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首页> 外文期刊>Mechatronics: The Science of Intelligent Machines >Early integration of safety to the mechatronic system design process by the functional failure identification and propagation framework
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Early integration of safety to the mechatronic system design process by the functional failure identification and propagation framework

机译:通过功能故障识别和传播框架将安全早期集成到机电系统设计过程中

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摘要

The research goal of this paper is to introduce a risk analysis methodology that can be applied at the early concept design phase, whose purpose is to identify fault propagation paths that cross disciplinary boundaries, and determine the combined impact of several faults in software-based automation subsystems, electric subsystems and mechanical subsystems. Specifically, the Functional Failure Identification and Propagation (FFIP) analysis framework is proposed to perform a simulation-based analysis of functional failure propagation. The focus is on risk assessment, the earliest activities of the safety process, in which hazards are identified and safety requirements are derived. It is argued that current risk assessment methods are not sufficient for concurrent integration of the safety process to the design process of a complex mechatronic system. In order to facilitate the integration of risk assessment to such systems at the earliest design stages, the design is expressed with syntax and semantics that is able to describe the propagation of failures throughout the system and especially across the boundaries of the mechatronic domains. A boiling water nuclear reactor (limited to the reactor core and steam outlets) is used as a case study. The results demonstrate the capability to handle several fault propagation paths in one scenario for hazard identification at the early, functional, design stage. Specifically, it is shown that FFIP is able to identify fault propagation paths that cross disciplinary boundaries, and which in turn is able to determine the combined impact of several faults in software-based automation subsystems, electric subsystems and mechanical subsystems. The impact is expressed in degradation or loss of safety related functions.
机译:本文的研究目标是介绍一种可用于早期概念设计阶段的风险分析方法,其目的是确定跨越学科边界的故障传播路径,并确定基于软件的自动化中若干故障的综合影响子系统,电气子系统和机械子系统。具体而言,提出了功能故障识别和传播(FFIP)分析框架,以执行基于仿真的功能故障传播分析。重点是风险评估,这是安全过程的最早活动,可以识别危险并得出安全要求。有人认为,当前的风险评估方法不足以将安全过程同时集成到复杂机电系统的设计过程中。为了在最早的设计阶段就将风险评估集成到此类系统中,该设计用语法和语义表示,该语法和语义能够描述故障在整个系统中的传播,尤其是跨机电一体化领域的边界。作为案例研究,使用了沸水核反应堆(仅限于反应堆堆芯和蒸汽出口)。结果表明,在早期的功能设计阶段,可以在一种情况下处理几种故障传播路径,以进行危害识别。具体而言,表明FFIP能够识别跨学科边界的故障传播路径,进而能够确定基于软件的自动化子系统,电气子系统和机械子系统中若干故障的综合影响。影响表现为安全相关功能的降级或丧失。

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