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SERVICE-LIFE ASSESSMENT OF COMPLEX DYNAMIC SYSTEMS UNDER INTERVAL UNCERTAINTY BASED ON BAYESIAN NETWORKS

机译:基于贝叶斯网络的间隔不确定性下复杂动态系统的服务寿命评估

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Service-life is a widely used reliability index in reliability engineering. For a complex dynamic system for which whole system tests are limited, and there is insufficient information to determine the distribution function of reliability models. Fortunately, the boundaries of lifetime variable can be obtained, which can be incorporated through the theory of interval uncertainty. In this study, a service-life assessment method for complex dynamic systems under interval uncertainty is introduced based on Bayesian networks (BN). Firstly, a dynamic fault tree (DFT) model is built for a system. Based on the comprehensive integration of test data, field data, design data and engineering experience, the lifetime of system units are expressed as interval numbers. Then, a coefficient of variation (COV) method is employed to determine the parameters of life distributions. Finally, the BN method is used to estimate the mean life of the example system, and the service-life of this system is assessed as well. The presented method can be easily used in engineering practice for service-life evaluation of complex dynamic systems under interval uncertainty, where lifetime data is limited.
机译:使用寿命是可靠性工程中广泛使用的可靠性指标。对于整个系统测试有限的复杂动态系统,并且信息不足以确定可靠性模型的分布功能。幸运的是,可以获得寿命变量的界限,其可以通过间隔不确定性理论结合。在本研究中,基于贝叶斯网络(BN)引入了间隔不确定性下复杂动态系统的使用寿命评估方法。首先,为系统构建动态故障树(DFT)模型。基于测试数据的全面集成,现场数据,设计数据和工程经验,系统单元的寿命表示为间隔数。然后,采用变形系数(COV)方法来确定生命分布的参数。最后,使用BN方法来估计示例系统的平均寿命,并且还评估该系统的使用寿命。在间隔不确定性下,呈现的方法可以很容易地用于复杂动态系统的使用寿命评估,其中寿命数据有限。

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