论文标题
考虑建筑物的热惯性,改善集成能源系统的运行灵活性
Improving operational flexibility of integrated energy system with uncertain renewable generations considering thermal inertia of buildings
论文作者
论文摘要
冬季供暖期间,由传统的“热量”工作模式(CHP)单元(CHP)单元(CHP)单元(CHP)造成的系统操作的灵活性不足是限制可再生能源消耗的关键问题。为了通过提高运营灵活性来减少可再生能源资源,这是一种基于机会约束的编程(CCP)的新型最佳调度模型(CCP),旨在最大程度地降低最低生成成本,是针对具有CHP单元,热力单元,可恢复生产力的小型综合能源系统(IES),是针对小规模的集成能源系统(IES)。在此模型中,由于包括风力涡轮机和光伏单元在内的可再生世代的不确定性,概率旋转储备的供应是以机会约束的形式提供的。从用户体验的角度来看,建立了加热负荷模型,并考虑建筑物中的热舒适性和惯性。为了解决该模型,开发了基于序列操作理论(SOT)的解决方案方法,其中原始的基于CCP的调度模型可以通过将机会约束转换为确定性的等价类别,从而将基于CCP的调度模型解决为可解决的混合智能线性编程(MILP)配方,从而通过CPELX求解器解决。修改后的IEEE 30总线系统的仿真结果表明,提出的方法通过全面利用建筑物的热惯性和不同种类的辅助设备来提高IE的运营灵活性,这为促进可再生能源提供了一种基本方法。
Insufficient flexibility in system operation caused by traditional "heat-set" operating modes of combined heat and power (CHP) units in winter heating periods is a key issue that limits renewable energy consumption. In order to reduce the curtailment of renewable energy resources through improving the operational flexibility, a novel optimal scheduling model based on chance-constrained programming (CCP), aiming at minimizing the lowest generation cost, is proposed for a small-scale integrated energy system (IES) with CHP units, thermal power units, renewable generations and representative auxiliary equipments. In this model, due to the uncertainties of renewable generations including wind turbines and photovoltaic units, the probabilistic spinning reserves are supplied in the form of chance-constrained; from the perspective of user experience, a heating load model is built with consideration of heat comfort and inertia in buildings. To solve the model, a solution approach based on sequence operation theory (SOT) is developed, where the original CCP-based scheduling model is tackled into a solvable mixed-integer linear programming (MILP) formulation by converting a chance constraint into its deterministic equivalence class, and thereby is solved via the CPLEX solver. The simulation results on the modified IEEE 30-bus system demonstrate that the presented method manages to improve operational flexibility of the IES with uncertain renewable generations by comprehensively leveraging thermal inertia of buildings and different kinds of auxiliary equipments, which provides a fundamental way for promoting renewable energy consumption.