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Effect of Evaporation and Condensation Temperature on Performance of Organic Rankine System Using R134a, R417A, R422D, R245fa

Year 2024, Volume: 16 Issue: 3, 153 - 164, 05.12.2024
https://doi.org/10.24107/ijeas.1531659

Abstract

Organic Rankine Cycles (ORCs) are identified as one of the most promising technologies for generating electricity from low-grade heat sources. Unlike conventional Rankine cycles, ORCs operate at lower temperatures and pressures. This allows them to utilize organic fluids or refrigerants as the working fluid instead of water, which is better suited for high-pressure and high-temperature applications. The performance and design of an ORC system are heavily dependent on the chosen working fluid. Therefore, selecting the right working fluid is crucial for a specific application, such as solar thermal, geothermal, or waste heat recovery. This study analyzed the performance of ORCs using four different working fluids: R-134a, R-245fa, R417A, and R422D. The researchers investigated how variations in condensation and evaporation temperatures affect thermal efficiency, mass flow rate, pump power, and turbine pressure ratio. The Engineering Equation Solver (EES) program was used for analyses. The results demonstrated that condensation and evaporation temperatures significantly influence system performance. The study found that ORC systems using R417A and R422D exhibited higher efficiencies compared to the other working fluids analyzed. Additionally, these fluids required lower mass flow rates per unit of power generation compared to the other fluids.

References

  • Zhi, L. H., Hu, P., Chen, L. X., Zhao, G., Thermodynamic analysis of a novel transcritical-subcritical parallel organic Rankine cycle system for engine waste heat recovery. Energy Conversion and Management, 197, 111855, 2019.
  • Moreira, L. F., Arrieta, F. R. P., Thermal and economic assessment of organic Rankine cycles for waste heat recovery in cement plants. Renewable and Sustainable Energy Reviews, 114, 109315, 2019.
  • Hoang, A. T., Waste heat recovery from diesel engines based on Organic Rankine Cycle. Applied Energy, 231, 138–166, 2018.
  • Zhang, X., Zhang, Y., Wang, J., New classification of dry and isentropic working fluids and a method used to determine their optimal or worst condensation temperature used in Organic Rankine Cycle. Energy, 201, 117722, 2020.
  • Park, B.S., Usman, M., Imran, M., Pesyridis, A. Review of Organic Rankine Cycle experimental data trends. Energy Conversion and Management, 173, 679–691 ,2018.
  • Tartière, T., Astolfi, M. A., World Overview of the Organic Rankine Cycle Market. Energy Procedia, 129, 2–9, 2017.
  • Pethurajan, V., Sivan, S., Joy, G. C., Issues, comparisons, turbine selections and applications – An overview in organic Rankine cycle. Energy Conversion and Management, 166, 474–488, 2018.
  • Ahmadi, A., El Haj Assad, M., Jamali, D. H., Kumar, R., Li, Z. X., Salameh, T., et al., Applications of geothermal organic Rankine Cycle for electricity production. Journal of Cleaner Production, 274, 122950, 2020.
  • Asadi, M., Khoshkhoo, R. H., Effects of Chevron Angle on Thermal Performance of Corrugated Plate Heat Exchanger. International Journal of Engineering Practical Research, 3(1), 8, 2014.
  • Wieland, C., Schifflechner, C., Dawo, F., Astolfi, M., The organic Rankine cycle power systems market: Recent developments and future perspectives. Applied Thermal Engineering, 224, 119980, 2023.
  • Zhang, X., Zhang, C., He, M., Wang, J., Selection and Evaluation of Dry and Isentropic Organic Working Fluids Used in Organic Rankine Cycle Based on the Turning Point on Their Saturated Vapor Curves. Journal of Thermal Science, 28(4), 643–658, 2019.
  • Györke, G., Groniewsky, A., Imre, A.R., A simple method of finding new dry and isentropic working fluids for organic Rankine cycle. Energies, 12(3), 1–11, 2019.
  • Imre, A.R., Kustán, R., Groniewsky, A., Thermodynamic selection of the optimal working fluid for organic Rankine cycles. Energies, 12(10), 1–15, 2019.
  • Blondel, Q., Tauveron, N., Lhermet, G., Caney, N., Zeotropic mixtures study in plate heat exchangers and ORC systems. Applied Thermal Engineering, 219, 119418, 2023.
  • Yang, L., Gong, M., Guo, H., Dong, X., Shen, J., Wu, J., Effects of critical and boiling temperatures on system performance and fluid selection indicator for low temperature organic Rankine cycles. Energy, 109, 830–844, 2016.
  • Fan, W., Han, Z., Li, P., Jia, Y., Analysis of the thermodynamic performance of the organic Rankine cycle (ORC) based on the characteristic parameters of the working fluid and criterion for working fluid selection. Energy Conversion and Management, 211, 112746, 2020.
  • Zhang, X., Li, Y., An examination of super dry working fluids used in regenerative organic Rankine cycles. Energy. 263, 125931, 2023.
  • Bahrami, M., Pourfayaz, F., Kasaeian, A., Low global warming potential (GWP) working fluids (WFs) for Organic Rankine Cycle (ORC) applications. Energy Reports, 8, 2976–2988, 2022.
  • Jiménez-García, J. C., Ruiz, A., Pacheco-Reyes, A., Rivera, W. A. Comprehensive Review of Organic Rankine Cycles. Processes, 11(7), 1982, 2023.
  • Bao, J., Zhao, L., A review of working fluid and expander selections for organic Rankine cycle. Renewable and Sustainable Energy Reviews, 24, 325–342, 2013.
  • Liu, B. T., Chien, K. H. and Wang, C. C., Effect of working fluids on organic Rankine cycle for waste heat recovery. Energy, 29(8), 1207–1217, 2004.
  • Malwe, P., Gawali, B., Shaikh, J., Deshpande, M., Dhalait, R., Kulkarni, S., et al., Exergy assessment of an Organic Rankine Cycle for waste heat recovery from a refrigeration system: a review. Chemical Engineering Communication, 210(5), 837–865, 2023.
  • Cengel, Y. A., Boles, M. A., Thermodynamics: an engineering approach. McGraw-hill, 8nd Edition, 2015
  • Kong, R., Deethayat, T., Asanakham, A., Vorayos, N., Kiatsiriroat, T., Thermodynamic performance analysis of a R245fa organic Rankine cycle (ORC) with different kinds of heat sources at evaporator. Case Studies in Thermal Engineering, 13, 100385, 2019.
Year 2024, Volume: 16 Issue: 3, 153 - 164, 05.12.2024
https://doi.org/10.24107/ijeas.1531659

