STP3NC60 STMICROELECTRONICS | Alldatasheet
Document overview
- Manufacturer or author: Provided By ALLDATASHEET.COM(FREE DATASHEET DOWNLOAD SITE)
- PDF pages: 9
Technical content
N-CHANNEL 600V - 3.3Ω - 3A TO-220/TO-220FP PowerMesh II MOSFET n TYPICAL R DS (on) = 3.3Ω n EXTREMELY HIGH dv/dt CAPABILITY n 100% AVALANCHE TESTED n NEW HIGH VOLTAGE BENCHMARK n GATE CHARGE MINIMIZED
DESCRIPTION
The PowerMESH II is the evolution of the first generation of MESH OVERLAY .The layout re- finements introduced greatly improve the Ron*area figure of merit while keeping the device at the lead- ing edge for what concerns swithing speed, gate charge and ruggedness.
APPLICATIONS
n HIGH CURRENT, HIGH SPEED SWITCHING n SWITH MODE POWER SUPPLIES (SMPS) n DC-AC CONVERTERS FOR WELDING EQUIPMENT AND UNINTERRUPTIBLE POWER SUPPLIES AND MOTOR DRIVER ABSOLUTE MAXIMUM RATINGS (•)Pulse width limited by safe operating area TYPE V DSS R DS(on) ID STP3NC60 600 V <3.6 Ω 3A STP3NC60FP 600V <3.6 Ω 2A Symbol Parameter Value Unit STP3NC60 STP3NC60FP VDS Drain-source Voltage (VGS =0 ) 600 V VDGR Drain-gate Voltage (RGS =2 0kΩ ) 600 V VGS Gate- source Voltage ±30 V ID Drain Current (continuos) at TC =2 5°C 33 A ID Drain Current (continuos) at TC = 100°C 1.9 1.9(*) A IDM (l ) Drain Current (pulsed) 12 12(*) A PTOT Total Dissipation at TC =2 5°C 80 40 W Derating Factor 0.64 0.32 W/ °C dv/dt (1) Peak Diode Recovery voltage slope 3.5 V/ns VISO Insulation Withstand Voltage (DC) - 2000 Tstg Storage Temperature –60 to 150 °C Tj Max. Operating Junction Temperature 150 °C (1)ISD ≤3A, di/dt≤100A/µs, VDD ≤ V(BR)DSS ,Tj≤ TJMAX. (*)Limited only by maximum temperature allowed INTERNAL SCHEMATIC DIAGRAM TO-220 TO-220FP
ELECTRICAL CHARACTERISTICS (TCASE = 25°C UNLESS OTHERWISE SPECIFIED) OFF ON (1) DYNAMIC TO-220 TO-220FP Rthj-case Thermal Resistance Junction-case Max 1.56 3.12 °C/W Rthj-amb Thermal Resistance Junction-ambient Max 62.5 °C/W Rthc-sink Thermal Resistance Case-sink Typ 0.5 °C/W Tl Maximum Lead Temperature For Soldering Purpose 300 °C Symbol Parameter Max Value Unit IAR Avalanche Current, Repetitive or Not-Repetitive (pulse width limited by Tjmax) 3A EAS Single Pulse Avalanche Energy (starting Tj=2 5°C, ID =IAR ,V DD =5 0V ) 100 mJ Symbol Parameter Test Conditions Min. Typ. Max. Unit V(BR)DSS Drain-source Breakdown Voltage ID = 250µA, VGS =0 600 V IDSS Zero Gate Voltage Drain Current (VGS =0 ) VDS = Max Rating 1 µA VDS = Max Rating, TC = 125°C 50 µA IGSS Gate-body Leakage Current (VDS =0 ) VGS = ±30V ±100 nA Symbol Parameter Test Conditions Min. Typ. Max. Unit VGS(th) Gate Threshold Voltage VDS =V GS ,ID = 250µA 234V R DS(on) Static Drain-source On Resistance VGS = 10V, ID = 1.5 A 3.3 3.6 Ω ID(on) On State Drain Current VDS >ID(on)xR DS(on)max, VGS =1 0 V 3A Symbol Parameter Test Conditions Min. Typ. Max. Unit gfs(1) Forward Transconductance VDS >ID(on)xR DS(on)max, ID = 1.5A 2S C iss Input Capacitance VDS = 25V, f = 1 MHz, VGS =0 400 pF C oss Output Capacitance 57 pF C rss Reverse Transfer Capacitance 7p F
