首页> 外文会议>ASME International Mechanical Engineering Congress and Exposition >PARAMETER OPTIMIZATION OF A LINEAR-QUADRATIC-GAUSSIAN CONTROLLER FOR A PROTON EXCHANGE MEMBRANE FUEL CELL USING GENETIC ALGORITHMS
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PARAMETER OPTIMIZATION OF A LINEAR-QUADRATIC-GAUSSIAN CONTROLLER FOR A PROTON EXCHANGE MEMBRANE FUEL CELL USING GENETIC ALGORITHMS

机译:使用遗传算法的质子交换膜燃料电池线性 - 二态-Gaussian控制器的参数优化

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Fuel cells are sources of clean energy which have become a key enabling technology in a wide spectrum of applications, ranging from automotive and aerospace applications to power supply for off-grid communities. The adequate functioning of a fuel cell requires permanent electrical power delivery to its load, operating at its maximum possible efficiency, even under load variations. Controlling the operating point of the fuel cell to manage changes in load conditions allows extending its service life. Several variables must be monitored and/or controlled to achieve optimal operating conditions of the fuel cell. This work deals with the design of a linear-quadratic-Gaussian, LQG, state-space controller for a proton exchange membrane fuel cell. The LQG controller is commonly used in fuel cell applications because it features an observer which can reconstruct states that are needed for the control strategy and that many times are difficult or too expensive to measure. The tuning of the parameters of the controller is performed by means of genetic algorithms procedures. The goal of the optimization is to prevent low levels of reactant gases due to sudden increases in the load. This will avoid damages to the membrane and other components of the stack while improving the overall performance of the system. The open loop and closed loop system response are presented using the lineal and non-lineal model of the plant. The response of the compensated system using the LQG controller is compared to the response using a basic state space controller, designed by the pole placing method, to assess the robustness of the LQG controller under disturbances. The results demonstrate the ability of the genetic algorithm technique to design a controller that can help preserving the integrity of the fuel cell while optimizing its performance.
机译:燃料电池是清洁能源的来源,它已成为广泛的应用中的关键能够技术,从汽车和航空航天应用到电源供电。燃料电池的充分功能需要永久电力输送到其负载,即使在负载变化下也可以以其最大可能的效率运行。控制燃料电池的操作点以管理负载条件的变化允许扩展其使用寿命。必须监控和/或控制几个变量,以实现燃料电池的最佳操作条件。这项工作涉及用于质子交换膜燃料电池的线性二次高斯,LQG,状态空间控制器的设计。 LQG控制器通常用于燃料电池应用,因为它具有可以重建控制策略所需的状态的观察者,并且许多次数难以测量。通过遗传算法程序进行控制器的参数调整。优化的目的是防止由于负载突然增加而导致的反应气体的低水平。这将避免损坏膜和堆的其他部件,同时提高系统的整体性能。使用植物的线性和非线性模型来提出开环和闭环系统响应。使用LQG控制器的补偿系统的响应与使用由极垫法设计的基本状态空间控制器的响应进行比较,以评估LQG控制器在干扰下的鲁棒性。结果表明了遗传算法技术设计一种控制器,该控制器可以帮助保持燃料电池的完整性,同时优化其性能。

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