A Multi-Physics Design Approach for Electromagnetic and Stress Performance Improvement in an Interior Permanent Magnet Motor

IF 0.7 Q4 TRANSPORTATION SCIENCE & TECHNOLOGY SAE International Journal of Electrified Vehicles Pub Date : 2023-12-05 DOI:10.4271/14-13-02-0011
Aniruddha Agrawal, Ashish Sahu, Francisco Juarez-Leon, Reemon Z. Haddad, D. Al-Ani, B. Bilgin
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引用次数: 0

Abstract

Electric motors constitute a critical component of an electric vehicle powertrain. An improved motor design can help improve the overall performance of the drivetrain of an electric vehicle making it more compact and power dense. In this article, the electromagnetic torque output of a double V-shaped traction IPMSM is maximized by geometry optimization, while considering overall material cost minimization as the second objective. A robust and flexible parametric model of the IPMSM is developed in ANSYS Maxwell 2D. Various parameters are defined in the rotor and stator geometries to perform an effective multi-objective parametric design optimization. Advanced sensitivity analysis, surrogate modeling, and optimization capabilities of ANSYS optiSlang software are leveraged in the optimization. Furthermore, a demagnetization analysis is performed to evaluate the robustness of the optimized design. At high-speed operation, a rotor core is usually subject to higher deformation due to the high centrifugal force. Thus, rotor stresses are reduced in the optimized design by shaping the flux barriers around the permanent magnets. This enables high structural integrity of the optimized design for high-speed operation along with the improved electromagnetic performance. The multi-physics design approach proposed in this article provides the capability to design and optimize an IPMSM geometry for performance and cost, which are essential objectives to achieve in an electrified powertrain development. Moreover, consideration of rotor stress at high operating speeds extends the applicability of the proposed design approach to high-power, high-speed electric propulsion applications.
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改善内部永磁电机电磁和应力性能的多物理场设计方法
电动机是电动汽车动力系统的重要组成部分。改进的电机设计有助于提高电动汽车传动系统的整体性能,使其更加紧凑和功率密集。本文以双v形牵引永磁同步电动机的电磁转矩输出为目标,通过几何优化实现电磁转矩输出最大化,同时以整体材料成本最小化为第二目标。在ANSYS Maxwell 2D中建立了IPMSM的鲁棒柔性参数化模型。在转子和定子的几何形状中定义各种参数,进行有效的多目标参数化设计优化。在优化中利用了ANSYS opti俚语软件的高级灵敏度分析、代理建模和优化功能。此外,还进行了消磁分析,以评估优化设计的鲁棒性。在高速运行时,由于高离心力,转子铁芯通常会产生较大的变形。因此,在优化设计中,通过塑造永磁体周围的磁通屏障来减小转子应力。这使得优化设计的高结构完整性适合高速运行,同时提高了电磁性能。本文提出的多物理场设计方法提供了设计和优化IPMSM几何形状的能力,以实现性能和成本,这是电气化动力系统开发中实现的基本目标。此外,考虑转子在高运行速度下的应力,扩展了所提出的设计方法在大功率、高速电力推进应用中的适用性。
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来源期刊
SAE International Journal of Electrified Vehicles
SAE International Journal of Electrified Vehicles Engineering-Automotive Engineering
CiteScore
1.40
自引率
0.00%
发文量
15
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