Abstract

References

  • Zhi, L. H., Hu, P., Chen, L. X., Zhao, G., Thermodynamic analysis of a novel transcritical-subcritical parallel organic Rankine cycle system for engine waste heat recovery. Energy Conversion and Management, 197, 111855, 2019.
  • Moreira, L. F., Arrieta, F. R. P., Thermal and economic assessment of organic Rankine cycles for waste heat recovery in cement plants. Renewable and Sustainable Energy Reviews, 114, 109315, 2019.
  • Hoang, A. T., Waste heat recovery from diesel engines based on Organic Rankine Cycle. Applied Energy, 231, 138–166, 2018.
  • Zhang, X., Zhang, Y., Wang, J., New classification of dry and isentropic working fluids and a method used to determine their optimal or worst condensation temperature used in Organic Rankine Cycle. Energy, 201, 117722, 2020.
  • Park, B.S., Usman, M., Imran, M., Pesyridis, A. Review of Organic Rankine Cycle experimental data trends. Energy Conversion and Management, 173, 679–691 ,2018.
  • Tartière, T., Astolfi, M. A., World Overview of the Organic Rankine Cycle Market. Energy Procedia, 129, 2–9, 2017.
  • Pethurajan, V., Sivan, S., Joy, G. C., Issues, comparisons, turbine selections and applications – An overview in organic Rankine cycle. Energy Conversion and Management, 166, 474–488, 2018.
  • Ahmadi, A., El Haj Assad, M., Jamali, D. H., Kumar, R., Li, Z. X., Salameh, T., et al., Applications of geothermal organic Rankine Cycle for electricity production. Journal of Cleaner Production, 274, 122950, 2020.
  • Asadi, M., Khoshkhoo, R. H., Effects of Chevron Angle on Thermal Performance of Corrugated Plate Heat Exchanger. International Journal of Engineering Practical Research, 3(1), 8, 2014.
  • Wieland, C., Schifflechner, C., Dawo, F., Astolfi, M., The organic Rankine cycle power systems market: Recent developments and future perspectives. Applied Thermal Engineering, 224, 119980, 2023.
  • Zhang, X., Zhang, C., He, M., Wang, J., Selection and Evaluation of Dry and Isentropic Organic Working Fluids Used in Organic Rankine Cycle Based on the Turning Point on Their Saturated Vapor Curves. Journal of Thermal Science, 28(4), 643–658, 2019.
  • Györke, G., Groniewsky, A., Imre, A.R., A simple method of finding new dry and isentropic working fluids for organic Rankine cycle. Energies, 12(3), 1–11, 2019.
  • Imre, A.R., Kustán, R., Groniewsky, A., Thermodynamic selection of the optimal working fluid for organic Rankine cycles. Energies, 12(10), 1–15, 2019.
  • Blondel, Q., Tauveron, N., Lhermet, G., Caney, N., Zeotropic mixtures study in plate heat exchangers and ORC systems. Applied Thermal Engineering, 219, 119418, 2023.
  • Yang, L., Gong, M., Guo, H., Dong, X., Shen, J., Wu, J., Effects of critical and boiling temperatures on system performance and fluid selection indicator for low temperature organic Rankine cycles. Energy, 109, 830–844, 2016.
  • Fan, W., Han, Z., Li, P., Jia, Y., Analysis of the thermodynamic performance of the organic Rankine cycle (ORC) based on the characteristic parameters of the working fluid and criterion for working fluid selection. Energy Conversion and Management, 211, 112746, 2020.
  • Zhang, X., Li, Y., An examination of super dry working fluids used in regenerative organic Rankine cycles. Energy. 263, 125931, 2023.
  • Bahrami, M., Pourfayaz, F., Kasaeian, A., Low global warming potential (GWP) working fluids (WFs) for Organic Rankine Cycle (ORC) applications. Energy Reports, 8, 2976–2988, 2022.
  • Jiménez-García, J. C., Ruiz, A., Pacheco-Reyes, A., Rivera, W. A. Comprehensive Review of Organic Rankine Cycles. Processes, 11(7), 1982, 2023.
  • Bao, J., Zhao, L., A review of working fluid and expander selections for organic Rankine cycle. Renewable and Sustainable Energy Reviews, 24, 325–342, 2013.
  • Liu, B. T., Chien, K. H. and Wang, C. C., Effect of working fluids on organic Rankine cycle for waste heat recovery. Energy, 29(8), 1207–1217, 2004.
  • Malwe, P., Gawali, B., Shaikh, J., Deshpande, M., Dhalait, R., Kulkarni, S., et al., Exergy assessment of an Organic Rankine Cycle for waste heat recovery from a refrigeration system: a review. Chemical Engineering Communication, 210(5), 837–865, 2023.
  • Cengel, Y. A., Boles, M. A., Thermodynamics: an engineering approach. McGraw-hill, 8nd Edition, 2015
  • Kong, R., Deethayat, T., Asanakham, A., Vorayos, N., Kiatsiriroat, T., Thermodynamic performance analysis of a R245fa organic Rankine cycle (ORC) with different kinds of heat sources at evaporator. Case Studies in Thermal Engineering, 13, 100385, 2019.
There are 24 citations in total.

