Creepage Distance Estimation of Hairpin Stators Using 3D Feature Extraction

Niklas Grambow, L. Hinz, C. Bonk, J. Krüger, E. Reithmeier
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Abstract

The increasing demand for electric drives challenges conventional powertrain designs and requires new technologies to increase production efficiency. Hairpin stator manufacturing technology enables full automation, and quality control within the process is particularly important for increasing the process capacity, avoiding rejects and for safety-related aspects. Due to the complex, free-form geometries of hairpin stators and the required short inspection times, inline reconstruction and accurate quantification of relevant features is of particular importance. In this study, we propose a novel method to estimate the creepage distance, a feature that is crucial regarding the safety standards of hairpin stators and that could be determined neither automatically nor accurately until now. The data acquisition is based on fringe projection profilometry and a robot positioning system for a highly complete surface reconstruction. After alignment, the wire pairs are density-based clustered so that computations can be parallelized for each cluster, and an analysis of partial geometries is enabled. In several further steps, stripping edges are segmented automatically using a novel approach of spatially asymmetric windowed local surface normal variation, and the creepage distances are subsequently estimated using a geodesic path algorithm. Finally, the approach is examined and discussed for an entire stator, and a methodology is presented that enables the identification of implausible estimated creepage distances.
基于三维特征提取的发夹定子爬电距离估算
日益增长的电力驱动需求挑战了传统的动力系统设计,需要新的技术来提高生产效率。发夹定子制造技术可以实现完全自动化,过程中的质量控制对于提高工艺能力,避免废品和安全相关方面尤为重要。由于发夹定子的复杂、自由几何形状和所需的短检测时间,在线重建和相关特征的准确量化尤为重要。在这项研究中,我们提出了一种新的方法来估计爬电距离,这是一个对发夹定子的安全标准至关重要的特征,目前还无法自动准确地确定。数据采集是基于条纹投影轮廓术和一个高度完整的表面重建机器人定位系统。对齐后,导线对是基于密度的集群,以便可以对每个集群并行化计算,并启用部分几何形状的分析。在接下来的几个步骤中,采用一种新的空间不对称窗口局部表面法向变化方法自动分割剥离边缘,随后使用测地线路径算法估计爬电距离。最后,对整个定子的方法进行了检验和讨论,并提出了一种方法,可以识别不合理的估计爬电距离。
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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