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A multi-objective robust scheduling model and solution algorithm for a novel virtual power plant connected with power-to-gas and gas storage tank considering uncertainty and demand response

机译:考虑不确定性和需求响应的新型燃气-燃气储气罐虚拟电厂多目标鲁棒调度模型及求解算法

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Power-to-gas (P2G) provides a new means for accommodating abandoned new energy that will support the optimal operation of virtual power plants (VPPs) in the future. In this study, a novel structure of a P2G-based virtual power plant (GVPP) is designed. A flexible risk aversion model for GVPP operation is proposed with two objectives-maximum operation profit and minimum operation risk. In the model, the conditional value at risk method and robust optimization theory are utilized to reflect uncertainty risks. To solve the multi-objective model, a solution algorithm was constructed for iteratively obtaining the optimal weight coefficient for transforming the multi-objective model into a single-objective model based on a payoff table and a rough set method. Four simulation cases were set for comparative analysis based on a nine-node energy hub system. The results show the following outcomes: (1) GVPP realizes the complementary utilization of distributed energy and forms a power-gas-power recycling mode, (2) the proposed model can provide an effective decision-making tool for different risk-attitude decision makers by setting a reasonable confidence level and robust coefficient, (3) P2G and price-based demand response (PBDR) improve the grid-connected space of clean energy, in particular, PBDR improves the flexibility of system operation and reduces operation risk, and (4) if the maximum emission trade allowance (META) is considered, P2G preferentially converts carbon dioxide into methane when the META is lower, while clean energy is preferentially used to satisfy load demand and the methane produced by P2G can be sold to the natural gas network when the META is higher. Overall, the proposed optimal decision model achieves the maximum utilization of clean energy to obtain higher economic benefits while rationally controlling operation risks; hence, providing reliable support for decision makers.
机译:燃气发电(P2G)为容纳废弃的新能源提供了一种新方法,它将支持未来虚拟电厂(VPP)的最佳运行。在这项研究中,设计了一种基于P2G的虚拟电厂(GVPP)的新型结构。提出了一种针对GVPP运行的灵活的风险规避模型,该模型具有两个目标:最大经营利润和最小经营风险。在模型中,利用风险条件值法和鲁棒优化理论来反映不确定性风险。为了解决多目标模型,构造了一种求解算法,该算法迭代地基于支付表和粗糙集方法获得最优权重系数,以将多目标模型转换为单目标模型。基于九节点的能源枢纽系统,设置了四个模拟案例进行比较分析。结果表明:(1)GVPP实现了分布式能源的互补利用,形成了燃气-燃气-电力循环利用模式;(2)该模型可以为不同的风险态度决策者提供有效的决策工具。通过设置合理的置信度和稳健的系数,(3)P2G和基于价格的需求响应(PBDR)改善了清洁能源并网的空间,特别是,PBDR提高了系统运行的灵活性并降低了运行风险,并且( 4)如果考虑最大排放贸易配额(META),则当META较低时,P2G优先将二氧化碳转化为甲烷,而优先使用清洁能源以满足负荷需求,并且P2G产生的甲烷可以出售给天然气META较高时的网络。总体而言,所提出的最优决策模型在合理控制运营风险的同时,实现了清洁能源的最大利用,以获得更高的经济效益;因此,为决策者提供了可靠的支持。

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