M81707FP POWEREX | Alldatasheet
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Technical content
Powerex, Inc., 200 E. Hillis Street, Youngwood, Pennsylvania 15697-1800 (724) 925-7272 HVIC High Voltage Half-Bridge Driver
600 Volts/±100mA
A C D E S T R H J N L M Q P B E F x U G K DETAIL "A" DETAIL "A" DETAIL "B" DETAIL "B" 1 8 PIN NUMBER
1 LO 9 NC
2 VCOM 10 NC
3 VCC2 11 VCC
4 NC 12 HIN
5 NC 13 NC
6 VS 14 LIN
7 VB 15 GND
8 HO 16 NC
S R Q R VCC HIN LIN GND VB HO VS PULSE GEN VREG HV LEVEL SHIFT INTER LOCK UV DETECT FILTER S R Q R VCC2 LO VCOM Description: M81707FP is a high voltage Power MOSFET and IGBT module driver for half-bridge applications. Features: £ Output Current ±100mA £ Half-Bridge Driver £ SOP-16 Package Applications: £ HID Ballast £ PDP £ MOSFET Driver £ IGBT Driver £ Inverter Module Control Ordering Information: M81707FP is a ±100mA,
600 Volt HVIC, High Voltage
Outline Drawing and Circuit Diagram Dimensions Inches Millimeters D 0.12 2.10 E 0.05 1.27 G 0.004 0.1 H 0.07 1.8 K 0.05 1.25 Dimensions Inches Millimeters N 8° 8° P 0.03 0.755 Q 0.023 0.605 R 0.05 Min. 1.27 Min. S 0.30 7.62 T 0.029 0.76 U 0.098 Dia. 0.25 Dia.
HVIC, High Voltage Half-Bridge Driver Powerex, Inc., 200 E. Hillis Street, Youngwood, Pennsylvania 15697-1800 (724) 925-7272 2 6/05 Absolute Maximum Ratings, Ta = 25°C unless otherwise specified Characteristics Symbol M81707FP Units High Side Floating Supply Absolute Voltage VB -0.5 ~ 624 Volts High Side Floating Supply Offset Voltage VS VB-24 ~ VB+0.5 Volts High Side Floating Supply Voltage (VBS = VB – VS) VBS -0.5 ~ 24 Volts High Side Output Voltage VHO VS-0.5 ~ VB+0.5 Volts Low Side Floating Supply Absolute Voltage VCC2 -0.5 ~ 624 Volts Output Standard Voltage Vcom VCC2-24 ~ VCC2+0.5 Volts Low Side Floating Supply Voltage (VCC2com = VCC2 – Vcom) V CC2com -0.5 ~ 24 Volts Low Side Output Voltage VLO Vcom-0.5 ~ VCC2+0.5 Volts Low Side Fixed Supply Voltage VCC -0.5 ~ 24 Volts Logic Input Voltage (HIN, LIN) VIN -0.5 ~ VCC+0.5 Volts Allowable Offset Voltage Transient dVs/dt ±50 Volts/ns Package Power Dissipation (Ta = 25°C, On Board) Pd 0.89 Watts Linear Derating Factor (Ta > 25°C, On Board) Kθ -8.9 mW/°C Junction to Case Thermal Resistance Rth(j-c) 45 °C/W Junction Temperature Tj -40 ~ 125 °C Operation Temperature Topr -40 ~ 100 °C Storage Temperature Tstg -55 ~ 125 °C Solder Heat Resistance (Pb Free) TL 255 : 10s, Max. 260 °C Recommended Operating Conditions Characteristics Symbol Test Conditions Min. Typ. Max. Units High Side Floating Supply Absolute Voltage V B VS+10 — V S+20 Volts High Side Floating Supply Offset Voltage V S VB > 10V -5 — 500 Volts High Side Floating Supply Voltage VBS V B = VB – VS 10 — 20 Volts High Side Output Voltage VHO VS — V B Volts Low Side Floating Supply Absolute Voltage V CC2 Vcom+10 — V com+20 Volts Output Standard Voltage Vcom V CC2 > 10V -5 — 500 Volts Low Side Floating Supply Voltage VCC2com VCC2com = VCC2 – Vcom 10 — 20 Volts Low Side Output Voltage VLO Vcom — V CC2 Volts Low Side Fixed Supply Voltage VCC 10 — 20 Volts Logic Input Voltage VIN H IN, LIN 0 — V CC Volts
HVIC, High Voltage Half-Bridge Driver Powerex, Inc., 200 E. Hillis Street, Youngwood, Pennsylvania 15697-1800 (724) 925-7272
Electrical Characteristics
Ta = 25°C, VCC = VBS (= VB – VS) = 15V unless otherwise specified Characteristics Symbol Test Conditions Min. Typ. Max. Units Floating Supply Leakage Current IFS VB = VS = 600V — — 1.0 µA Vcom Floating Supply Leakage Current IFScom V CC2 = Vcom = 600V — — 1.0 µA VBS Standby Current IBS HIN = LIN = 0V — 0.18 0.4 mA VCC Standby Current ICC HIN = LIN = 0V — 0.30 0.6 mA VCC2 Standby Current ICC2 HIN = LIN = 0V — 0.18 0.4 mA VBS Standby Current H IBSH HIN = 5V — 0.25 0.5 mA VCC Standby Current H ICCH HIN = 5V — 0.37 0.75 mA VCC2 Standby Current H ICC2H HIN = 5V — 0.18 0.4 mA VBS Standby Current L IBSL LIN = 5V — 0.18 0.4 mA VCC Standby Current L ICCL LIN = 5V — 0.37 0.75 mA VCC2 