5SNA 2400E HiPak IGBT Module

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1 Data Sheet, Doc. No. 5SYA SNA 24E1735 HiPak IGBT Module VCE = 17 V IC = 24 A Ultra low-loss, rugged SPT+ chip-set Smooth switching SPT+ chip-set for good EMC AlSiC base-plate for high power cycling capability AlN substrate for low thermal resistance Improved high reliability package Maximum rated values 1) Parameter Symbol Conditions min max Unit Collector-emitter voltage VCES VGE = V, Tvj 25 C 17 V DC collector current IC TC = 15 C, Tvj = 15 C 24 A Peak collector current ICM tp = 1 ms 48 A Gate-emitter voltage VGES -2 2 V Total power dissipation Ptot TC = 25 C, Tvj = 15 C 178 W DC forward current IF 24 A Peak forward current IFRM tp = 1 ms 48 A Surge current IFSM VR = V, Tvj = 15 C, tp = 1 ms, half-sinewave 18 A IGBT short circuit SOA tpsc VCC = 12 V, VCEM CHIP 17 V VGE 15 V, Tvj 15 C 1 µs Isolation voltage Visol 1 min, f = 5 Hz 4 V Junction temperature Tvj 175 C Junction operating temperature Tvj(op) C Case temperature TC C Storage temperature Tstg C Mounting torques 2) 1) Maximum rated values indicate limits beyond which damage to the device may occur per IEC ) For detailed mounting instructions refer to ABB Document No. 5SYA 239 Ms Base-heatsink, M6 screws 4 6 Mt1 Main terminals, M8 screws 8 1 Mt2 Auxiliary terminals, M4 screws 2 3 Nm

2 IGBT characteristic values 3) Parameter Symbol Conditions min typ max Unit Collector (-emitter) breakdown voltage Collector-emitter 4) saturation voltage V(BR)CES VGE = V, IC = 1 ma, Tvj = 25 C 17 V VCE sat IC = 24 A, VGE = 15 V Collector cut-off current ICES VCE = 17 V, VGE = V Tvj = 25 C V Tvj = 125 C V Tvj = 15 C 2.45 V Tvj = 25 C.4 1 ma Tvj = 125 C 3 6 ma Tvj = 15 C 17 ma Gate leakage current IGES VCE = V, VGE = 2 V, Tvj = 125 C -5 5 na Gate-emitter threshold voltage VGE(TO) IC = 24 ma, VCE = VGE, Tvj = 25 C V Gate charge Qge IC = 24 A, VCE = 9 V, VGE = -15 V..15 V 21 µc Input capacitance Cies 239 nf Output capacitance Coes VCE = 25 V, VGE = V, f = 1 MHz, Tvj = 25 C 2.9 nf Reverse transfer capacitance Cres 9.24 nf Turn-on delay time Rise time Turn-off delay time Fall time Turn-on switching energy Turn-off switching energy Short circuit current td(on) tr td(off) tf Eon Eoff 3) Characteristic values according to IEC ) Collector-emitter saturation voltage is given at chip level ISC VCC = 9 V, IC = 24 A, RG =.6, CGE = nf, VGE = 15 V, L = 5 nh, inductive load VCC = 9 V, IC = 24 A, RG =.6, CGE = nf, VGE = 15 V, L = 5 nh, inductive load VCC = 9 V, IC = 24 A, RG =.6, CGE = nf, VGE = ±15 V, L = 5 nh, inductive load VCC = 9 V, IC = 24 A, RG =.6, CGE = nf, VGE = ±15 V, L = 5 nh, inductive load tpsc 1 µs, VGE = 15 V, VCC = 12 V, VCEM CHIP 17 V Tvj = 25 C 45 ns Tvj = 125 C 48 ns Tvj = 15 C 49 ns Tvj = 25 C 23 ns Tvj = 125 C 24 ns Tvj = 15 C 25 ns Tvj = 25 C 1165 ns Tvj = 125 C 128 ns Tvj = 15 C 131 ns Tvj = 25 C 22 ns Tvj = 125 C 25 ns Tvj = 15 C 26 ns Tvj = 25 C 45 mj Tvj = 125 C 68 mj Tvj = 15 C 75 mj Tvj = 25 C 75 mj Tvj = 125 C 98 mj Tvj = 15 C 16 mj Tvj = 15 C 1 A 2 5SNA 24E1735 Doc. No. 5SYA

3 Diode characteristic values 5) Parameter Symbol Conditions min typ max Unit Tvj = 25 C V Forward voltage 6) VF IF = 24 A Tvj = 125 C V Tvj = 15 C 1.6 V Tvj = 25 C 192 A Reverse recovery current Irr Tvj = 125 C 218 A Tvj = 15 C 235 A Tvj = 25 C 68 µc Recovered charge Reverse recovery time Qrr trr VCC = 9 V, IF = 24 A, VGE = 15 V, RG =.6, CGE = nf, di/dt = 11. ka/µs L = 5 nh, inductive load Tvj = 125 C 122 µc Tvj = 15 C 144 µc Tvj = 25 C 62 ns Tvj = 125 C 99 ns Tvj = 15 C 16 ns Tvj = 25 C 56 mj Reverse recovery energy Erec Tvj = 125 C 87 mj Tvj = 15 C 13 mj 5) Characteristic values according to IEC ) Forward voltage is given at chip level Package properties 7) Parameter Symbol Conditions min typ max Unit IGBT thermal resistance junction to case Diode thermal resistance junction to case IGBT thermal resistance 2) case to heatsink Diode thermal resistance 2) case to heatsink Rth(j-c)IGBT.7 K/W Rth(j-c)DIODE.12 K/W Rth(c-s)IGBT IGBT per switch, grease = 1W/m x K.9 K/W Rth(c-s)DIODE Diode per switch, grease = 1W/m x K.18 K/W Comparative tracking index CTI 6 Module stray inductance Lσ CE 8 nh TC = 25 C.55 Resistance, terminal-chip RCC +EE TC = 125 C.75 mω TC = 15 C.8 2) For detailed mounting instructions refer to ABB Document No. 5SYA 239 Mechanical properties 7) Parameter Symbol Conditions min typ max Unit Dimensions L x W x H Typical 19 x 14 x 38 mm Clearance distance in air da according to IEC and EN Term. to base: 23 Term. to term: 19 mm Surface creepage distance ds according to IEC and EN Term. to base: 28.2 Term. to term: 28.2 mm Mass m 121 g 7) Package and mechanical properties according to IEC SNA 24E1735 Doc. No. 5SYA

