162CNQ030 IRF | Alldatasheet

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Major Ratings and Characteristics IF(AV) Rectangular 160 A waveform VRRM range 30 V IFSM @ tp = 5 µs sine 7900 A VF @ 80 Apk, TJ = 125°C 0.46 V (per leg) TJ range - 55 to 150 °C Characteristics 162CNQ... Units The 162CNQ030 non isolated, center tap Schottky rectifier module series has been optimized for very low forward voltage drop, with moderate leakage. The proprietary barrier technology allows for reliable operation up to 150° C junction temperature. Typical applications are in switching power supplies, converters, free-wheeling diodes, and reverse battery protection. 150° C T J operation Isolated heatsink Center tap module High purity, high temperature epoxy encapsulation for enhanced mechanical strength and moisture resistance Very low forward voltage drop High frequency operation Guard ring for enhanced ruggedness and long term reliability Low profile, high current package Description/Features Outline TO-249AA Dimensions in millimeters and (inches) TO-249AA SCHOTTKY RECTIFIER 160 Amp 162CNQ030 Bulletin PD-2.366 05/00 www.irf.com 1 (NON ISOLATED BASE)

Bulletin PD-2.366 05/00 www.irf.com VR Max. DC Reverse Voltage (V) 30 VRWM Max. Working Peak Reverse Voltage (V) TJ Max. Junction Temperature Range - 55 to 150 °C Tstg Max. Storage Temperature Range - 55 to 150 °C RthJC Max. Thermal Resistance Junction 0.70 °C/W DC operation * See Fig. 4 to Case (Per Leg) RthJC Max. Thermal Resistance Junction 0.35 °C/W DC operation to Case (Per Package) RthCS Typical Thermal Resistance, Case 0.10 °C/W Mounting surface , smooth and greased to Heatsink wt Approximate Weight 58 (2.0) g (oz.) T Mounting Torque Min. 40 (35) Max. 58 (50) Case Style TO - 249AA JEDEC Thermal-Mechanical Specifications Kg-cm (Ibf-in) Absolute Maximum Ratings Following any rated load condition and with rated VRRM applied Parameters 162CNQ Units Conditions IF(AV) Max. Average Forward (Per Leg) 80 A 50% duty cycle @ T C = 109 °C, rectangular wave form Current * See Fig. 5 (Per Device) 160 IFSM Max. Peak One Cycle Non-Repetitive 7900 A 5µs Sine or 3µs Rect. pulse Surge Current (Per Leg) * See Fig. 7 980 10ms Sine or 6ms Rect. pulse E AS Non-Repetitive Avalanche Energy 72 mJ T J = 25 °C, IAS = 16 Amps, L = 0.84 mH (Per Leg) IAR Repetitive Avalanche Current 16 A Current decaying linearly to zero in 1 µsec (Per Leg) Frequency limited by T J max. VA = 1.5 x VR typical Voltage Ratings Parameters 162CNQ Units Conditions Part number 162CNQ030 VFM Max. Forward Voltage Drop 0.53 V @ 80A T J = 25 °C (Per Leg) * See Fig. 1 (1) 0.65 V @ 160A

0.46 V @ 80A T J = 125 °C

0.63 V @ 160A

IRM Max. Reverse Leakage Current 5 mA T J = 25 °C V R = rated VR (Per Leg) * See Fig. 2 (1) 280 mA T J = 125 °C CT Max. Junction Capacitance (Per Leg) 3700 pF V R = 5VDC (test signal range 100Khz to 1Mhz) 25°C LS Typical Series Inductance (Per Leg) 8.0 nH Measured from terminal hole to terminal hole dv/dt Max. Voltage Rate of Change 10,000 V/ µs (Rated VR) Electrical Specifications (1) Pulse Width < 300µs, Duty Cycle <2% Parameters 162CNQ Units Conditions

