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首页> 外文期刊>Transactions of the Canadian Society for Mechanical Engineering >DESIGN OPTIMIZATION OF MOTORIZED SPINDLE BEARING LOCATIONS BASED ON DYNAMIC MODEL AND GENETIC ALGORITHM
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DESIGN OPTIMIZATION OF MOTORIZED SPINDLE BEARING LOCATIONS BASED ON DYNAMIC MODEL AND GENETIC ALGORITHM

机译:基于动态模型和遗传算法的电动主轴轴承位置设计优化

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摘要

In this paper, an optimization method based on dynamic model and genetic algorithm is proposed for the design of motorized spindle bearing locations. Firstly, the dynamic model of motorized spindles is developed based on the Timoshenko beam model and Jones' quasi-static bearing model. Then, the developed dynamic model is validated with the hammer response test on a motorized grinding spindle system. Finally, the design optimization method is proposed by combining the dynamic model with genetic algorithm. In order to obtain higher rigidity, the optimal locations of bearings on the spindle are calculated with the genetic algorithm. The results show that the first mode natural frequency (FMNF) of the system increases by 12.38% than the original value after optimization.
机译:本文提出了一种基于动态模型和遗传算法的优化方法,用于设计电动主轴轴承位置。 首先,基于Timoshenko梁模型和琼斯的准静态轴承模型开发了电动主轴动态模型。 然后,通过电动磨削主轴系统的锤子响应试验验证开发的动态模型。 最后,通过将动态模型与遗传算法组合来提出设计优化方法。 为了获得更高的刚性,用遗传算法计算主轴上的轴承的最佳位置。 结果表明,在优化后,系统的第一模式自固定频率(FMNF)增加了12.38%而不是原始值。

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