Cost-Benefit Analysis using Modular Dynamic Fault Tree Analysis and Monte Carlo Simulations for Condition-based Maintenance of Unmanned Systems

Joseph M. Southgate, Katrina Groth, Peter Sandborn, Shapour Azarm
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Abstract

Recent developments in condition-based maintenance (CBM) have helped make it a promising approach to maintenance cost avoidance in engineering systems. By performing maintenance based on conditions of the component with regards to failure or time, there is potential to avoid the large costs of system shutdown and maintenance delays. However, CBM requires a large investment cost compared to other available maintenance strategies. The investment cost is required for research, development, and implementation. Despite the potential to avoid significant maintenance costs, the large investment cost of CBM makes decision makers hesitant to implement. This study is the first in the literature that attempts to address the problem of conducting a cost-benefit analysis (CBA) for implementing CBM concepts for unmanned systems. This paper proposes a method for conducting a CBA to determine the return on investment (ROI) of potential CBM strategies. The CBA seeks to compare different CBM strategies based on the differences in the various maintenance requirements associated with maintaining a multi-component, unmanned system. The proposed method uses modular dynamic fault tree analysis (MDFTA) with Monte Carlo simulations (MCS) to assess the various maintenance requirements. The proposed method is demonstrated on an unmanned surface vessel (USV) example taken from the literature that consists of 5 subsystems and 71 components. Following this USV example, it is found that selecting different combinations of components for a CBM strategy can have a significant impact on maintenance requirements and ROI by impacting cost avoidances and investment costs.
利用模块化动态故障树分析和蒙特卡罗模拟对无人系统进行基于状态的维护的成本效益分析
基于状态的维护(CBM)的最新发展使其成为避免工程系统维护成本的一种可行方法。通过根据部件的故障或时间状况进行维护,有可能避免系统停机和维护延误所造成的巨大成本。然而,与其他可用的维护策略相比,CBM 需要很大的投资成本。投资成本需要用于研究、开发和实施。尽管 CBM 有可能避免大量的维护成本,但其高昂的投资成本还是让决策者对其实施犹豫不决。本研究是第一篇试图解决为无人系统实施 CBM 概念而进行成本效益分析(CBA)问题的文献。本文提出了一种进行成本效益分析的方法,以确定潜在 CBM 战略的投资回报率(ROI)。CBA 试图根据与维护多组件无人系统相关的各种维护要求的差异,对不同的 CBM 策略进行比较。建议的方法使用模块化动态故障树分析(MDFTA)和蒙特卡罗模拟(MCS)来评估各种维护要求。我们以文献中的一艘无人水面舰艇(USV)为例,对所提出的方法进行了演示,该艇由 5 个子系统和 71 个组件组成。根据这个 USV 例子,我们发现为 CBM 策略选择不同的组件组合会对维护要求和投资回报率产生重大影响,因为这会影响成本避免和投资成本。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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