PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
Tytuł artykułu

Selected aspects of operation of supercritical (transcritical) organic Rankine cycle

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The paper presents a literature review on the topic of vapour power plants working according to the two-phase thermodynamic cycle with supercritical parameters. The main attention was focused on a review of articles and papers on the vapour power plants working using organic circulation fluids powered with low- and medium-temperature heat sources. Power plants with water-steam cycle supplied with a high-temperature sources have also been shown, however, it has been done mainly to show fundamental differences in the efficiency of the power plant and applications of organic and water-steam cycles. Based on a review of available literature references a comparative analysis of the parameters generated by power plants was conducted, depending on the working fluid used, the type and parameters of the heat source, with particular attention to the needs of power plant internal load.
Rocznik
Strony
85--103
Opis fizyczny
Bibliogr. 36 poz., rys., tab.
Twórcy
autor
  • West Pomeranian University of Technology, Szczecin al. Piastów 19, 70-310 Szczecin, Poland
  • West Pomeranian University of Technology, Szczecin al. Piastów 19, 70-310 Szczecin, Poland
Bibliografia
  • [1] BORSUKIEWICZ-GOZDUR A.: Exergy analysis for maximizing power of organic Rankine cycle power plant driven by open type energy source. Energy 62(2013), 73–81.
  • [2] MIKIELEWICZ D., MIKIELEWICZ J.: Analytical method for calculation of heat source temperature drop for the Organic Rankine Cycle application. Appl. Therm. Eng. 63(2014), 541–550.
  • [3] GU Z., SATO H.: Optimization of cyclic parameters of a supercritical cycle for geothermal power generation. Energ. Convers. Manage. 42(2001), 1409–1416.
  • [4] OGUZ ARSLAN, OZGE YETIK: ANN based optimization of supercritical ORC-binary geothermal power plant: Simav case study. Appl. Therm. Eng. 31(2011), 3922–3928.
  • [5] VETTER C., WIEMER H.J., KUHN D.: Comparison of sub- and supercritical Organic Rankine Cycles for power generation from low-temperature/low-enthalpy geothermal wells, considering specific net power output and efficiency. Appl. Therm. Eng. 51(2013), 871–879.
  • [6] BORSUKIEWICZ-GOZDUR A., NOWAK W.: Geothermal power station with supercritical organic cycle. In: Proc. World Geothermal Cong. 2010 Bali, Indonesia, 25-29 April 2010.
  • [7] GU Z., SATO H.: Performance of supercritical cycles for geothermal binary design. Energ. Convers. Manage. 43(2002), 961–971.
  • [8] KARELLAS S., SCHUSTER A.: Supercritical fluid parameters in organic Rankine cycle applications. Int. J. Thermodynam. 11(2008), 101–108.
  • [9] MARAVER D., ROYO J., LEMORT V., QUOILIN S.: Systematic optimization of subcritical and transcritical organic Rankine cycles (ORCs) constrained by technical parameters in multiple applications. Appl. Energ. 117(2014), 11–29.
  • [10] BAIK Y.J., KIM M., CHANG K.C., LEE Y.S., YOON H.K.: Power enhancement potential of a mixture transcritical cycle for a low-temperature geothermal power generation. Energy 47(2012), 70–76.
  • [11] GUO T, WANG H., ZHANG S.: Comparative analysis of natural and conventional working fluids for use in transcritical Rankine cycle using low-temperature geothermal source. Int. J. Energ. Res. 35(2011), 530–544.
  • [12] BAIK Y.J., KIM M., K.C., LEE Y.S., YOON H.K.: A comparative study of power optimization in low-temperature geothermal heat source driven R125 transcritical cycle and HFC organic Rankine cycles. Renew. Energ. 54(2013), 78–84.
  • [13] ZHANG S., WANG H., GUO T.: Performance comparison and parametric optimization of subcritical organic Rankine cycle (ORC) and transcritical power cycle system for low-temperature geothermal power generation. Appl. Energ. 88(2011), 2740–2754.
  • [14] GUO T., WANG H.X., ZHENG J.: Comparative analysis of CO2-based transcritical Rankine cycle and HFC245fa-based subcritical organic Rankine cycle using lowtemperature geothermal source. China Technol. Sci. 53(2010), 1638–1946.
  • [15] HETTIARACHCHI M., GOLUBOVIC M., WOREK W.M., IKEGAMI Y.: Optimum design criteria for an organic Rankine cycle using low-temperature geothermal heat sources. Energy 32(2007), 1698–1706.
  • [16] KANOGLU M., BOLATTURK A.: Performance and parametric investigation of a binary geothermal power plant by exergy. Renew. Energ. 33(2008), 2366–2374.
