TY - JOUR
T1 - How to Quickly Evaluate the Thermodynamic Performance and Identify the Optimal Heat Source Temperature for Organic Rankine Cycles?
AU - Yan, Dong
AU - Yang, Fubin
AU - Zhang, Hongguang
AU - Xu, Yonghong
AU - Wang, Yan
AU - Li, Jian
N1 - Publisher Copyright:
Copyright © 2022 by ASME.
PY - 2022/11
Y1 - 2022/11
N2 - Organic Rankine cycle (ORC) is a promising technology to convert low- and mediumtemperature energy into power. Identifying the optimal working fluids and heat source temperature are always the focuses in the ORC field. This paper presents a new methodology to evaluate the thermodynamic performance of ORC with different working fluids and identify the optimal heat source temperature. Initially, the parameterization model is developed to characterize the working fluids by thermodynamic property parameters including critical temperature (Tc), critical pressure (pc), acentric factor (ω), and ideal gas isobaric heat capacity (c0p). Subsequently, the simultaneous optimization of thermodynamic property parameters and cycle parameters is conducted to obtain the thermodynamic performance limits of simple and regenerative ORCs at six typical geothermal heat source temperatures. By comparing the thermodynamic performance limits of ORC under different heat source temperatures, the optimal heat source temperature is identified. Then, ten commonly used working fluids are selected as reference working fluids, and the thermodynamic property parameters comparisons between reference and ideal working fluids, which can be characterized by the optimized thermodynamic property parameters, are investigated. Finally, multiple linear regression models are developed to evaluate the thermodynamic performance. The numerical differences of thermodynamic property parameters between the ideal reference and reference working fluids are chosen as initial variables, while the thermal efficiency and volumetric power output are used as thermodynamic performance indicators. The results show that the optimal heat source temperature is 250 °C, which is independent of cycle configuration. The thermodynamic performance of ORCs can be evaluated accurately by the multiple linear regression models. The maximum relative error of the multiple linear regression models is 3.02%. Moreover, Tc is the most dominant thermodynamic property parameter.
AB - Organic Rankine cycle (ORC) is a promising technology to convert low- and mediumtemperature energy into power. Identifying the optimal working fluids and heat source temperature are always the focuses in the ORC field. This paper presents a new methodology to evaluate the thermodynamic performance of ORC with different working fluids and identify the optimal heat source temperature. Initially, the parameterization model is developed to characterize the working fluids by thermodynamic property parameters including critical temperature (Tc), critical pressure (pc), acentric factor (ω), and ideal gas isobaric heat capacity (c0p). Subsequently, the simultaneous optimization of thermodynamic property parameters and cycle parameters is conducted to obtain the thermodynamic performance limits of simple and regenerative ORCs at six typical geothermal heat source temperatures. By comparing the thermodynamic performance limits of ORC under different heat source temperatures, the optimal heat source temperature is identified. Then, ten commonly used working fluids are selected as reference working fluids, and the thermodynamic property parameters comparisons between reference and ideal working fluids, which can be characterized by the optimized thermodynamic property parameters, are investigated. Finally, multiple linear regression models are developed to evaluate the thermodynamic performance. The numerical differences of thermodynamic property parameters between the ideal reference and reference working fluids are chosen as initial variables, while the thermal efficiency and volumetric power output are used as thermodynamic performance indicators. The results show that the optimal heat source temperature is 250 °C, which is independent of cycle configuration. The thermodynamic performance of ORCs can be evaluated accurately by the multiple linear regression models. The maximum relative error of the multiple linear regression models is 3.02%. Moreover, Tc is the most dominant thermodynamic property parameter.
KW - ideal working fluid
KW - optimal heat source temperature
KW - organic Rankine cycle
KW - thermodynamic property parameter
KW - working fluids selection
UR - http://www.scopus.com/inward/record.url?scp=85141844718&partnerID=8YFLogxK
U2 - 10.1115/1.4054423
DO - 10.1115/1.4054423
M3 - Article
AN - SCOPUS:85141844718
SN - 0195-0738
VL - 144
JO - Journal of Energy Resources Technology
JF - Journal of Energy Resources Technology
IS - 11
M1 - 112106
ER -