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Applying Modeling and Simulation to Evaluate Field Failure Modes: a Case Study in Starter Drive Application

机译:应用建模与仿真评估现场故障模式 - 以入门驱动应用为例

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In response to several field failures of a specific model of starter drive - which is a component of starter motors used in Internal Combustion Engines (ICEs), - for application in heavy duty vehicles, a systematic Root Cause Analysis (RCA) was conducted in warranty returned parts. Controlled laboratory tests were not able to successfully replicate the failure mode. The failure caused the disassemble of the starter drive and it has become a difficult task to determine the root cause and propose solutions to fix the problem, therefore a deeper analysis of the warranty data was carried out by using both finite element analysis (FEA) and lumped parameter dynamic modeling and simulation. The FEA model was used to check potential weakness of the structural design that could point out the failure cause. The dynamic model was developed in order to evaluate effects such as impact loads, much higher than that expected by the static analysis, by consequence of the high relative velocity and resulting accelerations of components in contact during the short period of time in which the startup process of ICEs occurs. A potential root cause was determined and experimental pull tests and engine bench durability cycle tests confirmed the accuracy of the simulation models. Hence, the use of simulation tools can be considered as important aid when non-obvious field failure analysis are needed to speed up the implementation of a more reliable and robust design. Moreover this strategy minimizes well known deleterious consequences generated by recurring field failures that remains for a long time without an effective solution.
机译:响应于起动器驱动器的特定模型的几个现场故障 - 这是内燃机中使用的起动电动机的组件(ICES), - 用于重型车辆的应用,在保修中进行系统根本原因分析(RCA)返回部分。受控实验室测试无法成功复制故障模式。失败导致启动器驱动器的拆卸,确定根本原因并提出解决问题的解决方案已成为一个困难的任务,因此通过使用两个有限元分析(FEA)和对保修数据进行更深入的分析。总体参数动态建模与仿真。 FEA模型用于检查可能指出故障原因的结构设计的潜在弱点。开发动态模型以评估诸如冲击载荷的效果,远远高于静态分析的静态分析,从而在启动过程中的短时间内接触中的组件的加速度发生谢。确定了潜在的根本原因,并确定了实验的拉动试验和发动机台阶耐久性循环测试证实了模拟模型的准确性。因此,当需要使用仿真工具时,当需要进行非明显的现场故障分析来加速更可靠和稳健的设计时,可以被视为重要的辅助。此外,该策略最大限度地减少了通过经常性的现场故障而产生的众所周知的有害后果,而无需有效解决方案。

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