首页> 外文会议>ASME Pressure Vessels amp;amp;amp; Piping Conference >A FRAMEWORK FOR UNDERGROUND GAS STORAGE SYSTEM RELIABILITY ASSESSMENT CONSIDERING FUNCTIONAL FAILURE OF REPAIRABLE COMPONENTS
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A FRAMEWORK FOR UNDERGROUND GAS STORAGE SYSTEM RELIABILITY ASSESSMENT CONSIDERING FUNCTIONAL FAILURE OF REPAIRABLE COMPONENTS

机译:考虑可修复部件功能故障的地下储气系统可靠性评估框架

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As one of the most important means of nature gas peak shaving and energy strategic reserving, the reliability assessment of underground gas storage (UGS) system is necessary. Although many methods have been proposed for system reliability assessment, the functional heterogeneity of components and the influence of hydrothermal parameters on system reliability are neglected. To overcome these problems, we propose and apply a framework to assess UGS system reliability. Combining two-layer Monte Carlo simulation (MCS) technique with hydrothermal calculation, the framework integrates dynamic functional reliability of components into system reliability evaluation. To reflect the state transition process of repairable components and their impact on system reliability, the Markov model is introduced at system level. In order to improve the calculation speed, artificial neural network model based on off-line MCS is established to replace the on-line MCS at components level. The proposed framework is applied to the reliability assessment and operation optimization of an UGS under different operation conditions. Compared with the traditional single-layer MCS method, the proposed method can not only reflect the variation of UGS reliability with hydrothermal parameters and operation time, but also can improve evaluation efficiency significantly.
机译:作为大自然气体峰值剃须和能源战略保留的最重要手段之一,需要地下储气储存(UGS)系统的可靠性评估。虽然已经提出了许多方法来进行系统可靠性评估,但忽略了组件的功能异质性和水热参数对系统可靠性的影响。为了克服这些问题,我们提出并应用了一个框架来评估UGS系统的可靠性。将双层蒙特卡罗仿真(MCS)技术与水热计算相结合,该框架将组件的动态功能可靠性集成到系统可靠性评估中。为了反映可修复部件的状态过渡过程及其对系统可靠性的影响,Markov模型在系统级引入。为了提高计算速度,建立基于离线MCS的人工神经网络模型来替换组件级别的线上MCS。所提出的框架应用于不同操作条件下UGS的可靠性评估和操作优化。与传统的单层MCS方法相比,所提出的方法不仅可以反映与水热参数和操作时间的UGS可靠性的变化,而且还可以显着提高评估效率。

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