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System Design and Optimisation Study on a Novel CCHP System Integrated with a Hybrid Energy Storage System and an ORC

机译:用混合能量存储系统和兽人集成的新型CCHP系统的系统设计与优化研究

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For achieving higher energy transferring efficiency from the resources to the load, the Combined Cooling, Heating, and Power (CCHP) systems have been widely researched and applied as an efficient approach. The key idea of this study is designing a novel structure of a hybrid CCHP system and evaluating its performance. In this research, there is a hybrid energy storage unit enhancing the whole system’s operation flexibility while supplying cooling, heating, and power. An ORC system is integrated into the CCHP system which takes responsibility of absorbing the low-temperature heat source for electricity generation. There are a few research studies focusing on the CCHP systems’ performance with this structure. In order to evaluate the integrated system’s performance, investigation and optimisation work has been conducted with the approaches of experimental studies and modelling simulation. The integrated system’s configuration, the model building process of several key components, the optimisation method, and the case studies are discussed and analysed in this study. The design of the integrated system and the control strategy are displayed in detail. Several sets of dynamic energy demand profiles are selected to evaluate the performance of the integrated system. The simulation study of the system supplying selected scenarios of loads is conducted. A comprehensive evaluation report indicates that the system’s efficiency during each study process differs while supplying different loads. The results include the power supplied by each component, the energy consumed by each type of load, and the efficiency improvements. It is found that the integrated system fully satisfies the selected domestic loads and various selected scenarios of loads with high efficiency. Compared to conventional power plants or CHP systems, the system efficiency enhancement comes from higher amount of recovery waste heat. Especially, the ORC system can absorb the low-temperature heat source for electricity generation. Compared to the original following electrical load (FEL) control strategy, the optimisation process brings overall efficiency improvements. The system’s overall efficiency was increased by from 3%, 3.18%, 2.85%, 17.11%, 8.89%, and 21.7% in the second case studies. Through the whole study, the main challenge lies within the design and the energy management of the integrated system.
机译:为了实现从资源到负载的更高能量转移效率,已被广泛研究和应用的组合冷却,加热和功率(CCHP)系统作为一种有效的方法。本研究的关键思想正在设计混合CCHP系统的新颖结构,并评估其性能。在这项研究中,存在混合能量存储单元,同时提供冷却,加热和功率的同时增强整个系统的操作灵活性。 ORC系统集成到CCHP系统中,该系统负责吸收发电的低温热源。有一些研究研究专注于CCHP系统的性能与这种结构。为了评估综合系统的性能,采用实验研究和建模模拟方法进行了调查和优化工作。集成系统的配置,若干关键组件的模型构建过程,优化方法和案例研究在本研究中进行了讨论和分析。详细显示了集成系统和控制策略的设计。选择几套动态能量需求配置文件来评估集成系统的性能。进行了提供所选择的负载方案的系统的仿真研究。综合评估报告表明,在每个研究过程中系统的效率在提供不同的载荷时不同。结果包括每个组件提供的功率,每种载荷消耗的能量以及效率改进。结果发现,集成系统完全满足所选择的国内负载和高效率的各种选定的载荷场景。与传统发电厂或CHP系统相比,系统效率增强来自较高量的恢复废热。特别是,ORC系统可以吸收电极的低温热源。与原始电负载(FEL)控制策略相比,优化过程带来了整体效率的改进。该系统的整体效率增加了3%,​​3.18%,2.85%,17.11%,8.89%,21.7%,21.7%。通过整个研究,主要挑战在于设计和集成系统的能源管理。

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