IGBT驱动电路布线设计注意事项
[11-29 12:15:35] 来源:http://www.88dzw.com 布线技巧与EMC 阅读:8255次
文章摘要:IGBT驱动电路布线设计注意事项1.The layout must minimize the parasitic inductance between the driver’s output stage and the IGBT. This corresponds to keeping the loop area assmall as possible showed in the following Figure.2. Care must be taken to avoid coupling of noise between the power circuit and the control
IGBT驱动电路布线设计注意事项,标签:布线,emc是什么意思,http://www.88dzw.comIGBT驱动电路布线设计注意事项
1.The layout must minimize the parasitic inductance between the driver’s output stage and the IGBT. This corresponds to keeping the loop area assmall as possible showed in the following Figure.
2. Care must be taken to avoid coupling of noise between the power circuit and the control circuit. This can be accomplished by proper placement ofthe gate drive board and/or shielding the gate drive circuit.
3. It is recommended to use the auxiliary emitter terminal for connecting the gate drive.
4. If direct connection of the drive PCB to the IGBT control terminals is not possible, the use of twisted pair (3 turns per inch of minimum length) or strip line is recommended.
5. Gate protection clamp must also have low inductance layout and must be located as close as possible to the gate-emitter control terminals of the IGBT module.
6. Do not route printed circuit board traces near each other that are subjected to mutual potential changes due to IGBT switching. High dv/dtcan couple noise through parasitic capacitances. If crossing or parallel routing of those traces is unavoidable, use shield layers in between.
7. Parasitic capacitance between high side gate drive circuits, high and low side gate drive circuits and control circuits may cause problems with coupled noise. Power supply transformer inter-winding capacitance can be another source of coupled noise. Appropriate measures to reduce these parasitic capacitances have to be implemented.
8. If opt-couplers are used for isolation of the high side gate drive signals they should have a minimum common mode transient immunity of 10,000 V/μs.
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