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Identification and novel adaptive fuzzy control of nonlinear system for PEMFC stack
Authors:WEI Dong  XU Hong  ZHU Xin-jian
Abstract:The operating temperature of a proton exchange membrane fuel cell stack is a very important control parameter. It should be controlled within a specific range, however, most of existing PEMFC mathematical models are too complicated to be effectively applied to on-line control. In this paper, input-output data and operating experiences will be used to establish PEMFC stack model and operating temperature control system. An adaptive learning algorithm and a nearest-neighbor clustering algorithm are applied to regulate the parameters and fuzzy rules so that the model and the control system are able to obtain higher accuracy. In the end, the simulation and the experimental results are presented and compared with traditional PID and fuzzy control algorithms.
Keywords:proton exchange membrane fuel cell (PEMFC)  adaptive neural-networks fuzzy infer system (ANFIS)  adaptive neural-network learning algorithm (ANA)  nearest-neighbor clustering algorithm (NCA)
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