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Performance assessment and multi-objective optimization of a novel transcritical CO_2 trigeneration system for a low-grade heat resource

机译:低级热资源新型跨临界CO_2三发化系统的性能评估和多目标优化

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This work focuses on designing a self-sufficient trigeneration system for low-grade heat resource applications. For this purpose, a novel transcritical CO2 combined cooling, heating, and power (CCHP) system is proposed, which integrates a Rankine power cycle and an ejector refrigeration cycle (ERC). To evaluate the feasibility of the proposed system, the mathematical model of the combined cycle is built and validated. The effects of seven key parameters on system performance are investigated from the thermoeconomic viewpoint. Furthermore, multi-objective optimization is performed for the system when it generates both cooling and power or simultaneously produces heating and power. The results show that when using low-grade heat resource, the proposed plant not only has desirable net power output under all considered conditions, but also achieves adjustable output for cooling and heating in a broad range. The exergy efficiency of the proposed system and the coefficient of performance (COP) of ERC under base case conditions are respectively improved by 13.3% and 167.7% compared to the reference cycle. Under optimal conditions, the total useful energy and exergy efficiency of the system respectively are 127.3 kW and 22.7% for the combined cooling and power (CCP) mode, while corresponding values are 126.2 kW and 43.6% for the combined heating and power (CHP) mode, respectively. The cost per unit of exergy products for the system in the CCP mode is 3.4 times more than that in the CHP mode.
机译:这项工作侧重于设计用于低级热资源应用的自充足的三通组系统。为此目的,提出了一种新型跨临界CO2组合冷却,加热和功率(CCHP)系统,其集成了Quankine动力循环和喷射器制冷循环(ERC)。为了评估所提出的系统的可行性,建立并验证了组合循环的数学模型。从热经济角度研究了七个关键参数对系统性能的影响。此外,当产生冷却和功率或同时产生加热和功率时,对系统进行多目标优化。结果表明,当使用低级热资源时,所提出的工厂在所有考虑的条件下都不仅具有理想的净功率输出,而且还实现了可调节的输出,用于在宽范围内冷却和加热。与参考循环相比,拟议的系统和ERC的拟议系统和性能系数(COP)的效率分别提高13.3%和167.7%。在最佳条件下,组合冷却和功率(CCP)模式,系统的总有用能量和低通效效率为127.3kW和22.7%,而相应的值为126.2千瓦,综合加热和功率(CHP)为126.2千瓦,43.6%模式分别。 CCP模式下系统的每单位漏洞产品的成本比CCP模式中的3.4倍。

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