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Two-stage Stochastic Scheduling of Virtual Power Plant based on Transactive Control

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摘要 Thermostatically controlled loads(TCLs)have huge thermal inertia and are promising resources to promote consumption of renewable energy sources(RESs)for carbon reduction.Thus,this paper employs the virtual power plant(VPP)to regulate TCLs to address problems caused by RESs.Specifically,a two-stage VPP scheduling framework based on multi-time scale coordinated control of TCLs is proposed to address forecast errors of variable RES power output.In the first stage(hour time scale),TCLs are controlled as virtual generators to mitigate forecast errors between hour-ahead and day-ahead RES power.In the second stage(minute time scale),TCLs are regulated as virtual batteries to mitigate forecast errors between intra-hour and hour-ahead RES power.To respect wills and preferences of end-users,a transactive energy(TE)market within VPP is built to guide TCL behaviors via the price mechanism.Moreover,a stochastic VPP schedule using the Wassersteinmetric-based distributionally robust optimization method is developed to consider RES power uncertainties,and its solution process is transformed into a computationally tractable mixedinteger linear programming problem based on the affine decision rule and duality theory.The proposed method is effectively validated by comparison with robust optimization and stochastic optimization.Simulation results demonstrate the proposed twostage VPP scheduling method employs TCL flexibilities more comprehensively to mitigate RES output power forecast errors in VPP operations.
出处 《CSEE Journal of Power and Energy Systems》 2025年第4期1442-1453,共12页 中国电机工程学会电力与能源系统学报(英文)
基金 supported by the National Natural Science Foundation of China(52007030,52077136) Young Elite Scientists Sponsorship Program by Jiangsu Association for Scienceand Technology(TJ-2022-042).
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