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Distributed or centralized? Designing district-level urban energy systems by a hierarchical approach considering demand uncertainties

机译:分布式还是集中式?考虑需求不确定性的分层方法设计区级城市能源系统

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摘要

The optimal design of urban energy system is considered as a global challenge for improving urban sustainability, efficiency and resilience. The optimization problem is normally formulated as a mixed-integer programming model. With certain spatial and temporal resolution, the model complexity will increase rapidly when the modelling scale expands. The uncertainty of demand further makes the problem more complex. Therefore, to model large-scale urban energy systems, the trade-off between modelling resolution and computational cost has to be considered. This study introduces a hierarchical based approach to decompose the district-level problem into neighborhood-level sub-problems by clustering technique. Two technical routes are further proposed, (1) the energy hub mode adopts Graph theory techniques to obtain an optimal solution rapidly with a slight sacrifice on optimality; (2) the distributed mode enables high optimality but requires significantly high computational cost. Both two routes deal with multiple uncertainties of cooling and heating demand via stochastic programming.The proposed approach is demonstrated via a case study of a business district in Shanghai. The results indicate that modelling with demand uncertainties can lead to 15% difference on project cost from the deterministic formulation. Demand complementarity and network design turn out have critical impacts on system design and project economics. Moreover, a novel Coefficient of Variation index is proposed quantifying the demand complementarity. In general, the proposed approach is efficient and in line with the procedure of real-world infrastructure development. By such approach, the problem becomes solvable by using ordinary computers, which makes it more applicable in real-world urban developments.
机译:城市能源系统的优化设计被认为是提高城市可持续性,效率和弹性的全球性挑战。通常将优化问题表述为混合整数规划模型。在一定的时空分辨率下,随着建模规模的扩大,模型复杂度将迅速增加。需求的不确定性进一步使问题更加复杂。因此,要对大型城市能源系统进行建模,必须考虑建模分辨率与计算成本之间的权衡。这项研究引入了一种基于层次的方法,通过聚类技术将区域级问题分解为邻域级子问题。进一步提出了两条技术路线:(1)能量枢纽模式采用图论技术快速获得最优解,而对最优性的牺牲很小; (2)分布式模式可以实现较高的最优性,但需要很高的计算成本。两条路线均通过随机规划处理制冷和供热需求的多种不确定性。通过对上海某商业区的案例研究证明了所提出的方法。结果表明,具有需求不确定性的建模可以从确定性公式得出项目成本的15%的差异。需求的互补性和网络设计对系统设计和项目经济性具有至关重要的影响。此外,提出了一种新颖的变异系数指数来量化需求互补性。一般而言,所提出的方法是有效的,并且符合现实世界中基础设施开发的过程。通过这种方法,该问题可以通过使用普通计算机来解决,这使其更适用于现实世界中的城市发展。

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