4 Electrical configuration Outline drawing 2) Note: all dimensions are shown in millimeters 2) For detailed mounting instructions refer to ABB Document No. 5SYA 239 This is an electrostatic sensitive device, please observe the international standard IEC , chap. IX. This product has been designed and qualified for Industrial Level. 4 5SNA 24E1735 Doc. No. 5SYA

5 48 48 V CE = V GE C 32 IC [A] C 15 C IC [A] C 25 C C V GE = 15 V V GE [V] Fig. 1 Typical on-state characteristics, chip level Fig. 2 Typical transfer characteristics, chip level T vj = 25 C V 17 V V V IC [A] V 15 V IC [A] V 11 V V 11 V 16 9 V 8 9 V 8 T vj = 15 C Fig. 3 Typical output characteristics, chip level Fig. 4 Typical output characteristics, chip level 5 5SNA 24E1735 Doc. No. 5SYA

6 V CC = 9 V R G =.6 ohm L = 5 nh V CC = 9 V I C = 24 A L = 5 nh E on Eon, Eoff [J] E off E on Eon, Eoff [J] E off T vj = 15 C T vj = 15 C I C [A] R G [ohm] Fig. 5 Typical switching energies per pulse vs. collector current Fig. 6 Typical switching energies per pulse vs. gate resistor 1 t d(off) 1 V CC = 9 V I C = 24 A L = 5 nh t d(off) td(on), tr, td(off), tf [µs] 1.1 t d(on) t f td(on), tr, td(off), tf [µs] 1 t d(on) t r.1 t r V CC = 9 V R G =.6 ohm L = 5 nh t f I C [A] R G [ohm] Fig. 7 Typical switching times vs. collector current Fig. 8 Typical switching times vs. gate resistor 6 5SNA 24E1735 Doc. No. 5SYA

7 1 2 C ies V CC = 9 V 15 1 V CC = 13 V C [nf] C oes VGE [V] 1 1 C res 5 1 V GE = V f OSC = 1 MHz V OSC = 5 mv I C = 24 A T vj = 25 C Q g [µc] Fig. 9 Typical capacitances vs. collector-emitter voltage Fig. 1 Typical gate charge characteristics 2.5 V CC 12 V, T vj = 15 C, R G =.6 ohm 2. ICpulse / IC chip module Fig. 11 Turn-off safe operating area (RBSOA) 7 5SNA 24E1735 Doc. No. 5SYA

8 Erec [mj], Irr [A], Qrr [µc] I rr Q rr E rec Erec [mj], Irr [A], Qrr [µc] V CC = 9 V I F = 24 A L = 5 nh RG = 4.7 ohm RG = 2.2 ohm RG = 1.5 ohm RG = 1. ohm I rr Q rr E rec 5 T vj = 15 C V CC = 9 V R G =.6 ohm L = 5 nh T vj = 15 C RG =.83 ohm RG =.6 ohm RG =.47 ohm I F [A] di/dt [ka/µs] Fig. 12 Typical reverse recovery characteristics vs. forward current Fig. 13 Typical reverse recovery characteristics vs. di/dt C 48 V CC 12 V di/dt 14 ka/µs T vj = 15 C L σ = 5 nh IF [A] C 15 C IR [A] V F [V] V R [V] Fig. 14 Typicial diode forward characteristics chip level Fig. 15 Safe operating area diode (SOA) 8 5SNA 24E1735 Doc. No. 5SYA

9 .1 Analytical function for transient thermal impedance: Zth(j-c) [K/W] IGBT, DIODE.1.1 Z th(j-c) Diode Z th(j-c) IGBT DIODE IGBT Z th (j-c) (t) = n i 1 R i (1- e -t/ i i Ri(K/kW) i(ms) Ri(K/kW) i(ms) ) Fig t [s] Thermal impedance vs. time Related documents: 5SYA 242 Failure rates of HiPak modules due to cosmic rays 5SYA 243 Load cycle capability of HiPaks 5SYA 245 Thermal runaway during blocking 5SYA 253 Applying IGBT 5SYA 258 Surge currents for IGBT diodes 5SYA 293 Thermal design of IGBT modules 5SYA 298 Paralleling of IGBT modules 5SZK 9111 Specification of environmental class for HiPak Storage 5SZK 9112 Specification of environmental class for HiPak Transportation 5SZK 9113 Specification of environmental class for HiPak Operation (Industry) 5SZK 912 Specification of environmental class for HiPak ABB Switzerland Ltd. Semiconductors Fabrikstrasse 3 CH-56 Lenzburg Switzerland Phone: Fax: abbsem@ch.abb.com Internet: We reserve the right to make technical changes or to modify the contents of this document without prior notice. We reserve all rights in this document and the information contained therein. Any reproduction or utilization of this document or parts thereof for commercial purposes without our prior written consent is forbidden. Any liability for use of our products contrary to the instructions in this document is excluded. 5SNA 24E1735 Doc. No. 5SYA

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