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Multi-time Scale Simulation of Optimal Scheduling Strategy for Virtual Power Plant Considering Load Response

机译:考虑负荷响应的虚拟电厂最优调度策略的多时间尺度仿真

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The conventional scheduling models of the virtual power plant(VPP) only consider the electricity trading in the day-ahead market. In this paper, a multi-time scale model covering the day-ahead plan decomposition and the intraday forecast is proposed. At the same time, the load response is considered a resource that can participate in scheduling with traditional generators. Firstly, the power models of VPP has been established, VPP realizes the output tracking plan in each period by simulating the power flow between DG, grid, energy storage and the controllable load. Then, the highest profit and the lowest power generation costs, controllable load compensation and penalty costs is used as a target. By setting parameters and calculating, the economical and environmental protection of the VPP can be reflected. In order to ensure economic and environmental protection, the emission target is converted into economic penalty cost, and genetic algorithm optimization is adopted. The case study verifies the effectiveness of proposed method in the end.
机译:虚拟电厂(VPP)的常规调度模型仅考虑日前市场中的电力交易。本文提出了一种涵盖日前计划分解和日内预测的多时间尺度模型。同时,负载响应被视为可以与传统发电机一起参与调度的资源。首先,建立了VPP的功率模型,通过模拟DG,电网,储能和可控负载之间的潮流,VPP实现了每个周期的输出跟踪计划。然后,以最高的利润和最低的发电成本,可控的负载补偿和罚款成本为目标。通过设置参数和计算,可以反映出VPP的经济性和环境保护性。为了确保经济和环境保护,将排放目标转化为经济损失成本,并采用遗传算法优化。案例研究最终验证了所提方法的有效性。

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