THERMODYNAMIC ANALYSES OF SINGLE BRAYTON AND COMBINED BRAYTON-RANKINE CYCLES FOR DISTRIBUTED SOLAR THERMAL POWER GENERATION

被引:0
|
作者
Dunham, Marc [1 ]
Lipinski, Wojciech [1 ]
机构
[1] Univ Minnesota, Minneapolis, MN 55455 USA
关键词
STATE; PRESSURES; EQUATION; FORMULATION; NITROGEN; SYSTEM; OXYGEN;
D O I
暂无
中图分类号
O414.1 [热力学];
学科分类号
摘要
This paper explores the theoretical efficiencies of single Brayton and combined Brayton-Rankine thermodynamic power cycles for distributed solar thermal power generation. Thermodynamic analyses are conducted for the nominal solar power input to the receiver of 75 kW, concentration ratio in the range 50-100 suns, and for selected heat transfer fluids including air, argon, carbon dioxide, helium, and hydrogen for the Brayton cycle and for the topping cycle of the combined system. C6-fluoroketone, cyclohexane, n-pentane, R-141b, R-245fa, HEE-7000, and steam are examined as working fluids in the bottoming segment of the combined cycle. A single Brayton cycle is found to reach a peak efficiency of 13.3% with carbon dioxide and 100 suns solar input. The four top-performing Brayton cycle fluids are examined as topping cycle fluids in the combined cycle. Each of the four fluids is paired with seven potential bottoming fluids, resulting in 28 heat transfer fluid configurations. The combination of the Brayton topping cycle using carbon dioxide and the Rankine bottoming cycle using R-141b gives the highest thermal efficiency of 22.3% for 100 suns.
引用
收藏
页码:1215 / 1225
页数:11
相关论文
共 50 条
  • [21] Solar driven carbon dioxide Brayton cycle power generation with thermal compression
    Kumar, Pramod
    Dutta, Pradip
    Murthy, Stikantiah Srinivasa
    Srinivasan, Kandadai
    APPLIED THERMAL ENGINEERING, 2016, 109 : 854 - 860
  • [22] HELIUM BRAYTON CYCLES WITH SOLAR CENTRAL RECEIVERS: THERMODYNAMIC AND DESIGN CONSIDERATIONS
    Kusterer, Karsten
    Braun, Rene
    Moritz, Norbert
    Lin, Gang
    Bohn, Dieter
    PROCEEDINGS OF THE ASME TURBO EXPO 2012, VOL 6, 2012, : 271 - 279
  • [23] A review on the thermodynamic optimisation and modelling of the solar thermal Brayton cycle
    Le Roux, W. G.
    Bello-Ochende, T.
    Meyer, J. P.
    RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2013, 28 : 677 - 690
  • [24] Energy-exergy analysis for performance improvement of Brayton-Rankine combined cycle system by utilizing a solar absorption refrigeration cycle (case study: Kahnuj Combined Cycle Power Plant)
    Esfandiari, Moslem
    Pourfayaz, Fathollah
    Kasaeian, Alibakhsh
    Gholami, Ali
    ENERGY SCIENCE & ENGINEERING, 2024, 12 (01) : 201 - 214
  • [25] Power and Efficiency Optimization for Open Combined Regenerative Brayton and Inverse Brayton Cycles with Regeneration before the Inverse Cycle
    Chen, Lingen
    Feng, Huijun
    Ge, Yanlin
    ENTROPY, 2020, 22 (06)
  • [26] EFFICIENCY ENHANCEMENT OF A SMALL SCALE CLOSED SOLAR THERMAL BRAYTON CYCLE BY A COMBINED SIMPLE ORGANIC RANKINE CYCLE
    Riazi, H.
    Ahmed, N. A.
    INTERNATIONAL MECHANICAL ENGINEERING CONGRESS AND EXPOSITION - 2012, VOL 6, PTS A AND B, 2013, : 1773 - 1779
  • [27] COMPARATIVE STUDY OF SOLAR THERMAL BRAYTON CYCLES OPERATED WITH HELIUM OR ARGON
    Kusterer, Karsten
    Braun, Rene
    Moritz, Norbert
    Sugimoto, Takao
    Tanimura, Kazuhiko
    Bohn, Dieter
    PROCEEDINGS OF THE ASME TURBO EXPO: TURBINE TECHNICAL CONFERENCE AND EXPOSITION, 2013, VOL 4, 2013,
  • [28] Thermodynamic modeling of a Brayton cycle hybrid solar thermal plant in Colombia
    Moreno-Gamboa, Faustino
    Nieto-Londono, Cesar
    INGE CUC, 2018, 14 (02) : 126 - 136
  • [29] An innovative integrated system concept between oxy-fuel thermo-photovoltaic device and a Brayton-Rankine combined cycle and its preliminary thermodynamic analysis
    Shan, Shiquan
    Zhou, Zhijun
    Cen, Kefa
    ENERGY CONVERSION AND MANAGEMENT, 2019, 180 : 1139 - 1152
  • [30] Power and efficiency optimization for combined Brayton and two parallel inverse Brayton cycles. Part 2: performance optimization
    Zhang, W.
    Chen, L.
    Sun, F.
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART C-JOURNAL OF MECHANICAL ENGINEERING SCIENCE, 2008, 222 (03) : 405 - 413