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Optimal integrated demand response scheduling in regional integrated energy system with concentrating solar power

机译:集中太阳能区域综合能源系统的最优综合需求响应调度

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摘要

The Regional Integrated Energy System Concentrating Solar Power (RIES-CSP) can realize the energy conversion between solar energy, thermal energy and electric energy, which provides an effective way to solve the problem of solar power generation. In this paper, a concentrating solar power station is introduced in the integrated energy system of combined thermal and power supply to assist the system operation, and a typical system structure architecture is constructed by combining energy conversion equipment such as wind power station, energy storage device and electric heater. Moreover, the electricity price and the thermal price are used as signals to guide the system to participate in the Integrated Demand Response program (IDR), and the Demand Response model of electric load and thermal load is established based on the price elasticity matrix. On this basis, considering the uncertainty of renewable energy, ladder carbon emission and the DR benefit, the system operation optimization model is established with the goal of minimizing the operation cost of integrated energy system. The model presented could reduce the cost of system without causing a significant amount of environmental pollutions, and improve the energy efficiency of the system operation efficiently. Finally, a RIES-CSP was used for simulation analysis. The simulation results show that the system participates in the IDR program and exchanges energy with the energy market, which makes the DR effect more obvious, and the total operation cost is 7.85% lower than the traditional operation mode.
机译:区域集成能源系统集中太阳能(RIES-CSP)可以实现太阳能,热能和电能之间的能量转换,这提供了解决太阳能发电问题的有效方法。在本文中,在组合热电电源的集成能量系统中引入了浓缩太阳能电站以帮助系统操作,并且通过组合风电站,能量存储装置等能量转换设备构成典型的系统结构架构和电加热器。此外,电价和热价用作指导系统参与集成需求响应程序(IDR)的信号,以及基于价格弹性矩阵建立电负载和热负荷的需求响应模型。在此基础上,考虑到可再生能源,梯形碳排放和DR益处的不确定性,建立了系统运行优化模型,实现了最小化集成能源系统的运营成本。所提出的模型可以降低系统的成本而不会导致大量的环境污染,并有效地提高系统运行的能效。最后,RIE-CSP用于模拟分析。仿真结果表明,该系统参与IDR程序并与能源市场交换能量,使博士效应更加明显,总运营成本低于传统的操作模式7.85%。

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