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A global optimization method for multiple peak photovoltaic MPPT

机译:多峰光伏MPPT的全局优化方法

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Under partial shading condition or imbalanced temperature distribution, the power-voltage characteristic curve of photovoltaic (PV) array exhibits complicated multiple peaks. Traditional maximum power point tracking (MPPT) method is usually easy to trap into local extreme power point. To solve this issue, this paper proposes a novel MPPT method using quantum-behaved particle swarm optimization (QPSO) algorithm. This algorithm adopts detect-search strategy based on voltage closed-loop control, making voltage particles search photovoltaic characteristic curves in quantum-behaved paths. By setting a modulation strategy of reunion and separation factor and stopping criterion, the proposed QPSO algorithm improves the precision of stable state, and eliminates power oscillation under stability condition. Experimental results show that QPSO algorithm has good performance with less parameters, superior global optimization ability, favorable stability and better adaptability compared with traditional particle swarm optimization (PSO) algorithm in PV MPPT.
机译:在部分遮光或温度分布不平衡的情况下,光伏阵列的功率-电压特性曲线会出现复杂的多个峰。传统的最大功率点跟踪(MPPT)方法通常很容易陷入局部极限功率点。为了解决这个问题,本文提出了一种新的基于量子行为粒子群优化(QPSO)算法的MPPT方法。该算法采用基于电压闭环控制的检测搜索策略,使电压粒子在量子行为路径中搜索光伏特性曲线。通过设置团聚和分离因子的调制策略以及停止准则,该QPSO算法提高了稳态精度,消除了稳定条件下的功率振荡。实验结果表明,与传统的PV MPPT粒子群优化算法相比,QPSO算法具有性能好,参数少,全局优化能力强,稳定性好,适应性强等优点。

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