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A hierarchical framework for holistic optimization of the operations of district cooling systems

机译:整体优化区域供冷系统运行的分层框架

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The potential for greater energy efficiency gave rise to the popularity of implementing district cooling systems. In newer districts, however, the discrepancy between the designed capacity of the cooling system and actual cooling demand usually negates these benefits. In such scenarios, the optimization of the system's operations with respect to cooling demand could considerably improve the energy efficiency of the system, without incurring additional capital costs.Components of a district cooling system are usually operated at pre-defined setpoints or individually optimized, without regard of the impact on the overall system. Formulation of an optimization problem which adequately captures the thermal and physical interactions as well as the tight coupling between components, i.e., holistically, results in a mixed integer non-linear program which is large and difficult to solve. In this article, a hierarchical optimization framework for the hourly operation of district cooling systems is introduced to manage the problem. The initially complex model of the system was abstracted so that it could be solved effectively using the combination of a genetic algorithm and mixed integer linear program. The mixed integer linear program reduced the search space of the genetic algorithm, thereby increasing the likelihood of achieving global optimality.Finally, the methodology was applied to a case study based on an existing district cooling system in Europe for illustrative purposes. For the scenarios defined, the thermal and physical variables for each component were tuned such that the hourly cooling demand could be fulfilled with minimal electricity consumed. Results indicate potential electricity savings of up to 31%. At the optimum, some components operated less efficiently for the benefit of the overall system, further reinforcing the advantage of performing optimization holistically.
机译:提高能源效率的潜力引起了实施区域供冷系统的普及。但是,在较新的地区,制冷系统的设计容量与实际制冷需求之间的差异通常会抵消这些好处。在这种情况下,针对制冷需求优化系统运行可以显着提高系统的能源效率,而不会产生额外的资本成本。区域制冷系统的组件通常以预定义的设定值运行或单独优化,而无需考虑对整个系统的影响。充分捕捉热和物理相互作用以及部件之间的紧密耦合(即,从整体上来说)的优化问题的公式化导致混合整数非线性程序,该程序庞大且难以求解。在本文中,介绍了用于区域供冷系统每小时运行的分层优化框架来管理该问题。对系统的最初复杂模型进行了抽象,以便可以结合使用遗传算法和混合整数线性程序来有效地解决该问题。混合整数线性程序减少了遗传算法的搜索空间,从而增加了实现全局最优的可能性。最后,将该方法应用于基于欧洲现有的区域供冷系统的案例研究中,以进行说明。对于定义的方案,对每个组件的热和物理变量进行了调整,以使每小时的冷却需求可以用最少的电量来满足。结果表明潜在的节电高达31%。在最佳状态下,某些组件的效率较低,这不利于整个系统,进一步增强了整体执行优化的优势。

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