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Health status assessment for the feed system of CNC machine tool based on simulation

机译:基于仿真的数控机床进给系统健康状态评估

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This paper proposes an approach of health assessment based on the ADAMS simulation for the feed system of the CNC machine tool. Firstly, the dynamics simulation model of the feed system has been built to collect the large number of the motion parameters, and to calculate the related performance parameters according to these motion parameters. Secondly, the BP neural network model is built for the performance mapping model between the structural parameters and the related performance parameters, which can provide a large number of reference data for health assessment of the CNC machine tool. Then the Hidden Markov Chain model is used to establish a health status assessment model, which has the observation sequence of multi-state and multi-performance. Based on the HMC model, the algorithms are used to solve the health status probability for the feed system of the CNC machine tool. Finally, a case study is discussed to verify the method of health status assessment.
机译:本文提出了一种基于ADAMS仿真的数控机床进给系统健康评估方法。首先,建立了进给系统的动力学仿真模型,以收集大量的运动参数,并根据这些运动参数计算相关的性能参数。其次,为结构参数与相关性能参数之间的性能映射模型建立了BP神经网络模型,可以为数控机床的健康评估提供大量参考数据。然后利用隐马尔可夫链模型建立健康状态评估模型,该模型具有多状态,多性能的观察序列。该算法基于HMC模型,用于求解CNC机床进给系统的健康状态概率。最后,讨论了一个案例研究,以验证健康状况评估方法。

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