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Auxiliary subsystems of a General-Purpose IGBT Stack for high-performance laboratory power converters

机译:通用IGBT堆栈的辅助子系统,用于高性能实验室电源转换器

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A PWM converter is the prime component in many power electronic applications such as static UPS, electric motor drives, power quality conditioners and renewable-energy-based power generation systems. While there are a number of computer simulation tools available today for studying power electronic systems,the value added by the experience of building a power converter and controlling it to function as desired is unparalleled. A student, in the process, not only understands power electronic concepts better, but also gains insights into other essential engineering aspects of auxiliary subsystems such as start-up, sensing, protection, circuit layout design, mechanical arrangement and system integration. Higher levels of protection features are critical for the converters used in a laboratory environment, as advanced protection schemes could prevent unanticipated failures occurring during the course of research. This paper presents a laboratory-built General-Purpose IGBT Stack (GPIS), which facilitates students to practically realize different power converter topologies. Essential subsystems for a complete power converter system is presented covering details of semiconductor device driving, sensing circuit, protection mechanism, system start-up, relaying and critical PCB layout design, followed by a brief comparison to commercially available IGBT stacks. The results show the high performance that can be obtained by the GPIS converter.
机译:PWM转换器是许多电力电子应用的主要组件,例如静态UPS,电动机驱动器,电能质量调节器和基于可再生能源的发电系统。尽管当今有许多计算机仿真工具可用于研究电力电子系统,但构建电力转换器并控制其功能以实现所需功能所带来的附加价值是无与伦比的。在此过程中,学生不仅可以更好地理解电力电子概念,还可以洞悉辅助子系统的其他重要工程方面,例如启动,传感,保护,电路布局设计,机械布置和系统集成。对于实验室环境中使用的转换器,更高级别的保护功能至关重要,因为先进的保护方案可以防止在研究过程中发生意外故障。本文介绍了一种实验室建造的通用IGBT堆栈(GPIS),可帮助学生实际实现不同的电源转换器拓扑。提出了完整功率转换器系统的基本子系统,涵盖了半导体器件驱动,感测电路,保护机制,系统启动,继电器和关键PCB布局设计的详细信息,然后与市售IGBT堆栈进行了简要比较。结果表明,GPIS转换器可以获得高性能。

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