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首页> 外文期刊>International journal of applied electromagnetics and mechanics >Optimization design and test of dual air-gaps and liquid-cooled eddy current retarder
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Optimization design and test of dual air-gaps and liquid-cooled eddy current retarder

机译:双气隙的优化设计与液冷涡流延迟器

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摘要

We propose a novel dual air-gaps and liquid-cooled eddy current retarder (ECR) based upon observing the (1) heat fade of the continuous braking and (2) large rotor weight of the traditional ECR for heavy vehicles. The new ECR maintains a low working temperature because of the liquid cooling stator structure. The eddy current distribution and braking torque characteristic curves are obtained by finite element method (FEM). Combining with 3-D FEM, Kriging approximation model is employed to optimize the structural parameters of rotor tooth. Based on the optimization method, the number of rotor teeth is determined to be 12. The braking torque increases by 14.8% after optimization and the rotor tooth weight decreases by 9.5%, which reduces the adverse influence on the vehicle transmission system. The bench test was carried out to verify the optimized calculation results and the braking torque can be stepless controlled by adjusting the excitation current. Compared with traditional ECR, the dual air-gaps and liquid-cooled ECR has better continuous braking performance and is more suitable for heavy vehicle auxiliary braking.
机译:我们提出了一种新型的双气隙和液冷涡流缓凝剂(ECR),基于观察连续制动的(1)热淡化和(2)重型车辆的传统ECR的大转子重量。由于液体冷却定子结构,新ECR保持了低工作温度。通过有限元方法(FEM)获得涡流分布和制动扭矩特性曲线。用3-D FEM组合,采用Kriging近似模型来优化转子齿的结构参数。基于优化方法,将转子齿的数量确定为12.在优化后,制动扭矩增加14.8%,转子齿重量减小9.5%,这降低了对车辆传输系统的不利影响。进行台式测试以验证优化的计算结果,并且通过调节激励电流可以是无耳来的制动扭矩。与传统ECR相比,双气隙和液冷ECR具有更好的连续制动性能,更适合重型车辆辅助制动。

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