Bulletin PD-2.366 05/00 www.irf.com Fig. 2 - Typical Values Of Reverse Current Vs. Reverse Voltage (Per Leg) Fig. 3 - Typical Junction Capacitance Vs. Reverse Voltage (Per Leg) Fig. 4 - Max. Thermal Impedance ZthJC Characteristics (Per Leg) Fig. 1 - Max. Forward Voltage Drop Characteristics (Per Leg) Instantaneous Forward Current - I F (A) Forward Voltage Drop - VFM (V) Reverse Voltage - VR (V) Reverse Current - I R (mA)Junction Capacitance - C T (p F) Reverse Voltage - VR (V) t1 , Rectangular Pulse Duration (Seconds) Thermal Impedance Z thJC (°C/W) 100 1000 T = 150˚C T = 125˚C T = 25˚C J J J 0.01 0.1 100 1000 0 1 02 03 0 100˚C 75˚C 50˚C 25˚C T = 150˚CJ 125˚C 1000 10000 0 5 10 15 20 25 30 T = 25˚CJ 0.001 0.01 0.1 Single Pulse (Thermal Resistance) D = 0.75 D = 0.50 D = 0.33 D = 0.25 D = 0.20 Notes: 1. Duty factor D = t1/ t2 2. Peak Tj = Pdm x ZthJC + Tc PDM

Bulletin PD-2.366 05/00 www.irf.com Fig. 7 - Max. Non-Repetitive Surge Current (Per Leg) Fig. 5 - Max. Allowable Case Temperature Vs. Average Forward Current (Per Leg) Fig. 8 - Unclamped Inductive Test Circuit Fig. 6 - Forward Power Loss Characteristics (Per Leg) FREE-W HEEL D I O D E 40HFL40S02C URRENT MO NI T O R HI GH-SPEED SW ITC H IRFP460 L DUT Rg = 25 ohm Vd = 25 Vo l t+ (2) Formula used: TC = TJ - (Pd + PdREV) x RthJC ; Pd = Forward Power Loss = IF(AV) x VFM @ (IF(AV) / D) (see Fig. 6); PdREV = Inverse Power Loss = VR1 x IR (1 - D); IR @ VR1 = 80% rated VR Average Forward Current - IF(AV) (A) Allowable Case Temperature (°C) Average Forward Current - IF(AV) (A) Average Power Loss (Watts) Square Wave Pulse Duration - tp (microsec) Non-Repetitive Surge Current - I FSM (A) 0 20 40 60 80 100 120 DC RMS Limit D = 0.75 D = 0.50 D = 0.33 D = 0.25 D = 0.20 100 1000 10000 10 100 1000 10000 At Any Rated Load Condition And With Rated Vrrm Applied Following Surge 100 110 120 130 140 150 160 0 20 40 60 80 100 120 14 DC see note (2) Square Wave (D = 0.50) 80% Rated Vr Applied

Bulletin PD-2.366 05/00 www.irf.com EUROPEAN HEADQUARTERS: Hurst Green, Oxted, Surrey RH8 9BB, U.K. Tel: ++ 44 1883 732020. Fax: ++ 44 1883 733408. IR CANADA: 15 Lincoln Court, Brampton, Markham, Ontario L6T3Z2. Tel: (905) 453 2200. Fax: (905) 475 8801. IR GERMANY: Saalburgstrasse 157, 61350 Bad Homburg. Tel: ++ 49 6172 96590. Fax: ++ 49 6172 965933. IR ITALY: Via Liguria 49, 10071 Borgaro, Torino. Tel: ++ 39 11 4510111. Fax: ++ 39 11 4510220. IR FAR EAST: K&H Bldg., 2F, 30-4 Nishi-Ikebukuro 3-Chome, Toshima-Ku, Tokyo, Japan 171. Tel: 81 3 3983 0086. IR SOUTHEAST ASIA: 1 Kim Seng Promenade, Great World City West Tower,13-11, Singapore 237994. Tel: ++ 65 838 4630.