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A Power Exchange Strategy for Multiple Areas with Hydro Power and Flexible Loads

机译:具有水力和灵活负荷的多区域电力交换策略

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Areas with hydro power may purchase extra power from the outside power market during dry seasons, which will cause a deviation between the actual and expected power purchase amount due to the inaccurate judgment of the market situation. Because of the uncertainty of price fluctuations, the risk of purchasing power in the real-time market to eliminate this deviation is very high. This paper proposes an innovative trade mode, where the power exchange strategy between multiple areas is adopted through forming an alliance, i.e., one area can use the controllable elements within others, and constructing a monthly and post day-ahead two phase optimization model. The objective function of the monthly stochastic robust optimization considers the power purchase cost to determine the controllable elements dispatch dates for every area in the alliance. Thus, areas can make reasonable dispatch schedules for controllable elements to avoid the resource waste that means more controllable elements are prepared before post day-ahead optimization but less are used after post day-ahead optimization. While the post day-ahead optimization model determines the internal controllable elements dispatch and power exchange amount after the day-ahead market clearing process, users’ satisfaction and dispatch schedule changes for energy storage device are also considered. In order to solve the proposed two phase model, the dual principle and linearization methods are used to convert them into mixed-integer linear programming problems that can be effectively solved by the Cplex solver. The study case verifies the power deviation cost decreases with the power exchange strategy and the important role of energy storage devices.
机译:在干旱季节,有水力发电的地区可能会从外部电力市场购买额外的电力,由于市场状况的判断不正确,这将导致实际购电金额与预期购电金额之间出现偏差。由于价格波动的不确定性,实时市场中消除这种偏差的购买力风险非常高。本文提出了一种创新的贸易模式,即通过结成联盟采用多个区域之间的电力交换策略,即一个区域可以使用其他区域内的可控元素,并构建每月和提前一天的两阶段优化模型。每月随机鲁棒优化的目标函数考虑购电成本以确定联盟中每个区域的可控元件调度日期。因此,区域可以为可控元素制定合理的调度计划,以避免资源浪费,这意味着在日后优化之前准备了更多可控元素,而在日后优化之后使用了较少的元素。日后提前优化模型确定了日后市场清理过程后内部可控元素的调度和电力交换量,同时还考虑了用户对储能设备的满意度和调度时间表的变化。为了解决所提出的两阶段模型,使用对偶原理和线性化方法将它们转换为可以由Cplex求解器有效解决的混合整数线性规划问题。该研究案例验证了功率偏差成本随功率交换策略和储能装置的重要作用而降低。

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