航天推进用高速永磁电机转子多物理场热结构设计

Islam Zaher, A. Manikandan, Mohamed Abdalmagid, G. Pietrini, Mikhail Goykhman, A. Emadi
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引用次数: 0

摘要

在高速表面永磁同步电机(SPMSM)中,高温、热应力和机械应力、转子不平衡往往决定了机器的最大功率输出。因此,应该在冷却设计、机器结构刚度和额定功率之间进行权衡。本文通过热结构分析和模态分析,探讨了高速机械转子的建模和设计过程,以尽量减少结构设计和热设计之间的权衡。从热、结构两方面对SPMSM电机转子进行了设计和建模,以实现电机的最大功率输出,同时以减轻转子重量为目标。转子的设计显示了安全的操作温度和应力水平在机器额定速度和功率输出的最小和均匀分布的热和机械应力的结果。通过在安全操作范围内设计机器,而不使用过多的安全裕度,可以实现7.1 kW/kg的功率密度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multiphysics Thermo-Structural Design of the Rotor in High-Speed Permanent Magnet Machines for Aerospace Propulsion Applications
High temperatures, thermal and mechanical stresses, rotor imbalances in high-speed Surface Permanent Magnet Synchronous machines (SPMSM) often dictates the maximum power output of the machine. Hence, a trade-off should be made between the cooling design, and machine structure stiffness, and the power rating. This work discusses the modelling and design process of the high-speed machine rotor by means of thermo-structural and modal analyses to minimize the trade-offs between the structural and thermal designs. The study discusses the design and modeling of SPMSM machine rotor thermally and structurally to achieve the highest power output of the machine while targeting rotor weight reduction. The design of the rotor shows safe operating temperatures and stress levels at the machine rated speed and power output as a result of the minimized and well-distributed thermal and mechanical stresses. A power density of 7.1 kW/kg is achieved by designing the machine within safe operating limits without using excessive safety margins.
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