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Mutli-Objective Optimized Operation of Integrated Energy System with Solar and Wind Renewables

机译:太阳能和风能可再生能源综合能源系统的多目标优化运行

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With the continuous deterioration of the ecological environment, the energy crisis is becoming more and more obvious. In the past decades, the renewable energy has been developed rapidly. However, intermittent power supply, such as wind and photovoltaic power supply, is random and volatile, which will bring some difficulties to the optimal scheduling of power system after it is connected to the grid. In order to solve this problem, an operation multi-objective optimization model of integrated energy system (IES) was proposed to optimize system operation cost, carbon emission and primary energy consumption to the maximum extent. Then, this paper proposes a new multi-objective optimization algorithm, called multiple target cross entropy algorithm based on decomposition (MOCE/D), trans-forming multi-objective operation problems into a series of single objective optimization subproblems, and by considering the sup-ply and demand balance of power, natural gas, cold and thermal energy and the operation limitation of each module to solve the integrated energy system model of non-convexity, nonlinear, and multi-local optimal problems. Finally, the overall performance of the proposed MOCE/D algorithm is comprehensively studied. The results of statistical simulation show that, compared with the traditional CCHP system, the proposed operation multi-objective optimization model of integrated energy system (IES) can effec-tively reduce the operation cost, carbon emission and primary energy consumption. In addition, MOCE/D has better optimiza-tion effect and stronger competitiveness compared with other algorithms.
机译:随着生态环境的不断恶化,能源危机变得越来越明显。在过去的几十年中,可再生能源发展迅速。但是,风能,光伏等间歇性电力供应是随机且易变的,这给电网接入电网后的最优调度带来了一定的困难。为了解决这一问题,提出了综合能源系统运行多目标优化模型,以最大程度地优化系统运行成本,碳排放量和一次能源消耗。然后,本文提出了一种新的多目标优化算法,称为基于分解的多目标交叉熵算法(MOCE / D),将多目标运算问题转化为一系列的单目标优化子问题,并考虑了-电力,天然气,冷热能的需求和需求平衡以及每个模块的运行限制,以解决非凸性,非线性和多局部最优问题的集成能源系统模型。最后,对提出的MOCE / D算法的整体性能进行了综合研究。统计仿真结果表明,与传统的CCHP系统相比,所提出的综合能源系统运行多目标优化模型可以有效地降低运行成本,碳排放量和一次能源消耗。另外,与其他算法相比,MOCE / D具有更好的优化效果和更强的竞争力。

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