ELECTRICAL CHARACTERISTICS (CONTINUED) SWITCHING ON SWITCHING OFF SOURCE DRAIN DIODE Note: 1. Pulsed: Pulse duration = 300µs, duty cycle 1.5 %. 2. Pulse width limited by safe operating area. Symbol Parameter Test Conditions Min. Typ. Max. Unit td(on) Turn-on Delay Time Rise Time VDD = 300 V, ID = 1.5 A R G = 4.7Ω VGS =1 0V (see test circuit, Figure 3) 9n s tr 13 ns Q g Total Gate Charge VDD = 480V, ID =3A , VGS = 10V 13 18.2 nC Q gs Gate-Source Charge 2.3 nC Q gd Gate-Drain Charge 4.4 nC Symbol Parameter Test Conditions Min. Typ. Max. Unit tr(Voff) Off-voltage Rise Time VDD = 480V, ID =3A , R G =4 . 7Ω, VGS = 10V (see test circuit, Figure 5) 13 ns tf Fall Time 15 ns tc Cross-over Time 21 ns Symbol Parameter Test Conditions Min. Typ. Max. Unit ISD Source-drain Current 3 A ISDM (2) Source-drain Current (pulsed) 12 A VSD (1) Forward On Voltage ISD = 3 A, VGS =0 1.6 V trr Reverse Recovery Time ISD = 3 A, di/dt = 100A/µ s, VDD = 100V, Tj= 150°C (see test circuit, Figure 5) 420 ns Q rr Reverse Recovery Charge 1.5 µC IRRM Reverse Recovery Current 7.1 A Safe Operating Area for TO-220 Safe Operating Area for TO-220FP
Static Drain-source On Resistance Thermal Impedence for TO-220 Output Characteristics Thermal Impedence for TO-220FP Transfer Characteristics Transconductance
Normalized Gate Threshold Voltage vs Temp. Source-drain Diode Forward Characteristics Capacitance Variations Normalized On Resistance vs Temperature Gate Charge vs Gate-source Voltage
Fig. 5:Test Circuit For Inductive Load Switching And Diode Recovery Times Fig. 4:Gate Charge test Circuit Fig. 2:Unclamped Inductive WaveformFig. 1:Unclamped Inductive Load Test Circuit Fig. 3:Switching Times Test Circuit For Resistive Load
DIM. mm inch A 4.40 4.60 0.173 0.181 C 1.23 1.32 0.048 0.051 D 2.40 2.72 0.094 0.107 D1 1.27 0.050 E 0.49 0.70 0.019 0.027 F 0.61 0.88 0.024 0.034 F1 1.14 1.70 0.044 0.067 F2 1.14 1.70 0.044 0.067 G 4.95 5.15 0.194 0.203 G1 2.4 2.7 0.094 0.106 H2 10.0 10.40 0.393 0.409 L2 16.4 0.645 L4 13.0 14.0 0.511 0.551 L5 2.65 2.95 0.104 0.116 L6 15.25 15.75 0.600 0.620 L7 6.2 6.6 0.244 0.260 L9 3.5 3.93 0.137 0.154 A C D E F G Dia. TO-220 MECHANICAL DATA P011C
DIM. mm inch A 4.4 4.6 0.173 0.181 B 2.5 2.7 0.098 0.106 D 2.5 2.75 0.098 0.108 E 0.45 0.7 0.017 0.027 F 0.75 1 0.030 0.039 F1 1.15 1.7 0.045 0.067 F2 1.15 1.7 0.045 0.067 G 4.95 5.2 0.195 0.204 G1 2.4 2.7 0.094 0.106 H 10 10.4 0.393 0.409 L2 16 0.630 L3 28.6 30.6 1.126 1.204 L4 9.8 10.6 0.385 0.417 L6 15.9 16.4 0.626 0.645 L7 9 9.3 0.354 0.366 Ø 3 3.2 0.118 0.126 A B D E H G F 123 TO-220FP MECHANICAL DATA
Information furnished is believed to be accurate and reliable. However, STMicroelectronics assumes no responsibility for the consequences of use of such information nor for any infringement of patents or other rights of third parties which may result from its use. No license is granted by implication or otherwise under any patent or patent rights of STMicroelectronics. Specification mentioned in this publication are subject to change without notice. This publication supersedes and replaces all information previously supplied. STMicroelectronics products are not authorized for use as critical components in life support devices or systems without express written approval of STMicroelectronics. The ST logo is a trademark of STMicroelectronics 2000 STMicroelectro nics – Printed in Italy – All Rights Reserved STMicroelectronics GROUP OF COMPANIES Australia - Brazil - China - Finland - France - Germany - Hong Kong - India - Italy - Japan - Malaysia - Malta - Morocco - Singapore - Spain - Sweden - Switzerland - United Kingdom - U.S.A. http://www.st.com