Thermodynamic Performance of Regenerative Organic Rankine Cycles
Commenced in January 2007
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Thermodynamic Performance of Regenerative Organic Rankine Cycles

Authors: Kyoung Hoon Kim

Abstract:

ORC (Organic Rankine Cycle) has potential of reducing consumption of fossil fuels and has many favorable characteristics to exploit low-temperature heat sources. In this work thermodynamic performance of ORC with regeneration is comparatively assessed for various working fluids. Special attention is paid to the effects of system parameters such as the turbine inlet pressure on the characteristics of the system such as net work production, heat input, volumetric flow rate per 1 MW of net work and quality of the working fluid at turbine exit as well as thermal efficiency. Results show that for a given source the thermal efficiency generally increases with increasing of the turbine inlet pressure however has optimal condition for working fluids of low critical pressure such as iso-pentane or n-pentane.

Keywords: low-grade energy source, organic Rankine cycle(ORC), regeneration, Patel-Teja equation.

Digital Object Identifier (DOI): doi.org/10.5281/zenodo.1055212

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References:


[1] N. A. Lai, M. Wendland, and J. Fisher, "Working fluids for high temperature organic Rankine cycle," Energy, vol. 36, pp. 199-211, 2011.
[2] T. C. Hung, T. Y. Shai, and S. K. Wang, "A review of organic Rankine cycles (ORCs) for the recovery of low-grade waste heat," Energy, vol. 22, pp. 661-667, 1997.
[3] A. Schuster, S. Karellas, and H. Splithoff, "Energytic and economic investigation of innovative Organic Rankine Cycle applications," App. Therm. Eng., vol. 29, pp. 1809-1817, 2008.
[4] U. Drescher and D. Brueggemann, "Fluid selection for the organic Rankine cycle (ORC) in biomass power and heat plants," App. Therm. Eng., vol. 27, pp. 223-228, 2007.
[5] Y. Dai, J. Wang, and L. Gao, "Parametric optimization and comparative study of organic Rankine cycle (ORC) for low grade waste heat recovery," Energy Convs. Mgmt., vol. 50, pp. 576-582, 2009.
[6] F. Heberle and D. Brueggemann, "Exergy based fluid selection for a geothermal organic Rankine cycle for combined heat and power generation, App. Therm. Eng., vol. 30, pp. 1326-1332, 2010.
[7] B. F. Tchanche, G. Papadakis, and A. Frangoudakis, "Fluid selection for a low-temperature solar organic Rankine cycle," App. Therm. Eng. vol. 29, pp. 2468-2476, 2009.
[8] T. C. Hung, S. K. Wang, C. H. Kuo, B. S. Pei, and K. F. Tsai, "A study of organic working fluids on system efficiency of an ORC using low-grade energy sources," Energy, vol. 35, pp. 1403-1411, 2010.
[9] K. H. Kim, "Effects of superheating on thermodynamic performance of organic Rankine cycles," WASET, vol. 78, pp. 608-612, 2011.
[10] T. Yang, G. J. Chen, and T. M. Guo, "Extension of the Wong- Sandler mixing rule to the three-parameter Patel-Teja equation of state: Application up to the near-critical region," Chem. Eng. J. vol. 67, pp. 27-36, 1997.
[11] J. Gao, L. D. Li, Z. Y. Zhu, and S. G. Ru, "Vapor-liquid equilibria calculation for asymmetric systems using Patel-Teja equation of state with a new mixing rule," Fluid Phase Equilibria, vol. 224, pp. 213- 219, 2004.
[12] C. L. Yaws, Chemical properties handbook, McGraw- Hill, 1999.