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Reliability optimization of a non-repairable compound series-parallel system

机译:不可修复复合串并联系统的可靠性优化

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Product reliability and manufacturing cost are two essential factors in increasing competition within industries. Most studies on predict product or system reliability are based on failure rate models, and assume components of reliability system are independent of one another. The compatibility among components is thus ignored, increasing erroneous in predictions of the system reliability. This study focusing primarily on a non-repairable compound series-parallel system, determines the optimal parameter settings for each component using the dual response surface method (I)RSM), simultaneously considering the system reliability and manufacturing cost. The Box-Behnken Design (BBD) from response surface methodology (RSM) is used to produce the design, and the experimental data, including system reliability and manufacturing cost, are gathered using Monte Carlo simulation. The optimal parameter setting associated with system components is determined to obtain a highly reliable and robust system, using DRSM. Accordingly, the significance of interaction effects is evaluated to elucidate the compatibility among components. The proposed approach can not only accurately predict the system reliability, but also let customer requirements be incorporated into the reliability system, and reduce substantially the time taken to develop of a new product.
机译:产品可靠性和制造成本是加剧行业内部竞争的两个重要因素。关于预测产品或系统可靠性的大多数研究都基于故障率模型,并假设可靠性系统的各个组件彼此独立。因此忽略了组件之间的兼容性,从而在系统可靠性的预测中增加了错误。这项研究主要侧重于不可修复的复合串并联系统,使用双重响应面法(I)RSM)为每个组件确定最佳参数设置,同时考虑了系统可靠性和制造成本。使用响应面方法(RSM)的Box-Behnken设计(BBD)进行设计,并使用Monte Carlo仿真收集包括系统可靠性和制造成本在内的实验数据。使用DRSM确定与系统组件关联的最佳参数设置,以获得高度可靠且强大的系统。因此,评估了相互作用效应的重要性以阐明组分之间的相容性。所提出的方法不仅可以准确地预测系统可靠性,而且可以将客户需求纳入可靠性系统中,并大大减少了开发新产品所需的时间。

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