Defect identification in electro-mechanical assembly using finite element method and modal assurance criterion

Rishabh Singh, Amogh R. Nalawade, Matthew Pieczko
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Abstract

Globally automotive industry is going through a critical transition from gasoline vehicle to electric and hybrid electric vehicle. These changes have challenged industry with completely different vehicle driveline architecture. These systems have more electro-mechanical components which need to be critically designed for the vibration, thermal, structural and shock related requirements. Design for vibration endurance has been a major requirement and robust matured design of these systems may take several design iterations. Finite element models give us freedom to simulate and analyze design performance before actual prototype building. Simulation results can be predicted more accurately if model fidelity is strong enough. To have strong model fidelity, modal test data correlation is an important step towards robust design. In this paper, study on Test-FE model correlation has been performed for an electro-mechanical assembly using Modal Assurance Criterion. During the entire correlation study, it was assumed that the DUT was undamaged and entire focus of the work was towards improving FE model fidelity. But obtained results pointed the inconsistency between the FE model and test results at a specific region which later has been captured as a defect in the DUT. The results of this paper can help in identifying anomalies in actual product samples and in taking decision on testing other samples.
基于有限元法和模态保证准则的机电装配缺陷识别
全球汽车工业正经历着从汽油汽车到电动汽车和混合动力汽车的关键转变。这些变化给汽车行业带来了全新的动力系统架构挑战。这些系统有更多的机电元件,需要针对振动、热、结构和冲击相关要求进行严格设计。抗振性设计一直是主要要求,而这些系统的稳健成熟设计可能需要多次设计迭代。有限元模型使我们能够在实际原型构建之前自由地模拟和分析设计性能。如果模型保真度足够高,可以更准确地预测仿真结果。为了获得较高的模型保真度,模态试验数据相关性是实现稳健设计的重要步骤。本文采用模态保证准则对某机电装配进行了试验-有限元模型相关性研究。在整个相关研究中,假设DUT没有损坏,整个工作的重点是提高有限元模型的保真度。但得到的结果指出了有限元模型与试验结果在特定区域的不一致,这后来被捕获为DUT的缺陷。本文的结果可以帮助识别实际产品样品中的异常,并在测试其他样品时做出决定。
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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