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Minimizing the Discrepancy between Simulated and Historical Failures in Turbine Engines: A Simulation-Based Optimization Method

机译:最大限度地减少涡轮发动机中模拟和历史故障之间的差异:基于仿真的优化方法

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摘要

The reliability modeling of a module in a turbine engine requires knowledge of its failure rate, which can be estimated by identifying statistical distributions describing the percentage of failure per component within the turbine module. The correct definition of the failure statistical behavior per component is highly dependent on the engineer skills and may present significant discrepancies with respect to the historical data. There is no formal methodology to approach this problem and a large number of labor hours are spent trying to reduce the discrepancy by manually adjusting the distribution’s parameters. This paper addresses this problem and provides a simulation-based optimization method for the minimization of the discrepancy between the simulated and the historical percentage of failures for turbine engine components. The proposed methodology optimizes the parameter values of the component’s failure statistical distributions within the component’s likelihood confidence bounds. A complete testing of the proposed method is performed on a turbine engine case study. The method can be considered as a decision-making tool for maintenance, repair, and overhaul companies and will potentially reduce the cost of labor associated to finding the appropriate value of the distribution parameters for each component/failure mode in the model and increase the accuracy in the prediction of the mean time to failures (MTTF).
机译:在涡轮发动机的模块的可靠性建模需要它的故障率,这可以通过识别描述涡轮模块内故障的每个分量的比例的统计分布来估计的知识。每个组件的故障统计行为的正确定义是高度依赖于工程师的技能和可能出现显著差异相对于历史数据。没有正式的方法来处理这个问题和大量的劳动时间都花在试图通过手动调节分配的参数,以减少差异。本文解决了这个问题,并提供用于模拟和用于涡轮发动机部件的故障的历史百分比之间的差异最小化基于仿真的优化方法。所提出的方法优化组件的可能性置信区间内组件的故障统计分布的参数值。是在涡轮发动机为例进行了该方法的一个完整的测试。该方法可以被认为是用于维护,修理和检修公司决策工具和将有可能减少劳动力的相关寻找分布参数的适当的值对于模型中的每个组件/故障模式的成本和提高精度在平均时间预测到故障(MTTF)。

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