PSO-BP-Based Optimal Allocation Model for Complementary Generation Capacity of the Photovoltaic Power Station  

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作  者:Zhenfang Liu Haibo Liu Dongmei Zhang 

机构地区:[1]Department of Electrical Automation,Hebei University ofWater Resources and Electric Engineering,Hebei UniversityWater Conservancy Automation and Informatization Application Technology Research and Development Center,Cangzhou,061001,China

出  处:《Energy Engineering》2023年第7期1717-1727,共11页能源工程(英文)

摘  要:To improve the operation efficiency of the photovoltaic power station complementary power generation system,an optimal allocation model of the photovoltaic power station complementary power generation capacity based on PSO-BP is proposed.Particle Swarm Optimization and BP neural network are used to establish the forecasting model,the Markov chain model is used to correct the forecasting error of the model,and the weighted fitting method is used to forecast the annual load curve,to complete the optimal allocation of complementary generating capacity of photovoltaic power stations.The experimental results show that thismethod reduces the average loss of photovoltaic output prediction,improves the prediction accuracy and recall rate of photovoltaic output prediction,and ensures the effective operation of the power system.

关 键 词:Photovoltaic power station complementary power generation capacity optimization resource allocation 

分 类 号:TM615[电气工程—电力系统及自动化]

 

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