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Multi-objective bi-level quantity regulation scheduling method for electric-thermal integrated energy system considering thermal and hydraulic transient characteristics

机译:考虑热力和水力暂态特性的电热一体化能源系统多目标双电平量调节调度方法

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摘要

ABSTR A C T In most studies about operation optimization of integrated energy system (IES), the heating subsystem adopts the quality regulation method. However, considering the poor economy of quality regulation, quantity regulation method is proposed to improve the economy. Due to possible hydraulic vertical imbalance resulted from quantity regulation, the operation optimization must consider the effects of both thermal and hydraulic dynamic char-acteristics on IES. In this work, a new multi-objective quantity regulation scheduling method of electric-thermal IES is proposed, which adopts an electro-thermal decoupling bi-level optimization structure, a nonlinear dynamic thermo-hydraulic network model, objectives of economy and carbon emission indices and more reasonable nonlinear constraints. An IES prototype of 5-node power system with 5-node thermal system is designed to verify the proposed quantity regulation scheduling method. When solving the optimization problem, method NSGA-II combines with Gurobi is 40 faster in computational speed when compared with other methods. When compared with a single layer solution method, the proposed bi-level optimization model results in a scheduling strategy that can absorb 100 renewable power with operation cost of 10150.18 U.S. dollars (39.5 reduction) and carbon emission of 1303.7 ton (13 reduction). The hydraulic transient process resulted from the quantity regulation is also analyzed to demonstrate that the optimized scheduling strategy could satisfy the safety requirement of the heating network operation. Therefore, the proposed scheduling optimization method is more effective and satisfied.
机译:ABSTR A C T 在大多数关于综合能源系统(IES)运行优化的研究中,供热子系统采用质量调节方法。然而,考虑到质量调节的经济性较差,提出了数量调节方法来提高经济性。由于水力调节可能导致水力垂直不平衡,因此运行优化必须同时考虑热力和水力动特性对IES的影响。该工作提出了一种新的电热IES多目标量调节调度方法,该方法采用电热解耦双层优化结构、非线性动态热水力网络模型、经济目标和碳排放指标以及更合理的非线性约束。设计了具有5节点热力系统的5节点电力系统IES样机,验证了所提出的量调节调度方法。在求解优化问题时,与其他方法相比,NSGA-II方法与Gurobi相结合的计算速度提高了40%。与单层求解方法相比,所提出的双层优化模型得到的调度策略能够100%吸收可再生能源,运行成本为10150.18美元(减少39.5%),碳排放量为1303.7吨(减少13%)。分析了水力调节产生的水力瞬态过程,证明了优化的调度策略能够满足供热管网运行的安全要求。因此,所提出的调度优化方法更加有效和满意。

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