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Extended block replacement policies with mission durations and maintenance triggering approaches

机译:具有任务持续时间和维护触发方法的扩展块替换政策

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When the missions arrive, it is not feasible to shut down engineering systems for preventive maintenance policies. Otherwise, it would cause major economic losses and even unimaginable accident. Hence, it is interesting and significative to provide appropriate preventive maintenance policies with mission durations to improve the system reliability and maintainability. For the electronic systems consisting of a block or group of units whose ages are not easy observed and only failures are known, we firstly extend the block replacement policy with random arrival time of mission durations. As a required reliability is needed at the mission time and no replacement can be done during the mission durations preventively. From the points of cost and maintainability, two maintenance triggering approaches, i.e., replacement first and replacement last, are discussed in analytical ways, respectively. Furthermore, three replacement policies are compared theoretically and numerically with optimum mission durations and planned replacement time. In addition, a case illustration in maintaining the electronic systems of active phased array radar (APAR) is given when the arrival time of mission durations follows an exponential distribution and the failure time of electronic systems has a gamma distribution.
机译:当任务到达时,关闭工程系统以获得预防性维护政策是不可行的。否则,它会导致主要的经济损失甚至难以想象的事故。因此,提供适当的预防性维护策略,以提高系统可靠性和可维护性,提供适当的预防性维护政策。对于由年龄不容易观察的块或单位组组成的电子系统,并且只知道失败,我们首先通过任务持续时间的随机到达时间扩展块替换策略。在任务时间需要所需的可靠性,并且在任务持续时间内无法进行更换。从成本和可维护性的点,分别以分析方式讨论了两个维护触发方法,即首先更换和更换,以分析方式讨论。此外,三个替换政策在自己和数字上与最佳任务持续时间和计划的更换时间进行比较。另外,当任务持续时间的到达时间遵循指数分布时,给出在维护有源相位阵列雷达(APAR)的电子系统时的案例图示,并且电子系统的失效时间具有伽马分布。

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