Organic Rankine cycle driven by geothermal heat source: life cycle techno-economic–environmental analysis

Author(s):  
Chao Liu ◽  
Shukun Wang ◽  
Jingzheng Ren
Author(s):  
Afsaneh Noroozian ◽  
Abbas Naeimi ◽  
Mokhtar Bidi ◽  
Mohammad Hossein Ahmadi

Depleting fossil fuel resources and the horrible environmental impacts due to burning fossil fuels emphasize the importance of using renewable energy resources such as geothermal and solar energies. This paper compares performance of CO2 transcritical cycle, organic Rankine cycle, and trilateral Rankine cycle using a low-temperature geothermal heat source. Thermodynamic analysis, exergetic analysis, economic analysis, and exergoeconomic analysis are applied for each of the aforementioned cycles. In addition, a sensitivity analysis is performed on the system, and the effects of geothermal heat source temperature, evaporator pinch point temperature, and turbine inlet pressure on the cycle's performance are evaluated. Finally, the systems are optimized in order to minimize product cost ratio and maximize exergetic efficiency by using the genetic algorithm. Results indicate that the maximum thermal efficiency is approximately 13.03% which belongs to organic Rankine cycle with R123 as working fluid. CO2 cycle has the maximum exergetic efficiency, equals to 46.13%. The minimum product cost ratio refers to the organic Rankine cycle with R245fa as working fluid. Moreover, sensitivity analysis shows that increasing geothermal heat source temperature results in higher output power, product cost ratio, and exergy destruction ratio in all cycles.


2017 ◽  
Vol 129 ◽  
pp. 591-598 ◽  
Author(s):  
Qingxuan Sun ◽  
Yaxiong Wang ◽  
Ziyang Cheng ◽  
Jiangfeng Wang ◽  
Pan Zhao ◽  
...  

2018 ◽  
Vol 10 (6) ◽  
pp. 063901 ◽  
Author(s):  
Shukun Wang ◽  
Chao Liu ◽  
Cheng Zhang ◽  
Xiaoxiao Xu ◽  
Qibin Li

Energy ◽  
2016 ◽  
Vol 102 ◽  
pp. 473-490 ◽  
Author(s):  
Muhammad Imran ◽  
Muhammad Usman ◽  
Byung-Sik Park ◽  
Youngmin Yang

2021 ◽  
Vol 09 (09) ◽  
pp. 19-40
Author(s):  
Dodeye Igbong ◽  
Oku Nyong ◽  
James Enyia ◽  
Benjamin Oluwadare ◽  
Mafel Obhua

Author(s):  
Vera-Romero Iván ◽  
Corona-Ruíz Silvia L. ◽  
Martínez Reyes J. ◽  
Moreno Nava I. ◽  
Ordaz Murillo O. ◽  
...  

Author(s):  
W Gu ◽  
Y Weng ◽  
Y Wang ◽  
B Zheng

This article describes and evaluates an organic Rankine cycle (ORC) for a waste heat recovery system by both theoretical and experimental studies. Theoretical analysis of several working fluids shows that cycle efficiency is very sensitive to evaporating pressure, but insensitive to expander inlet temperature. Second law analysis was carried out using R600a as a working fluid and a flow of hot air as a heat source, which is not isothermal, along the evaporator. The result discloses that the evaporator's internal and external entropy generation is the main source of total entropy generation. The effect of the heat source temperature, evaporating pressure, and evaporator size on the entropy generation rate is also presented. The obtained useful power is directly linked to the total entropy generation rate according to the Gouy—Stodola theorem. The ORC testing system was established and operated using R600a as a working fluid and hot water as a heat source. The maximum cycle efficiency of the testing system is 5.2 per cent, and the testing result also proves that cycle efficiency is insensitive to heat source temperature, but sensitive to evaporating pressure. The entropy result also shows that internal and external entropy of the evaporator is the main source of total entropy generation.


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