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首页> 外文期刊>Journal of Cleaner Production >Multi-objective electro-thermal coupling scheduling model for a hybrid energy system comprising wind power plant, conventional gas turbine, and regenerative electric boiler, considering uncertainty and demand response
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Multi-objective electro-thermal coupling scheduling model for a hybrid energy system comprising wind power plant, conventional gas turbine, and regenerative electric boiler, considering uncertainty and demand response

机译:考虑不确定性和需求响应的包括风电厂,常规燃气轮机和再生电锅炉的混合能源系统多目标电热耦合调度模型

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Regenerative electric boiler (REB) can convert electricity into heating, improve the grid-connected space of wind power plant (WPP), and is an effective way of solving the severe problem of abandoned wind power in China. To achieve a synergistically coordinated optimization between the supply side and the user side, incentive-based demand response (IBDR) is implemented for decentralized thermal load while price-based demand response (PBDR) is implemented for the electrical load and centralized thermal load. The study then integrates WPP, REB, conventional gas turbine (CGT) and IBDR into a hybrid energy system (HES). Next, the uncertainty scenarios of wind speed are simulated using the Latin hypercube sampling method, and Kantorovich distance based on the values predicted using auto-regressive and moving average mode. Then a multi-objective optimization model for HES operation is proposed based on the objectives of maximizing economic revenue and minimizing the level of risk. Finally, an industrial park in northern China is selected for sample analysis. The results show: (1) if the power output of WPP is converted into heating, the economic benefits increase significantly, with certain risks attached. The REB can store energy during off-peak periods and dispense energy during peak periods. The smooth net power output curve is preferable for decreased operational risk. (2) PBDR can smooth the demand curves of electrical and thermal load. The peak-to-valley ratios of the electrical load and thermal load decrease by 1.207 and 1.500. (3) IBDR can provide more reserve service for a HES while simultaneously satisfying different load demands and yielding optimal operation results with the implementation of PBDR. The peak-to-valley ratios of the net power curves are 1.242 (IBDR alone) and 1.214 (IBDR and PBDR). Overall, the proposed optimization model could give full play to the coupling effect of centralized thermal load and decentralized thermal load, which would provide feasible tools for decision-makers to create an optimal operation plan. (C) 2019 Elsevier Ltd. All rights reserved.
机译:蓄热式电锅炉可以将电能转化为热能,改善风电厂的并网空间,是解决我国严重弃风问题的有效途径。为了实现供应方和用户方之间的协同协调优化,针对分散式热负荷实施了基于激励的需求响应(IBDR),而针对电力负荷和集中式热负荷实施了基于价格的需求响应(PBDR)。然后,该研究将WPP,REB,常规燃气轮机(CGT)和IBDR集成到混合能源系统(HES)中。接下来,使用拉丁超立方采样方法模拟风速的不确定性场景,并基于使用自回归和移动平均模式预测的值来模拟Kantorovich距离。然后基于最大化经济收益和最小化风险水平的目标,提出了HES运行的多目标优化模型。最后,选择了中国北方的一个工业园区进行样本分析。结果表明:(1)如果将WPP的功率输出转换为热能,则经济效益将显着增加,并且存在一定的风险。 REB可以在非高峰时段存储能量,并在高峰时段分配能量。平滑的净功率输出曲线对于降低操作风险是可取的。 (2)PBDR可以平滑电力和热负荷的需求曲线。电负载和热负载的峰谷比分别降低1.207和1.500。 (3)PBDR的实施,IBDR可以为HES提供更多的备用服务,同时满足不同的负载需求并产生最佳的运行结果。净功率曲线的峰谷比为1.242(仅IBDR)和1.214(IBDR和PBDR)。总体而言,所提出的优化模型可以充分发挥集中式热负荷和分散式热负荷的耦合效应,为决策者制定最优运行计划提供可行的工具。 (C)2019 Elsevier Ltd.保留所有权利。

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