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Optimization of condition-based maintenance strategy prediction for aging automotive industrial equipment using FMEA

机译:优化使用FMEA老化汽车工业设备的条件维护策略预测

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Maintenance plays a highly important role in achieving production targets and system performance. Electromechanical equipment and facility infrastructure within motor manufacturing industries are expected to perform at optimal efficiency during the operational phase of production. A major problem in the automotive production plan from motor industry statistics is associated with unexpected downtime, which is largely linked to aging equipment. During production downtime, much time is lost to fault finding, repairs, and replacement of faulty components within production lines. This transforms into low throughput in production, and performance gradually declines during the operational life cycle of the equipment. This paper presents an approach taken to prevent such instances in the automotive manufacturing industry, which considers an optimized condition-based maintenance approach to predict the condition of each component and assembly line using Failure-Mode-and-Effect-Analysis (FMEA). The condition-based performance level prediction is designed to help in formulating maintenance schedules and strategies that eliminate unplanned downtimes.
机译:维护在实现生产目标和系统性能方面发挥着非常重要的作用。电动机制造行业内的机电设备和设施基础设施预计在生产过程中以最佳效率开展。电动机行业统计数据的汽车生产计划中的一个主要问题与意外停机有关,这与老化设备有很大联系。在生产停机期间,大量时间损失了故障发现,维修和更换生产线内有缺陷的部件。这变换为生产的低吞吐量,并且在设备的运行生命周期期间性能逐渐下降。本文提出了一种采取的方法,以防止汽车制造业中的这种情况,这考虑了基于优化的条件的维护方法来预测使用失败模式和效应分析(FMEA)来预测每个组件和装配线的状况。基于条件的性能级别预测旨在帮助制定消除无计划的下降时间的维护时间表和策略。

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