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Discrete Semiconductor Products

R6024KNXC7G

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Rohm Semiconductor

600V 24A TO-220FM, HIGH-SPEED SWITCHING POWER MOSFET

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Product thumbnail image
Discrete Semiconductor Products

R6024KNXC7G

Active
Rohm Semiconductor

600V 24A TO-220FM, HIGH-SPEED SWITCHING POWER MOSFET

Technical Specifications

Parameters and characteristics for this part

SpecificationR6024KNXC7G
Current - Continuous Drain (Id) @ 25°C24 A
Drain to Source Voltage (Vdss)600 V
Drive Voltage (Max Rds On, Min Rds On)10 V
FET TypeN-Channel
Gate Charge (Qg) (Max) @ Vgs45 nC
Input Capacitance (Ciss) (Max) @ Vds [Max]2000 pF
Mounting TypeThrough Hole
Operating Temperature150 °C
Package / CaseTO-220-3 Full Pack
Power Dissipation (Max)74 W
Rds On (Max) @ Id, Vgs165 mOhm
Supplier Device PackageTO-220FM
TechnologyMOSFET (Metal Oxide)
Vgs (Max)20 V
Vgs(th) (Max) @ Id5 V

Pricing

Prices provided here are for design reference only. For realtime values and availability, please visit the distributors directly

DistributorPackageQuantity$
DigikeyN/A 955$ 3.41
NewarkEach 1$ 3.33
10$ 3.17
25$ 2.86
50$ 2.54

Description

General part information

R6024KNX Series

R6024KNX is Low on-resistance and ultra fast switching speed Power MOSFET.

Documents

Technical documentation and resources

Two-Resistor Model for Thermal Simulation

Thermal Design

Temperature derating method for Safe Operating Area (SOA)

Schematic Design & Verification

How to Use LTspice® Models

Schematic Design & Verification

Measurement Method and Usage of Thermal Resistance RthJC

Thermal Design

Moisture Sensitivity Level - Transistors

Package Information

Precautions When Measuring the Rear of the Package with a Thermocouple

Thermal Design

How to Use the Thermal Resistance and Thermal Characteristics Parameters

Thermal Design

MOSFET Gate Drive Current Setting for Motor Driving

Technical Article

Method for Calculating Junction Temperature from Transient Thermal Resistance Data

Thermal Design

List of Transistor Package Thermal Resistance

Thermal Design

Package Dimensions

Package Information

θ<sub>JC</sub> and Ψ<sub>JT</sub>

Thermal Design

Judgment Criteria of Thermal Evaluation

Thermal Design

Types and Features of Transistors

Application Note

PCB Layout Thermal Design Guide

Thermal Design

How to Use LTspice&reg; Models: Tips for Improving Convergence

Schematic Design & Verification

Basics of Thermal Resistance and Heat Dissipation

Thermal Design

Notes for Temperature Measurement Using Thermocouples

Thermal Design

Example of Heat Dissipation Design for TO Packages: Effect of Heat Dissipation Materials

Thermal Design

Notes for Calculating Power Consumption:Static Operation

Thermal Design

Overview of ROHM's Simulation Models(for ICs and Discrete Semiconductors)

Technical Article

About Export Regulations

Export Information

Compliance of the RoHS directive

Environmental Data

Method for Monitoring Switching Waveform

Schematic Design & Verification

How to Create Symbols for PSpice Models

Models

Impedance Characteristics of Bypass Capacitor

Schematic Design & Verification

Part Explanation

Application Note

Importance of Probe Calibration When Measuring Power: Deskew

Schematic Design & Verification

R6024KNX Data Sheet

Data Sheet

Anti-Whisker formation - Transistors

Package Information

Power Eco Family: Overview of ROHM's Power Semiconductor Lineup

White Paper

Notes for Temperature Measurement Using Forward Voltage of PN Junction

Thermal Design

MOSFET Gate Resistor Setting for Motor Driving

Technical Article

Explanation for Marking

Package Information

R6024KNX ESD Data

Characteristics Data

Reliability Test Result

Manufacturing Data

About Flammability of Materials

Environmental Data

Inner Structure

Package Information

What Is Thermal Design

Thermal Design

Constitution Materials List

Environmental Data

θ<sub>JA</sub> and Ψ<sub>JT</sub>

Thermal Design

What is a Thermal Model? (Transistor)

Thermal Design

Calculation of Power Dissipation in Switching Circuit

Schematic Design & Verification

ROHM Solution Simulator Power Device User's Guide for Inverter

Simulations