Details

Primary Language English
Subjects Energy Generation, Conversion and Storage (Excl. Chemical and Electrical)
Journal Section Articles
Authors

Erkan Dikmen 0000-0002-6804-8612

Arzu Şencan Şahin 0000-0001-8519-4788

Publication Date December 5, 2024
Submission Date August 11, 2024
Acceptance Date November 20, 2024
Published in Issue Year 2024 Volume: 16 Issue: 3

Cite

APA Dikmen, E., & Şencan Şahin, A. (2024). Effect of Evaporation and Condensation Temperature on Performance of Organic Rankine System Using R134a, R417A, R422D, R245fa. International Journal of Engineering and Applied Sciences, 16(3), 153-164. https://doi.org/10.24107/ijeas.1531659
AMA Dikmen E, Şencan Şahin A. Effect of Evaporation and Condensation Temperature on Performance of Organic Rankine System Using R134a, R417A, R422D, R245fa. IJEAS. December 2024;16(3):153-164. doi:10.24107/ijeas.1531659
Chicago Dikmen, Erkan, and Arzu Şencan Şahin. “Effect of Evaporation and Condensation Temperature on Performance of Organic Rankine System Using R134a, R417A, R422D, R245fa”. International Journal of Engineering and Applied Sciences 16, no. 3 (December 2024): 153-64. https://doi.org/10.24107/ijeas.1531659.
EndNote Dikmen E, Şencan Şahin A (December 1, 2024) Effect of Evaporation and Condensation Temperature on Performance of Organic Rankine System Using R134a, R417A, R422D, R245fa. International Journal of Engineering and Applied Sciences 16 3 153–164.
IEEE E. Dikmen and A. Şencan Şahin, “Effect of Evaporation and Condensation Temperature on Performance of Organic Rankine System Using R134a, R417A, R422D, R245fa”, IJEAS, vol. 16, no. 3, pp. 153–164, 2024, doi: 10.24107/ijeas.1531659.
ISNAD Dikmen, Erkan - Şencan Şahin, Arzu. “Effect of Evaporation and Condensation Temperature on Performance of Organic Rankine System Using R134a, R417A, R422D, R245fa”. International Journal of Engineering and Applied Sciences 16/3 (December 2024), 153-164. https://doi.org/10.24107/ijeas.1531659.
JAMA Dikmen E, Şencan Şahin A. Effect of Evaporation and Condensation Temperature on Performance of Organic Rankine System Using R134a, R417A, R422D, R245fa. IJEAS. 2024;16:153–164.
MLA Dikmen, Erkan and Arzu Şencan Şahin. “Effect of Evaporation and Condensation Temperature on Performance of Organic Rankine System Using R134a, R417A, R422D, R245fa”. International Journal of Engineering and Applied Sciences, vol. 16, no. 3, 2024, pp. 153-64, doi:10.24107/ijeas.1531659.
Vancouver Dikmen E, Şencan Şahin A. Effect of Evaporation and Condensation Temperature on Performance of Organic Rankine System Using R134a, R417A, R422D, R245fa. IJEAS. 2024;16(3):153-64.

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