A multigeneration system of combined cooling, heating, and power (CCHP) for low-temperature geothermal system by using air cooling

被引:26
作者
Chaiyat, Nattaporn [1 ,2 ,3 ]
机构
[1] Maejo Univ, Sch Renewable Energy, Chiang Mai, Thailand
[2] Thermal Design & Technol Lab TDeT Lab, Bangkok, Thailand
[3] Excellence Ctr Environm Friendly Smart Agr & Rene, Bangkok, Thailand
关键词
3,4E-Chaiyat models; Multigeneration; Organic Rankine cycle; Absorption chiller; Drying process; ORGANIC RANKINE-CYCLE; GAS-TURBINE; EXERGY; OPTIMIZATION; COGENERATION; ENERGY; GENERATION; R245FA; ORC;
D O I
10.1016/j.tsep.2020.100786
中图分类号
O414.1 [热力学];
学科分类号
摘要
A new definition of the energy, exergy, economic and environmental model (3,4E-Chaiyat models) was used to evaluate cascade air-cooled multigeneration from a single-stage organic Rankine cycle of 10 kW(e), a single-stage absorption chiller of 15 kW, and a drying room of 20 kW, respectively. From the study results, a first-law efficiency of 17.23% was found to be higher than a second-law efficiency of 15.13%. According to a life cycle assessment (LCA), a single score of the energy model of approximately 0.0250Pt was lower than that of the exergy model of approximately 0.1223Pt. In the 3E model, a levelized energy cost per life cycle assessment (LEnCA) was approximately 0.0017 USD.Pt/kWh(2) for an investment cost of 159,729 USD. At the same time, in the 4E model, a levelized exergy cost per life cycle assessment (LExCA) was approximately 0.0414 USD.Pt/kWh(2), which was lower than that of the water-cooled multigeneration system (approximately 0.0442 USD.Pt/kWh(2)). Thus, the suitable cooling type for the cascade geothermal-multigeneration system used in San Kamphaeng, Thailand, is the air-cooled type.
引用
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页数:12
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