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Seeker optimization algorithm for global optimization: A case study on optimal modelling of proton exchange membrane fuel cell (PEMFC)

机译:寻求全局优化的优化算法:质子交换膜燃料电池(PEMFC)优化建模的案例研究

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摘要

In order to optimize the proton exchange membrane fuel cell (PEMFC) model parameters, a novel approach based on seeker optimization algorithm (SOA) is proposed. The SOA is based on the concept of simulating human searching behaviors, where the choice of search direction is based on the empirical gradient by evaluating the response to the position changes and the decision of step length is based on uncertainty reasoning by using a simple Fuzzy rule. In this study, after evaluated on benchmark function optimization, the SOA is applied to optimal modelling of the PEMFC by using a fuel cell test system in Fuel Cell Application Centre (FAC) at the Temasek Polytechnic, and compared with several state-of-the-art versions of differential evolution (DE) and particle swarm optimization (PSO) algorithms. The simulation results show that the proposed approach is superior to other compared algorithms, and the PEMFC model with optimized parameters by SOA fitted experimental data well. Hence, SOA is an effective and reliable technique for optimizing the parameters of PEMFC model, and can be helpful for system analysis, optimization design and real-time control of the PEMFCs.
机译:为了优化质子交换膜燃料电池(PEMFC)的模型参数,提出了一种基于导引头优化算法(SOA)的新方法。 SOA基于模拟人类搜索行为的概念,其中搜索方向的选择基于经验梯度,方法是通过评估对位置变化的响应,而步长的决定则基于不确定性推理,方法是使用简单的模糊规则。在这项研究中,在对基准功能优化进行评估后,通过使用淡马锡理工学院燃料电池应用中心(FAC)的燃料电池测试系统,将SOA应用于PEMFC的最佳建模,并与几种最新状态进行了比较。差异演化(DE)和粒子群优化(PSO)算法的最新版本。仿真结果表明,该方法优于其他算法,并且通过SOA对参数进行优化的PEMFC模型很好地拟合了实验数据。因此,SOA是一种用于优化PEMFC模型参数的有效而可靠的技术,可用于PEMFC的系统分析,优化设计和实时控制。

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