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PD - 9.1064
IRGP440UD2
INSULATED GATE BIPOLAR TRANSISTOR WITH ULTRAFAST SOFT RECOVERY DIODE
Features
* Switching-loss rating includes all "tail" losses TM * HEXFRED soft ultrafast diodes * Optimized for high operating frequency (over 5kHz) See Fig. 1 for Current vs. Frequency curve
C
UltraFast CoPack IGBT
VCES = 500V VCE(sat) 3.0V
G
@VGE = 15V, IC = 22A
E
n-channel
Description
Co-packaged IGBTs are a natural extension of International Rectifier's well known IGBT line. They provide the convenience of an IGBT and an ultrafast recovery diode in one package, resulting in substantial benefits to a host of high-voltage, high-current, motor control, UPS and power supply applications.
TO-247AC
Absolute Maximum Ratings
Parameter
VCES IC @ T C = 25C IC @ T C = 100C ICM ILM IF @ T C = 100C IFM VGE PD @ T C = 25C PD @ T C = 100C TJ TSTG Collector-to-Emitter Voltage Continuous Collector Current Continuous Collector Current Pulsed Collector Current Clamped Inductive Load Current Diode Continuous Forward Current Diode Maximum Forward Current Gate-to-Emitter Voltage Maximum Power Dissipation Maximum Power Dissipation Operating Junction and Storage Temperature Range Soldering Temperature, for 10 sec. Mounting Torque, 6-32 or M3 Screw.
Max.
500 40 22 80 80 15 80 20 160 65 -55 to +150 300 (0.063 in. (1.6mm) from case) 10 lbf*in (1.1 N*m)
Units
V
A
V W
C
Thermal Resistance
Parameter
RJC RJC RCS RJA Wt Junction-to-Case - IGBT Junction-to-Case - Diode Case-to-Sink, flat, greased surface Junction-to-Ambient, typical socket mount Weight
Min.
-- -- -- -- --
Typ.
-- -- 0.24 -- 6 (0.21)
Max.
0.77 1.7 -- 40 --
Units
C/W
g (oz)
Revision 1
C-641
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IRGP440UD2
Electrical Characteristics @ T = 25C (unless otherwise specified) J
V(BR)CES
V(BR)CES/TJ
VCE(on)
Parameter Collector-to-Emitter Breakdown Voltage Temp. Coeff. of Breakdown Voltage Collector-to-Emitter Saturation Voltage
VGE(th) VGE(th)/TJ gfe ICES VFM IGES
Gate Threshold Voltage Temp. Coeff. of Threshold Voltage Forward Transconductance Zero Gate Voltage Collector Current Diode Forward Voltage Drop Gate-to-Emitter Leakage Current
Min. Typ. Max. Units Conditions 500 -- -- V VGE = 0V, I C = 250A -- 0.35 -- V/C VGE = 0V, IC = 1.0mA -- 2.4 3.0 IC = 22A V GE = 15V -- 2.8 -- V IC = 40A See Fig. 2, 5 -- 2.4 -- IC = 22A, T J = 150C 3.0 -- 5.5 VCE = VGE, IC = 250A -- -11 -- mV/C VCE = VGE, IC = 250A 6.6 13 -- S VCE = 100V, I C = 22A -- -- 250 A VGE = 0V, V CE = 500V -- -- 3500 VGE = 0V, V CE = 500V, T J = 150C -- 1.3 1.7 V IC = 15A See Fig. 13 -- 1.2 1.6 IC = 15A, T J = 150C -- -- 100 nA VGE = 20V
Switching Characteristics @ T = 25C (unless otherwise specified) J
Qg Qge Qgc td(on) tr td(off) tf Eon Eoff Ets td(on) tr td(off) tf Ets LE Cies Coes Cres trr Irr Qrr di(rec)M/dt Parameter Total Gate Charge (turn-on) Gate - Emitter Charge (turn-on) Gate - Collector Charge (turn-on) Turn-On Delay Time Rise Time Turn-Off Delay Time Fall Time Turn-On Switching Loss Turn-Off Switching Loss Total Switching Loss Turn-On Delay Time Rise Time Turn-Off Delay Time Fall Time Total Switching Loss Internal Emitter Inductance Input Capacitance Output Capacitance Reverse Transfer Capacitance Diode Reverse Recovery Time Diode Peak Reverse Recovery Current Diode Reverse Recovery Charge Diode Peak Rate of Fall of Recovery During t b Min. -- -- -- -- -- -- -- -- -- -- -- -- -- -- -- -- -- -- -- -- -- -- -- -- -- -- -- Typ. 55 11 19 80 68 160 130 0.81 0.82 1.6 78 64 290 250 2.6 13 1400 250 42 42 74 4.0 6.5 80 220 188 160 Max. Units Conditions 83 IC = 22A 17 nC VCC = 400V 29 See Fig. 8 -- TJ = 25C -- ns IC = 22A, V CC = 400V 240 VGE = 15V, R G = 10 220 Energy losses include "tail" and -- diode reverse recovery. -- mJ See Fig. 9, 10, 11, 18 2.4 -- TJ = 150C, See Fig. 9, 10, 11, 18 -- ns IC = 22A, V CC = 400V -- VGE = 15V, R G = 10 -- Energy losses include "tail" and -- mJ diode reverse recovery. -- nH Measured 5mm from package -- VGE = 0V -- pF VCC = 30V See Fig. 7 -- = 1.0MHz 60 ns TJ = 25C See Fig. 120 TJ = 125C 14 I F = 15A 6.0 A TJ = 25C See Fig. 10 TJ = 125C 15 V R = 200V 180 nC TJ = 25C See Fig. 600 TJ = 125C 16 di/dt = 200A/s -- A/s TJ = 25C See Fig. -- TJ = 125C 17 Pulse width 5.0s, single shot.
