Thermoeconomic comparison between the organic flash cycle and the novel organic Rankine flash cycle (ORFC)

被引:35
作者
de Campos, Gustavo Bonolo [1 ]
Bringhenti, Cleverson [1 ]
Traverso, Alberto [2 ]
Tomita, Jesuino Takachi [1 ]
机构
[1] Aeronaut Inst Technol, Dept Turbomachines, Sao Jose Dos Campos, SP, Brazil
[2] Univ Genoa, Thermochem Power Grp, Genoa, Italy
关键词
Organic flash cycle; Organic Rankine cycle; Trilateral cycle; Organic Rankine flash cycle; Thermoeconomics; DESIGN; OPTIMIZATION; PRESSURE; EXPANDER; SYSTEM; EVAPORATION; EFFICIENCY; SINGLE; ENGINE;
D O I
10.1016/j.enconman.2020.112926
中图分类号
O414.1 [热力学];
学科分类号
摘要
Growing environmental concerns are driving the energy market toward the development of thermodynamic cycles to harness renewable energy and waste heat. This manuscript introduces the novel organic Rankine flash cycle, which combines the organic Rankine cycle with the trilateral cycle, merging their advantages in terms of high specific power output and low heat transfer irreversibility, respectively. By comparing the organic Rankine flash cycle to the organic flash cycle, it was found that the proposed architecture reaches a peak exergy efficiency at a more realistic value of two-phase expansion volume flow ratio, consistently achieves higher energy and exergy efficiencies, presents a lower cost, and is not constrained to operate close to the working fluid saturation temperature, promising easier operability. Considering pentane as working fluid, the exergy efficiency of the organic Rankine flash cycle is 18%p higher for a heat source temperature of 150 degrees C, 12%p for 175 degrees C, and 4%p for 200 degrees C. The attractive thermoeconomic performance of the proposed organic Rankine flash cycle highlights the potential of such a cycle as a new paradigm in the ORC panorama, encouraging further investigation towards practical demonstration.
引用
收藏
页数:11
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共 50 条
[1]   Thermodynamic performance simulation and design optimisation of trilateral-cycle engines for waste heat recovery-to-power generation [J].
Ajimotokan, H. A. ;
Sher, I. .
APPLIED ENERGY, 2015, 154 :26-34
[2]   Organic Flash Cycles: Off-design behavior and control strategies of two different cycle architectures for Waste Heat Recovery applications [J].
Baccioli, A. ;
Antonelli, M. .
ENERGY CONVERSION AND MANAGEMENT, 2018, 157 :176-185
[3]   Technical and economic analysis of organic flash regenerative cycles (OFRCs) for low temperature waste heat recovery [J].
Baccioli, A. ;
Antonelli, M. ;
Desideri, U. .
APPLIED ENERGY, 2017, 199 :69-87
[4]   Pure and Pseudo-pure Fluid Thermophysical Property Evaluation and the Open-Source Thermophysical Property Library CoolProp [J].
Bell, Ian H. ;
Wronski, Jorrit ;
Quoilin, Sylvain ;
Lemort, Vincent .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2014, 53 (06) :2498-2508
[5]  
Bhatti M.S., 1987, Handbook of single-phase convective heat transfer
[6]   Numerical modeling of a two-phase twin-screw expander for Trilateral Flash Cycle applications [J].
Bianchi, Giuseppe ;
Kennedy, Stuart ;
Zaher, Obadah ;
Tassou, Savvas A. ;
Miller, Jeremy ;
Jouhara, Hussam .
INTERNATIONAL JOURNAL OF REFRIGERATION-REVUE INTERNATIONALE DU FROID, 2018, 88 :248-259
[7]  
CAMPOS GB, 2019, INT J EXERGY, V29, P89, DOI DOI 10.1504/IJEX.2019.099717
[8]  
Carrier, 1995, ACE HERMETIC 19XT CE
[9]   A review of thermodynamic cycles and working fluids for the conversion of low-grade heat [J].
Chen, Huijuan ;
Goswami, D. Yogi ;
Stefanakos, Elias K. .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2010, 14 (09) :3059-3067
[10]   Thermodynamic analysis of a dual loop heat recovery system with trilateral cycle applied to exhaust gases of internal combustion engine for propulsion of the 6800 TEU container ship [J].
Choi, Byung Chul ;
Kim, Young Min .
ENERGY, 2013, 58 :404-416