无爪磁耦合球传动设计建模与机器学习辅助分析

Biruk A. Gebre, K. Pochiraju
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引用次数: 0

摘要

球驱动移动平台已经表明,球面车轮可以为地面车辆提供实质性的移动自由。然而,对于高加速度机动和坡度地形,精确和稳健的球面轮驱动是具有挑战性的。本文提出了一种磁耦合球传动的新设计。提出的设计利用内部支撑结构和磁耦合来消除对外部爪状支撑结构的需要。提出了一个设计模型,并用于评估滑移/无滑移操作窗口。由于模型的高维特性,设计空间使用随机生成的设计实例进行采样,数据用于训练支持向量分类机。主成分分析和特征重要性检测用于识别控制滑移行为和可行(无滑移)设计空间的关键参数。该分类表明,随着磁耦合力的加入和增大,可行设计空间增大。基于机器学习算法的结果,利用有限元分析设计工具和实验测试,设计了能够实现滚珠传动所需磁耦合力的球形磁耦合器阵列构型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modeling and Machine Learning Aided Analysis of a Claw-Less Magnetically Coupled Ball-Drive Design
Ball-driven mobility platforms have shown that spherical wheels can enable substantial freedom of mobility for ground vehicles. Accurate and robust actuation of spherical wheels for high acceleration maneuvers and graded terrains can, however, be challenging. In this paper, a novel design for a magnetically coupled ball drive is presented. The proposed design utilizes an internal support structure and magnetic coupling to eliminate the need for an external claw-like support structure. A model of the proposed design is developed and used to evaluate the slip/no-slip operational window. Due to the high-dimensional nature of the model, the design space is sampled using randomly generated design instances and the data is used to train a support vector classification machine. Principal component analysis and feature importance detection are used to identify critical parameters that control the slip behavior and the feasible (no-slip) design space. The classification shows an increase in the feasible design space with the addition of, and increase in, the magnetic coupling force. Based on the results of the machine learning algorithm, FEA design tools and experimental testing are used to design a spherical magnetic coupler array configuration that can realize the desired magnetic coupling force for the ball drive.
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