A Step-by-Step Methodology for Obtaining the Reliability of Building Microgrids Using Fault TreeAnalysis

Gustavo A. Patiño-Álvarez, Johan S. Arias-Pérez, Nicolás Muñoz-Galeano
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Abstract

This paper introduces an improved methodology designed to address a practical deficit of existing methodologies by incorporating circuit-level analysis in the assessment of building microgrid reliability. The scientific problem at hand involves devising a systematic approach that integrates circuit modeling, Probability Density Function (PDF) selection, formulation of reliability functions, and Fault Tree Analysis (FTA) tailored specifically for the distinctive features of building microgrids. This method entails analyzing inter-component relationships to gain comprehensive insights into system behavior. By harnessing the circuit models and theoretical framework proposed herein, precise estimations of microgrid failure rates can be attained. To complement this approach, we propose a thorough investigation utilizing reliability curves and importance measures, providing valuable insights into individual device failure probabilities over time. Such time-based analysis plays a crucial role in proactively identifying potential failures and facilitating efficient maintenance planning for microgrid devices. We demonstrate the application of this methodology to the University of Antioquia (UdeA) Microgrid, a low-voltage system comprising critical components such as solar panels, microinverters, inverters/chargers, batteries, and charge controllers.
利用故障树分析法逐步获取楼宇微电网可靠性的方法
本文介绍了一种改进的方法,旨在通过将电路级分析纳入建筑微电网可靠性评估,解决现有方法的实际不足。当前的科学问题包括设计一种系统方法,将电路建模、概率密度函数 (PDF) 选择、可靠性函数表述和故障树分析 (FTA) 整合在一起,专门针对楼宇微电网的显著特点进行定制。这种方法需要分析组件间的关系,以全面了解系统行为。利用本文提出的电路模型和理论框架,可以精确估算微电网的故障率。作为对这一方法的补充,我们建议利用可靠性曲线和重要度量进行深入研究,从而对单个设备随时间变化的故障概率提供有价值的见解。这种基于时间的分析在主动识别潜在故障和促进微电网设备的高效维护规划方面发挥着至关重要的作用。我们在安蒂奥基亚大学(UdeA)微电网中演示了这一方法的应用,该微电网是由太阳能电池板、微型逆变器、逆变器/充电器、电池和充电控制器等关键部件组成的低压系统。
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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