Sensorless compensation system for thermal deformations of ball screws in machine tools drives

M. Kowal
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引用次数: 5

Abstract

Abstract The article presents constructional, technological and operational issues associated with the compensation of thermal deformations of ball screw drives. Further, it demonstrates the analysis of a new sensorless compensation method relying on coordinated computation of data fed directly from the drive and the control system in combination with the information pertaining to the operational history of the servo drive, retrieved with the use of an artificial neural networks (ANN)-based learning system. Preliminary ANN-based models, developed to simulate energy dissipation resulting from the friction in the screw-cap assembly and convection of heat are expounded upon, as are the processes of data selection and ANN learning. In conclusion, the article presents the results of simulation studies and preliminary experimental evidence confirming the applicability of the proposed method, efficiently compensating for the thermal elongation of the ball screw in machine tool drives.
机床传动滚珠丝杠热变形无传感器补偿系统
摘要本文介绍了滚珠丝杠传动热变形补偿的结构、技术和操作问题。此外,它展示了一种新的无传感器补偿方法的分析,该方法依赖于直接从驱动器和控制系统馈送的数据的协调计算,并结合与伺服驱动器的运行历史相关的信息,使用基于人工神经网络(ANN)的学习系统检索。本文阐述了基于人工神经网络的螺旋盖组件摩擦耗散和热对流模拟模型,以及数据选择和人工神经网络学习的过程。最后,本文给出了仿真研究的结果和初步的实验证据,证实了该方法的适用性,有效地补偿了机床传动中滚珠丝杠的热伸长。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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