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Model for optimal management of the cooling system of a fuel cell-based combined heat and power system for developing optimization control strategies

机译:用于开发优化控制策略的基于燃料电池的热电联产系统冷却系统优化管理的模型

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This paper is focused on the development of a model for achieving optimal control of the cooling system of a polymer electrolyte membrane fuel cell (PEMFC)-based cogeneration system. This model is developed to help facilitate the development and application of control strategies to maximize the energy efficiencies of PEMFCs, so that the costs associated with electric and thermal generation can be reduced. The results of experimental analysis conducted using an actualPEMFC-based combined heat and power system that can produce 600 W of electrical power are presented. Then, the development and validation of a simulation model of the experimental system are discussed. This model is based on a combination of an artificial neural network (ANN) with a non-linear autoregressive exogenous configuration and a 3D lookup table (LUT) that updates the data input into the ANN as a function of the electrical power demand and the flow rate and input temperature of the coolant fluid. Due to the nonlinearity of the data contained in the 3D LUT, an algorithm based on linear interpolation and shape-preserving piecewise cubic Hermite dynamic functions is implemented to interpolate the data in 3D. As a result, the model can predict the outlet temperature of the coolant fluid and hydrogen consumption rate of the PEMFC as functions of the inlet temperature and flow rate of the coolant fluid and the electrical power demand. The proposed model exhibits high accuracy and can be used as a black box for the development of new optimization strategies.
机译:本文致力于开发一种模型,以实现对基于聚合物电解质膜燃料电池(PEMFC)的热电联产系统的冷却系统的最佳控制。开发该模型的目的是帮助促进控制策略的开发和应用,以最大程度地提高PEMFC的能效,从而可以降低与发电和热发电相关的成本。给出了使用实际的基于PEMFC的热电联产系统进行的实验分析结果,该系统可产生600 W的电能。然后,讨论了实验系统仿真模型的开发和验证。该模型基于具有非线性自回归外生配置的人工神经网络(ANN)和3D查找表(LUT)的组合,该表根据电力需求和流量更新输入到ANN中的数据速度和冷却液的输入温度。由于3D LUT中包含的数据是非线性的,因此实现了一种基于线性插值和保形的分段三次Hermite动态函数的算法,以对3D数据进行插值。结果,该模型可以预测冷却剂流体的出口温度和PEMFC的氢消耗率,该函数取决于冷却剂流体的入口温度和流速以及电力需求。提出的模型具有很高的准确性,可以用作开发新的优化策略的黑匣子。

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