Optimization of Integrated Energy Systems Based on Two-Step Decoupling Method

Linyang Zhang, Jianxiang Guo, Xinran Yu, Gang Hui, Na Liu, Dongdong Ren, Jijin Wang
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Abstract

An integrated energy system (IES) plays a key role in transforming energy consumption patterns and solving serious environmental and economic problems. However, the abundant optional schemes and the complex coupling relationship among each piece of equipment make the optimization of an IES very complicated, and most of the current literature focuses on optimization of a specific system. In this work, a simulation-based two-step decoupling method is proposed to simplify the optimization of an IES. The generalized IES is split into four subsystems, and a two-layer optimization method is applied for optimization of the capacity of each piece of equipment. The proposed method enables fast comparison among abundant optional configurations of an IES, and it is applied to a hospital in Beijing, China. The optimized coupling system includes the gas-fired trigeneration system, the GSHP, and the electric chiller. Compared with the traditional distributed systems, the emission reduction rate of CO2 and NOX for the coupling system reaches 153.8% and 314.5%, respectively. Moreover, the primary energy consumption of the coupling system is 82.67% less than that of the traditional distributed energy system, while the annual cost is almost at the same level.
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基于两步解耦法的综合能源系统优化
综合能源系统(IES)在转变能源消费模式、解决严重的环境和经济问题方面发挥着关键作用。然而,丰富的可选方案和各设备之间复杂的耦合关系使综合能源系统的优化变得非常复杂,目前大多数文献都集中在特定系统的优化上。本文提出了一种基于仿真的两步解耦方法,以简化 IES 的优化。将广义的 IES 拆分为四个子系统,并采用双层优化方法对每个设备的容量进行优化。所提出的方法可快速比较 IES 的丰富可选配置,并将其应用于中国北京的一家医院。优化后的耦合系统包括燃气三联供系统、GSHP 和电动冷水机组。与传统的分布式系统相比,耦合系统的二氧化碳和氮氧化物减排率分别达到 153.8%和 314.5%。此外,耦合系统的一次能耗比传统分布式能源系统低 82.67%,而年成本几乎持平。
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