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Bidding strategy for participation of virtual power plant in energy market considering uncertainty of generation and market price

机译:考虑到发电和市场价格的不确定性,在能源市场中的招标策略

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Due to the small capacity of DGs, their individual participation in the energy market is not beneficial. In the case of wind and solar plants, their uncertain power generation is another issue for their participation in the market, especially when their capacity is low. Commercial Virtual Power Plant (CVPP) is a new market participant, which represents a group of various DGs in the market, and bids to the market. This paper proposes a new bidding strategy approach for the participation of CVPP in the day-ahead energy market, considering uncertainties of wind turbine generation and Market Clearing Price (MCP). The market is pay as bid, and each participant bids a multi-step price-power curve. The uncertainty of MCP has formulated analytically, while the wind uncertainty is modeled by a quantized Rayleigh probability distribution function. Particle Swarm Optimization (PSO) algorithm is utilized for optimizing the objective function, which is the expected benefit of the CVPP. Numerical results are provided to evaluate the performance of proposed approach in increasing the benefit of VPP.
机译:由于DG的容量小,他们的个人参与能源市场并不有益。在风和太阳能厂的情况下,他们不确定的发电是他们参与市场的另一个问题,特别是当他们的能力低时。商业虚拟电厂(CVPP)是一个新的市场参与者,它代表了市场中的各种DGS,并竞标市场。本文提出了新的招标战略方法,即CVPP在日前能源市场中参与,考虑到风力涡轮机生成和市场清算价格(MCP)的不确定性。市场支付为出价,每位参与者都会出价多步价格 - 功率曲线。 MCP的不确定性在分析上配制,而风不确定性由量化的瑞利概率分布函数建模。粒子群优化(PSO)算法用于优化目标函数,这是CVPP的预期益处。提供了数值结果,以评估提出越来越多的VPP益处的方法的性能。

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