The use of bond graph modelling in polymer electrolyte membrane fuel cell fault diagnosis

A. Vasilyev, J. Andrews, L. Mao, L. Jackson
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Abstract

© 2018 Taylor & Francis Group, London. As a possible alternative energy source, hydrogen fuel cells, especially Polymer Electrolyte Membrane (PEM) fuel cells, have received much more attention in the last few decades, which have already been equipped in many applications. A series of studies have been devoted to PEM fuel cell fault diagnosis to ensure its reliability during its lifetime, but due to the complexity of PEM fuel cell systems and incomplete PEM fuel cell test protocols, it is difficult to test various PEM fuel cell failure modes, thus the performance of fault diagnostic techniques cannot be fully investigated. On this basis, it is necessary to develop a reliable PEM fuel cell model with capability of simulating various PEM fuel cell faults. In this study, a hybrid model is developed to represent the behavior of PEM fuel cells in both continuous and discrete-time domains. With a continuous-time domain sub-model, various aspects of PEM fuel cell behavior can be simulated, including fluid, thermal, and electro-chemical dynamics. Moreover, the PEM fuel cell failure modes are implemented with stochastic Petri nets in the discrete-time domain. Based on the developed hybrid model, various PEM fuel cell failure modes can be simulated and their effects on the system performance can be observed. With the simulated data under different conditions, the performance of fault diagnostic techniques can be better evaluated by studying their performance in different failure mode scenarios.
键合图建模在聚合物电解质膜燃料电池故障诊断中的应用
©2018 Taylor & Francis Group,伦敦。作为一种可能的替代能源,氢燃料电池,特别是聚合物电解质膜(PEM)燃料电池,在过去的几十年里受到了越来越多的关注,并在许多领域得到了应用。为了保证PEM燃料电池在使用寿命内的可靠性,人们对PEM燃料电池的故障诊断进行了一系列的研究,但由于PEM燃料电池系统的复杂性和不完善的PEM燃料电池测试协议,很难对PEM燃料电池的各种故障模式进行测试,从而无法全面研究故障诊断技术的性能。在此基础上,有必要建立一个可靠的PEM燃料电池模型,能够模拟PEM燃料电池的各种故障。在这项研究中,建立了一个混合模型来表示PEM燃料电池在连续和离散时间域的行为。使用连续时域子模型,可以模拟PEM燃料电池行为的各个方面,包括流体,热和电化学动力学。此外,采用离散时域随机Petri网实现了PEM燃料电池的失效模式。基于所建立的混合模型,可以模拟PEM燃料电池的各种失效模式,并观察其对系统性能的影响。利用不同工况下的仿真数据,研究故障诊断技术在不同故障模式下的性能,可以更好地评价故障诊断技术的性能。
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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