  • [17] CHEN Y., LUNDQVIST P., JOHANSSON A., PLATELL P.: A comparative study of the carbon dioxide transcritical power cycle compared with an organic rankine cycle with R123 as working fluid in waste heat recovery. Appl. Therm. Eng. 26(2006), 2142–2147.
  • [18] XU J., LIU C.: Effect of the critical temperature of organic fluids on supercritical pressure organic Rankine cycles. Energy 63(2013), 109–122.
  • [19] GAO H., LIU C., HE C., XU X., WU S., LI Y.: Performance analysis and working fluid selection of a supercritical organic Rankine cycle for low grade waste heat recovery. Energies 5(2012), 3233–3247.
  • [20] VÉLEZ F., CHEJNE F., ANTOLIN G., QUIJANO A.: Theoretical analysis of a transcritical power cycle for power generation from waste energy at low temperature heat source. Energ. Convers. Manage. 60(2012), 188–195.
  • [21] WANG Z.Q., ZHOU N.J., GUO J., WANG X.Y.: Fluid selection and parametric optimization of organic Rankine cycle using low temperature waste heat. Energy 40(2012), 107–115.
  • [22] KACLUDIS A., LYONS S., NADAV D., ZDANKIEWICZ E.: Waste heat to power (WH2P) applications using supercritical CO2-based power cycle. Power-Gen International 2012 11-13 Dec. 2012 Orlando.
  • [23] ZHANG X.R., YAMAGUCHIA H., UNENO D.: Experimental study on the performance of solar Rankine system using supercritical CO2. Renew. Energ. 32(2007), 2617–2628.
  • [24] ZHANG X.R., YAMAGUCHI H., FUJIMA K., ENOMOTO M., SAWADA N.: Theoretical analysis of a thermodynamic cycle for power and heat production using supercritical carbon dioxide. Energy 32(2007), 591–599.
  • [25] BORSUKIEWICZ-GOZDUR A, WIŚNIEWSKI S, MOCARSKI S., BAŃKOWSKI M.: ORC power plant for electricity production from forest and agriculture biomass. Energ. Convers. Manage. 87(2014), 1180–1185.
  • [26] CHEN H., GOSWAMI D. Y., STEFANAKOS E.K.: A review of thermodynamic cycles and working fluids for the conversion of low-grade heat. Renew. Sust. Energ. Rev. 14(2010), 3059–3067.
  • [27] SCHUSTER A., KARELLAS S., AUMANN R.: Efficiency optimization potential in supercritical organic Rankine cycles. Energy 35(2010), 1033–1039.
  • [28] MIKIELEWICZ D., MIKIELEWICZ J.: A thermodynamic criterion for selection of working fluid for subcritical and supercritical domestic micro CHP. Appl. Thermal Eng. 30(2010), 2357–2362.
  • [29] CAYER E., GALANIS N., NESREDDINE H.: Parametric study and optimization of a transcritical power cycle using a low temperature source. Appl. Energ. 87(2010), 1347–1357.
  • [30] KARELLAS S., SCHUSTER A., LEONTARITIS A.D.: Influence of supercritical ORC parameters on plate heat exchanger design. Appl. Thermal Eng. 33-34(2012), 70–76.
  • [31] KIM Y.M., KIM C.G., FAVRAT D.: Transcritical or supercritical CO2 cycles using both low- and high-temperature heat sources. Energy 43(2012), 402–415.
  • [32] BAIK Y.J., KIM M., CHANG K.C., KIM S.J.: Power-based performance comparison between carbon dioxide and R125 transcritical cycles for a low-grade heat source. Appl. Energ. 88(2011), 892–898.
  • [33] CHEN H., GOSWAMI D. Y., RAHMAN M.M., STEFANAKOS E.K.: Energetic and exergetic analysis of CO2- and R32-based transcritical Rankine cycles for low-grade heat conversion. Appl. Energ. 88(2011), 2802–2808.
  • [34] CHEN H., GOSWAMI D. Y., RAHMAN M.M., STEFANAKOS E.K.: A supercritical Rankine cycle using zeotropic mixture working fluids for the conversion of low-grade heat into power. Energy 36(2011), 549–555.
  • [35] PAN L., WANG H., SHI W.: Performance analysis in near-critical conditions of organic Rankine cycle. Energy 37(2012), 281–286.
  • [36] NOWAK W., BORSUKIEWICZ-GOZDUR A., WIŚNIEWSKI S.: Influence of working fluid evaporation temperature in the near-critical point region on the effectiveness of ORC power plant operations. Arch. Thermodyn. 33(2012), 77–88.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-213953c1-b2a3-49b9-bdd8-c153a3de0201
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.