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Electromagnet Weight Reduction in a Magnetic Levitation System for Contactless Delivery Applications

机译:用于非接触式交付应用的磁悬浮系统中的电磁重量减轻

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摘要

This paper presents an optimum design of a lightweight vehicle levitation electromagnet, which also provides a passive guide force in a magnetic levitation system for contactless delivery applications. The split alignment of C-shaped electromagnets about C-shaped rails has a bad effect on the lateral deviation force, therefore, no-split positioning of electromagnets is better for lateral performance. This is verified by simulations and experiments. This paper presents a statistically optimized design with a high number of the design variables to reduce the weight of the electromagnet under the constraint of normal force using response surface methodology (RSM) and the kriging interpolation method. 2D and 3D magnetostatic analysis of the electromagnet are performed using ANSYS. The most effective design variables are extracted by a Pareto chart. The most desirable set is determined and the influence of each design variable on the objective function can be obtained. The generalized reduced gradient (GRG) algorithm is adopted in the kriging model. This paper’s procedure is validated by a comparison between experimental and calculation results, which shows that the predicted performance of the electromagnet designed by RSM is in good agreement with the simulation results.
机译:本文提出了一种轻巧的车辆悬浮电磁铁的最佳设计,该设计还为非接触式交付应用的磁悬浮系统提供了被动的导向力。 C形电磁铁围绕C形导轨的拆分对齐方式对横向偏斜力有不良影响,因此,电磁铁的非拆分定位对于横向性能更好。仿真和实验证明了这一点。本文提出了一种统计优化设计,该设计具有大量设计变量,可以使用响应面方法(RSM)和克里格插值方法在法向力的约束下减轻电磁体的重量。使用ANSYS对电磁体进行2D和3D静磁分析。最有效的设计变量通过帕累托图提取。确定最理想的集合,并可以获得每个设计变量对目标函数的影响。克里金模型采用了广义降梯度算法。通过对实验结果和计算结果进行比较,验证了该程序的有效性,表明RSM设计的电磁铁的预测性能与仿真结果非常吻合。

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