Notes: Repetitive rating; V GE=20V, pulse width limited by max. junction temperature. ( See fig. 20 )
VCC=80%(V CES), VGE=20V, L=10H, R G= 10, ( See fig. 19 ) Pulse width 80s; duty factor 0.1%.
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IRGP440UD2
25
Du ty c ycle: 5 0 % TJ = 1 2 5 C T s in k = 9 0 C Ga te d rive a s sp e cifie d Tu rn-o n lo sse s in clu d e effe cts o f re ve rse reco ve ry Po we r D is sipation = 3 5W
20
Load Current (A)
15
6 0 % o f ra te d v o lta g e
10
5
0 0.1 1 10
A
100
f, Frequency (kHz)
Fig. 1 - Typical Load Current vs. Frequency
(Load Current = I RMS of fundamental)
1000
1000
100
IC , C o llector-to-E m itte r C urren t (A )
I C , C ollector-to-E mitter C urrent (A )
TJ = 2 5C TJ = 1 50 C
100
T J = 15 0C T J = 2 5C
10
10
1 1
V G E = 15 V 20 s P UL S E W ID TH
10
1 5 10
V C C = 1 00 V 5 s P U L S E W ID TH
15 20
V C E , C o llector-to-Em itter V oltage (V)
V G E , G ate -to-E m itter V olta ge (V )
Fig. 2 - Typical Output Characteristics
Fig. 3 - Typical Transfer Characteristics
C-643
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IRGP440UD2
40
V G E = 15 V
3.5
V G E = 15 V 80 s P U L S E W ID TH I C = 4 4A
30
V C E , C ollector-to-E mitter V oltage (V )
Maxim um D C Collector C urrent (A )
3.0
20
2.5
I C = 2 2A
10
2.0
I C = 1 1A
0 25 50 75 100 125 150
1.5 -60 -40 -20 0 20 40 60 80 100 120 140 160
T C , C ase Tem perature (C )
TC , C ase Tem perature (C )
Fig. 4 - Maximum Collector Current vs. Case Temperature
Fig. 5 - Collector-to-Emitter Voltage vs. Case Temperature
1
T herm al Response (Z thJC )
D = 0.50
0.2 0
0.1
0.10
PD M
0.0 5
t
0 .0 2 0 .0 1 S ING L E PU LS E (T HE R MA L R ES PO N S E)
1
t
2
N o te s : 1 . D u ty fa c to r D = t
1
/t
2
0.01 0.00001
2 . P e a k T J = P D M x Z thJ C + T C
0.0001
0.001
0.01
0.1
1
10
t 1 , R ectangular Pulse D uration (sec)
Fig. 6 - Maximum IGBT Effective Transient Thermal Impedance, Junction-to-Case
C-644
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IRGP440UD2
250 0
200 0
C, C apacitance (pF)
Cies
150 0
Coes
100 0
V G E , G ate-to-E m itter V oltag e (V )
V GE = 0V, f = 1MHz C ies = C ge + C gc , Cce SHORTED C res = C gc C oes = C ce + C gc
20
V C E = 40 0V I C = 22 A
16
12
8
500
Cres
4
0
0 1 10 1 00 0 20 40 60
V C E , C o llector-to-Em itter V oltage (V)
Q G , T o tal G a te C h a rg e (n C )
Fig. 7 - Typical Capacitance vs. Collector-to-Emitter Voltage
Fig. 8 - Typical Gate Charge vs. Gate-to-Emitter Voltage
1.78 1.76
Total Switching Losses (mJ)
1.74 1.72 1.70 1.68 1.66 1.64 1.62 1.60 1.58 1.56 0
Total Switching Losses (mJ)
VCC VGE TC IC
= 400V = 15V = 25C = 22A
10
I C = 44A
I C = 22A
1
I C = 11A
A
10 20 30 40 50 60
0.1
R G = 10 V GE = 15V V CC = 400V
-60 -40 -20 0 20 40 60 80
