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Optimal structure of series system with 1-out-of-n warm standby subsystems performing operation and rescue functions

机译:n个热备用子系统中有一个执行操作和救援功能的串联系统的最佳结构

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This paper models an operation and rescue system where upon the failure of the operation system (if occurring), the rescue system is immediately activated to prevent the entire system loss or destruction. Both operation and rescue systems are series structures composed of 1 out-of-n warm standby subsystems. Different subsystems may have different redundancy levels, and components within each subsystem can be of heterogeneous types with different lifetime distributions and costs (due to purchasing from different vendors, different exploitation history or different work conditions). The operation system failure detection and switching system is not fully reliable. A numerical algorithm is first proposed to evaluate the mission success probability and survivability of the considered system. Further, we formulate and solve the optimal component allocation and sequencing problem (CASP), which finds the set of components from a pool of available component types for each warm standby subsystem and their activation sequence minimizing the total cost. The cost function optimized covers costs associated with mission failure, system loss or destruction, and system equipment. A chemical reactor example is provided to demonstrate the application of the proposed methodology as well as effects of different parameters on the evaluation and optimization results. A large example containing ten operation subsystems and four rescue subsystems is further analyzed to demonstrate computational efficiency of the proposed methodology. Example solutions show that the proposed methodology can facilitate a cost-effective design and operation of the considered operation/rescue system while achieving a balance between mission success probability and system survivability.
机译:本文对操作系统进行了建模,其中在操作系统发生故障(如果发生)时,立即启动救援系统以防止整个系统丢失或破坏。操作系统和救援系统都是由n个热备用子系统中的1个组成的串联结构。不同的子系统可能具有不同的冗余级别,并且每个子系统中的组件可以是具有不同生命周期分布和成本(由于从不同供应商处购买,不同的开发历史或不同的工作条件)的异构类型。操作系统故障检测和切换系统不完全可靠。首先提出了一种数值算法来评估所考虑系统的任务成功概率和生存能力。此外,我们制定并解决了最佳组件分配和排序问题(CASP),该问题从每个热备用子系统的可用组件类型池中找到组件集,并通过激活序列将总成本降至最低。优化的成本函数涵盖与任务失败,系统丢失或破坏以及系统设备相关的成本。提供了一个化学反应器示例,以演示所提出方法的应用以及不同参数对评估和优化结果的影响。进一步分析了包含十个操作子系统和四个救援子系统的大型示例,以证明所提出方法的计算效率。示例解决方案表明,所提出的方法可以促进所考虑的操作/救援系统的经济高效的设计和操作,同时在任务成功概率和系统生存能力之间取得平衡。

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