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System design and maintenance modelling for safety in extended life operation

机译:系统设计和维护建模,可延长使用寿命

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摘要

It is frequently the most cost effective option to operate systems and infrastructure over an extended life period rather than enter a new build programme. The condition and performance of existing systems operated beyond their originally intended design life are controlled through maintenance. For new systems there is the option to simultaneously develop the design and the maintenance processes for best effect when a longer life expectancy is planned. This paper reports a combined Petri net and Bayesian network approach to investigate the effects of design and maintenance features on the system performance. The method has a number of features which overcome limitations in traditionally used system performance modelling techniques, such as fault tree analysis, and also enhances the modelling capabilities. Significantly, for the assessment of aging systems, the new method avoids the need to assume a constant failure rate over the lifetime duration. In addition the assumption of independence between component failures events is no longer required. In comparison with the commonly applied system modelling techniques, this new methodology also has the capability to represent the maintenance process in far greater detail and as such options for: inspection and testing, servicing, reactive repair and component replacement based on condition, age or use can all be included. In considering system design options, levels of redundancy and diversity along with the component types selected can be investigated. All of the options for the design and maintenance can be incorporated into a single integrated Petri net and Bayesian network model and turned on and off as required to predict the effects of any combination of options selected. In addition this model has the ability to evaluate different system failure modes.\ud\udThe integrated Petri-net and Bayesian network approach is demonstrated through application to a remote un-manned wellhead platform from the oil and gas industry.
机译:通常,这是在延长生命周期内操作系统和基础架构而不是进入新的构建计划的最具成本效益的选择。通过维护可以控制超出其最初预期设计寿命运行的现有系统的状况和性能。对于新系统,当计划更长的使用寿命时,可以选择同时开发设计和维护过程以获得最佳效果。本文报告了Petri网和贝叶斯网络相结合的方法,以研究设计和维护功能对系统性能的影响。该方法具有许多功能,可以克服传统使用的系统性能建模技术(例如故障树分析)的局限性,并且可以增强建模能力。重要的是,对于评估老化系统,新方法避免了在整个寿命周期内假设恒定故障率的需要。另外,不再需要假设组件故障事件之间具有独立性。与常用的系统建模技术相比,该新方法还具有更详细地表示维护过程的能力,并且可以根据以下条件进行选择:检查和测试,维修,反应性维修以及根据状况,年龄或使用情况更换组件可以全部包括在内。在考虑系统设计方案时,可以研究冗余和多样性以及所选组件类型的级别。设计和维护的所有选项都可以合并到单个集成的Petri网和贝叶斯网络模型中,并根据需要打开和关闭以预测所选选项的任意组合的效果。此外,该模型还具有评估不同系统故障模式的能力。\ ud \ ud通过将其应用于石油和天然气行业的远程无人井口平台,展示了集成的Petri-net和贝叶斯网络方法。

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