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首页> 外文期刊>Journal of intelligent & fuzzy systems: Applications in Engineering and Technology >Optimisation and rule firing analysis in fuzzy logic based maximum power point tracking
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Optimisation and rule firing analysis in fuzzy logic based maximum power point tracking

机译:基于模糊逻辑的最大功率点跟踪的优化和规则触发分析

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This paper presents a technique for implementing population based metaheuristic algorithms during dynamic optimisation of a non-linear system with time varying inputs. The system dynamics due to the presence of multiple inputs and large signal variations are simulated when designing controller parameters. The proposed method is used to implement the particle swarm optimisation (PSO) algorithm and used to optimise fuzzy logic controllers for photovoltaic (PV) array maximum power point tracking. Controller optimisation is carried out using a large signal average model of the dc-dc converter. A rule firing analysis technique for interpretation of fuzzy logic controller rule participation at run-time is formulated. The rule inference parameters used for analysis are firing frequency, firing strength, and contribution to the control effort. The performance of optimised fuzzy logic controllers consisting of 9, 25, and 49 rules is analysed at run-time. Simulation results show that the fuzzy logic controller rules centred on the equilibrium point have the most significant contribution to the control effort. A fuzzy logic controller (FLC) with 9 rules can therefore give a good performance. The robustness of the 9-rule FLC is verified using the Lyapunov stability theory.
机译:本文提出了一种在具有时变输入的非线性系统动态优化过程中实施基于种群的元启发式算法的技术。在设计控制器参数时,会模拟由于存在多个输入和较大的信号变化而导致的系统动力学。该方法用于实现粒子群算法(PSO),并用于光伏阵列最大功率点跟踪的模糊逻辑控制器优化。使用DC-DC转换器的大信号平均模型进行控制器优化。提出了一种在运行时解释模糊逻辑控制器规则参与的规则触发分析技术。用于分析的规则推断参数为点火频率,点火强度以及对控制作用的贡献。在运行时分析了由9、25和49条规则组成的优化模糊逻辑控制器的性能。仿真结果表明,以平衡点为中心的模糊逻辑控制器规则对控制效果的贡献最大。因此,具有9条规则的模糊逻辑控制器(FLC)可以提供良好的性能。使用Lyapunov稳定性理论验证了9规则FLC的鲁棒性。

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