Standby Current H ICC2L LIN = 5V — 0.25 0.5 mA High Level Output Voltage VOH IO = 0A, LO, HO 14.9 — — Volts Low Level Output Voltage VOL IO = 0A, LO, HO — — 0.1 Volts High Level Input Threshold Voltage VIH HIN, LIN 2.0 3.0 4.0 Volts Low Level Input Threshold Voltage VIL HIN, LIN 0.6 1.5 2.5 Volts Input Hysteresis Voltage VINh VINh = VIH – VIL 1.0 1.5 2.0 Volts High Level Input Bias Current 5 IIH5 VIN = 5V — 25 75 µA High Level Input Bias Current 15 IIH15 VIN = 15V — 75 150 µA Low Level Input Bias Current IIL VIN = 0V — — 1.0 µA VBS Supply UV Reset Voltage VBSuvr 7.5 8.6 9.7 Volts VBS Supply UV Hysteresis Voltage VBSuvh 0.1 0.4 0.7 Volts VBS Supply UV Filter Time tVBSuv — 7.5 — µs VCC Supply UV Reset Voltage VCCuvr 7.5 8.6 9.7 Volts VCC Supply UV Hysteresis Voltage VCCuvh 0.1 0.4 0.7 Volts VCC Supply UV Filter Time tVCCuv — 7.5 — µs Output High Level Short Circuit Pulsed Current IOH V O = 0V, VIN = 5V, PW < 10µs -60 -100 -140 mA Output Low Level Short Circuit Pulsed Current IOL V O = 15V, VIN = 0V, PW < 10µs 60 100 140 mA Output High Level ON Resistance ROH I O = -20mA, ROH = (VOH – VO)/IO — 35 70 Ω Output Low Level ON Resistance ROL I O = 20mA, ROL = VO /IO — 50 100 Ω High Side Turn-On Propagation Delay tdLH(HO) C L = 200pF between HO – VS 85 110 135 ns High Side Turn-Off Propagation Delay tdHL(HO) C L = 200pF between HO – VS 100 130 160 ns High Side Turn-On Rise Time trH C L = 200pF between HO – VS 15 30 70 ns High Side Turn-Off Fall Time tfH C L = 200pF between HO – VS 20 45 90 ns LowSide Turn-On Propagation Delay tdLH(LO) C L = 200pF between LO – GND 85 110 135 ns Low Side Turn-Off Propagation Delay tdHL(LO) C L = 200pF between LO – GND 100 130 160 ns Low Side Turn-On Rise Time trL C L = 200pF between LO – GND 15 30 70 ns Low Side Turn-Off Fall Time tfL C L = 200pF between LO – GND 20 45 90 ns Delay Matching, High Side and Low Side Turn-On ΔtdLH | t dLH(HO) – tdLH(LO) | — — 15 ns Delay Matching, High Side and Low Side Turn-Off ΔtdHL | t dHL(HO) – tdHL(LO) | — — 15 ns Output Pulse Width VOPW VIN : PW = 200ns 200 220 240 ns
HVIC, High Voltage Half-Bridge Driver Powerex, Inc., 200 E. Hillis Street, Youngwood, Pennsylvania 15697-1800 (724) 925-7272 4 6/05 TIMING DIAGRAM 1. Input/Output Timing Diagram HIGH ACTIVE – When input signal (HIN or LIN) is “H”, then output signal (HO or LO) is “H”. In the case of both input signals (HIN and LIN) are “H”, then output signals (HO and LO) become “H”. When VCC2COM supply voltage keeps lower UV trip voltage (VCC2COMuvt = VCC2COMuvr – VCC2COMuvh) for VCC2COM supply UV filter time, output signal becomes “L”. And then, when VCC2COM supply voltage is higher than UV reset voltage, output signal becomes normal. HIN LIN HO LO LO(HO) LIN(HIN) VCC2COMuvt (VBSuvt) VCC2COMuvr (VBSuvr) tVCC2COMuv (tVBSuv) VCC2COMuvh (VBSuvh)VCC2COM (VBS) 2. VCC2COM(VBS) Supply Under Voltage Lockout Timing Diagram It is recommended supplying VCC first, VCC2COM second and VBS last. In the case of shutting off supply voltage, shut off VBS supply voltage first. Second, shut off VCC2COM supply voltage, and last, shut off VCC supply voltage. At the time of starting VCC2COM and VBS, power supply should be increased slowly. If it is increased rapidly, output signal (HO and LO) may be “H”. Consideration – Allowable Supply Voltage Transient 0.5 1.5 2.0 THERMAL DERATING FACTOR CHARACTERISTICS TEMPERATURE, (°C) PACKAGE POWER DISSIPATION, Pd, (WATTS) 0 25 75 100 125 1.0 FUNCTION TABLE (X : HORL) HIN LIN VBS UV VCC2COM UV HO LO Behavorial State L L H H L L LO = HO = Low L H H H L H LO = High H L H H H L HO = High H H H H H H LO = HO = High X L L H L L HO = Low, VBS UV Tripped X H L H L H LO = High, VBS UV Tripped L X H L L L LO = Low, VCC2COM UV Tripped H X H L H L HO = High, VCC2COM UV Tripped NOTE: “L” state of VBS UV, VCC2COM UV means that UV trip voltage. In the case of both input signals (HIN and LIN) are “H”, output signals (HO and LO) become “H”.