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Multitime Scale Coordinated Scheduling for the Combined System of Wind Power, Photovoltaic, Thermal Generator, Hydro Pumped Storage, and Batteries

机译:电力电力,光伏,热发电机,水力泵浦储存和电池组合系统的多倍规模协调调度

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摘要

Grid connection of intermittent renewable energy, such as wind power and photovoltaic, results in challenges of keeping power balance for power system operation. In order to solve this problem, this article proposed a multitime scale coordinated scheduling model for the combined system of wind power–photovoltaic–thermal generator–hydro pumped storage–battery (WPTHB) by taking advantages of their complementary operation characteristics. The scheduling model is composed of three time scales: the day-ahead scheduling, the 1-h ahead scheduling, and 15-min ahead scheduling. 1) In the day-ahead scheduling, based on the 24-h ahead forecast data of wind–photovoltaic power and load demand (WPL), the optimal power outputs of thermal power units are solved from a mixed-integer linear programming model to achieve the minimal operation cost of thermal units. 2) In the 1-h ahead scheduling, based on power output of thermal units optimized in the day-ahead scheduling and the hourly forecasted WPL, the hydro-pumped unit power outputs are optimally dispatched to minimize their operation cost. 3) In the 15-min ahead scheduling, based on day-ahead optimal power outputs of thermal units and the 1-h ahead optimal outputs of pumped storage, the battery optimal power generation is obtained from an ac optimal power flow model solved by MATPOWER. The simulation of the New England system has validated that the proposed multitime scale coordinated scheduling model could fully explore the distinguished power regulation speed and capacities of thermal power units, hydro-pumped storage, and batteries to effectively track WPL variations and achieve system economic operation simultaneously.
机译:间歇可再生能源的电网连接,如风力和光伏,导致对电力系统操作保持电力平衡的挑战。为了解决这个问题,本文通过采用互补操作特性的优点,提出了一种多级规模协调调度模型,用于风电 - 光伏 - 热发电机 - 水力泵浦电池(WPTHB)的组合系统。调度模型由三个时间尺度组成:日前调度,1-H先提前调度和15分钟调度。 1)在现代调度中,基于24-H未来的风光电力和负载需求(WPL),从混合整数线性规划模型解决了热功率单元的最佳功率输出热单元的最小操作成本。 2)在1-H方面调度中,基于在日前调度和每小时预测WPL中优化的热电势的功率输出,最佳地调度水泵的单元电源输出以最小化其运行成本。 3)在15分钟的前方调度中,基于热部门的最佳最佳功率输出和泵送存储的1-H先前最佳输出,从Matpower解决的AC最佳功率流模型获得了电池最佳发电。新英格兰系统的仿真已经验证,所提出的Multimime规模协调调度模型可以充分探索热电机单元,水力泵送存储和电池的杰出功率调节速度和能力,以有效地跟踪WPL变化并同时实现系统经济运行。

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