High Speed Permanent Magnet Synchronous Generator for Supercritical CO2 Brayton Cycle Based Application

Yash Ajgaonkar, Ashutosh Sanjay Kavitkar, R. D. Kulkarni
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Abstract

Fourth generation nuclear reactors are undergoing the stage of research and development. Nuclear reactor technologies which are significantly advanced in power generation yield, safety, efficiency, availability and reliability. Amongst all categories of fourth generation reactors deploy super critical CO2 Brayton cycle methodology providing better efficiency, low cost and higher stability. For obtaining high system efficiency, the turbo-alternators of nuclear reactor needs to be compact, rugged and maintenance free and should be able to cope up with rapidly changing transients of the system. The substantially reduced size, high operating efficiency and high reliability of high speed permanent magnet synchronous generator makes it suitable for supercritical CO2 Brayton cycle application in nuclear reactors. The higher operating speed however, makes the design complex and different from the conventional generator design. This paper involves design methodologies for laboratory scaled 2 kW, 25000 RPM permanent magnet synchronous generator. The design study involves analysis of specific material requirements, theoretical calculations for arriving main dimensions and power losses. The winding arrangement, temperature flux mapping was analyzed from the prototype, model using software simulation and the results have been presented.
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高速永磁同步发电机在超临界CO2布雷顿循环中的应用
第四代核反应堆正处于研发阶段。核反应堆技术在发电产量、安全性、效率、可用性和可靠性方面都取得了显著进步。在所有类别的第四代反应堆中,采用超临界二氧化碳布雷顿循环方法,提供更高的效率,更低的成本和更高的稳定性。为了获得较高的系统效率,核反应堆汽轮发电机要求结构紧凑、坚固耐用、免维护,并能适应系统瞬时性的快速变化。高速永磁同步发电机具有体积大幅减小、运行效率高、可靠性高等特点,适合于超临界CO2布雷顿循环在核反应堆中的应用。然而,较高的运行速度使设计复杂,与常规发电机设计不同。本文介绍了实验室规模2kw, 25000 RPM永磁同步发电机的设计方法。设计研究包括具体材料要求的分析,到达主要尺寸和功率损耗的理论计算。从样机出发,对绕组布置、温度通量映射进行了分析,并通过软件仿真给出了结果。
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