A
100 120 140 160
R G , Gate Resistance ()
TC , Case Temperature (C)
Fig. 9 - Typical Switching Losses vs. Gate Resistance
Fig. 10 - Typical Switching Losses vs. Case Temperature
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IRGP440UD2
8.0
6.0
I C , C ollector-to-E m itter Current (A )
Total Switching Losses (mJ)
RG TC V CC V GE
= 10 = 150C = 400V = 15V
1 000
VG E E 2 0V G= T J = 125 C
100
4.0
S A FE O P E R A TING A R E A
10
2.0
0.0 0 10 20 30 40
A
50
1 1 10 1 00 1000
I C , Collector-to-Emitter Current (A)
V C E , C o llector-to-Em itter V oltage (V )
Fig. 11 - Typical Switching Losses vs. Collector-to-Emitter Current
100
Fig. 12 - Turn-Off SOA
Instantaneous Forward Current - I F (A)
10
TJ = 150C TJ = 125C TJ = 25C
1 0.8
1.2
1.6
2.0
2.4
Forward Voltage Drop - V FM (V)
Fig. 13 - Maximum Forward Voltage Drop vs. Instantaneous Forward Current
C-646
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IRGP440UD2
100 100
VR = 200V TJ = 125C TJ = 25C
80
VR = 200V TJ = 125C TJ = 25C
I F = 30A I F = 30A
60
I IRRM - (A)
t rr - (ns)
10
IF = 15A
I F = 15A
40
I F = 5.0A I F = 5.0A
20 100
di f /dt - (A/s)
1000
1 100
di f /dt - (A/s)
1000
Fig. 14 - Typical Reverse Recovery vs. dif/dt
Fig. 15 - Typical Recovery Current vs. dif/dt
800
1000
VR = 200V TJ = 125C TJ = 25C
600
VR = 200V TJ = 125C TJ = 25C
IF = 30A
di(rec)M/dt - (A/s)
Q RR - (nC)
400
I F = 5.0A I F = 15A I F = 30A
I F = 15A IF = 5.0A
200
0 100
di f /dt - (A/s)
1000
100 100
di f /dt - (A/s)
1000
Fig. 16 - Typical Stored Charge vs. dif/dt
Fig. 17 - Typical di(rec)M/dt vs. dif/dt
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IRGP440UD2
90% Vge +Vge Same type device as D.U.T. Vce
80% of Vce
430F D.U.T.
Ic
10% Vce Ic
90% Ic 5% Ic
td(off)
tf
Eoff =
t1+5S Vce ic dt t1
Fig. 18a - Test Circuit for Measurement of
ILM, Eon, Eoff(diode) , trr, Qrr, Irr, td(on), tr, td(off), tf
t1 t2
Fig. 18b - Test Waveforms for Circuit of Fig. 18a, Defining
Eoff, td(off), tf
GATE VOLTAGE D.U.T. 10% +Vg +Vg tx 10% Vcc Vce Vcc 10% Ic 90% Ic DUT VOLTAGE AND CURRENT Ipk Ic DIODE RECOVERY WAVEFORMS td(on) tr 5% Vce t2 Eon = Vce ie dt t1 t2 DIODE REVERSE RECOVERY ENERGY t3 10% Irr Vcc Vpk Irr trr Ic
Qrr =
trr id dt tx
t4 Erec = Vd id dt t3
t1
t4
Fig. 18c - Test Waveforms for Circuit of Fig. 18a,
Defining E on, td(on), tr
Fig. 18d - Test Waveforms for Circuit of Fig. 18a,
Defining E rec, trr, Qrr, Irr
Refer to Section D for the following: Appendix B: Section D - page D-4 Fig. 18e - Clamped Inductive Load Test Circuit Fig. 19 - Pulsed Collector Current Test Circuit Fig. 20 - Switching Loss Test Circuit Package Outline 3 - JEDEC Outline TO-247AC
C-648
Section D - page D-13
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