Thermal error modeling of electric spindles based on cuckoo algorithm optimized Elman network

IF 2.9 3区 工程技术 Q2 AUTOMATION & CONTROL SYSTEMS
Ye Dai, Xin Wang, Zhaolong Li, Sai He, Baolei Yu, Xingwen Zhou
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引用次数: 0

Abstract

In order to improve the accuracy of the thermal error model of the electric spindle, a thermal error modeling method based on the optimized Elman neural network using the cuckoo algorithm is proposed. To analyze the thermal behavior of the electric spindle, an ANSYS analysis approach is utilized to create a temperature map. Based on the simulation analysis outcomes, an experimental platform is established to gather temperature data and thermal displacement data. The electric spindle temperature is optimized through the utilization of fuzzy cluster analysis and the Spearman rank correlation coefficient method in combination. The comparison between the established model and the Elman model and the GA-Elman model proves that the CS-Elman model has good prediction accuracy and stability.

Abstract Image

基于杜鹃算法优化埃尔曼网络的电主轴热误差建模
为了提高电主轴热误差模型的精度,提出了一种基于优化 Elman 神经网络的热误差建模方法,该方法使用杜鹃算法。为了分析电主轴的热行为,利用 ANSYS 分析方法创建了温度图。根据仿真分析结果,建立了一个实验平台来收集温度数据和热位移数据。结合使用模糊聚类分析和斯皮尔曼等级相关系数法,对电主轴温度进行了优化。通过将建立的模型与 Elman 模型和 GA-Elman 模型进行比较,证明 CS-Elman 模型具有良好的预测精度和稳定性。
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来源期刊
CiteScore
5.70
自引率
17.60%
发文量
2008
审稿时长
62 days
期刊介绍: The International Journal of Advanced Manufacturing Technology bridges the gap between pure research journals and the more practical publications on advanced manufacturing and systems. It therefore provides an outstanding forum for papers covering applications-based research topics relevant to manufacturing processes, machines and process integration.
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