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ENERGY AND EXERGY ANALYSIS OF A VAPOR ABSORPTION REFRIGERATION SYSTEM IN AN INTERCITY BUS APPLICATION

Year 2019, Volume: 5 Issue: 4, 355 - 371, 24.06.2019
https://doi.org/10.18186/thermal.583316

Abstract

A Vapor Absorption Refrigeration (VAR) system driven
by the exhaust gas waste heat received from the internal combustion engine of
an intercity bus is modeled and analyzed for air-conditioning the intercity bus
cabin under different operating parameters. Initially, the hourly comfort
cooling load of the intercity bus is calculated for a cooling season spanning
five months between May and October in Turkey. After determining the capacity
of heat source sufficiency for air-conditioning the intercity bus, energy and
exergy analyses of the VAR system are conducted, then designed and compared
with the vapor compression refrigeration system in respect to the effect of
fuel consumption. The results show that approximately 4,489 kg/year of fuel can
be saved by using the VAR system driven by an exhaust gas waste heat in an
intercity bus. The maximum coefficient of performance (COP) of the VAR system
is obtained as 0.78 at 5 a.m. in May, and the maximum total exergy destruction
for the VAR system is obtained as 15.25 kW at 4 p.m. in July. Lastly, the
specific time is selected to investigate the effect of operating and
environmental parameters on the VAR system
.

References

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  • [7] Boatto, P., Boccaletti, C., Cerri, G., & Malvicino, C. (2000). Internal combustion engine waste heat potential for an automotive absorption system of air conditioning part 1: tests on the exhaust system of a spark-ignition engine. Proceedings of the Institution of Mechanical Engineers, Part D: Journal of Automobile Engineering, 214(8), 979-982.
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  • [9] Koehler, J., Tegethoff, W. J., Westphalen, D., & Sonnekalb, M. (1997). Absorption refrigeration system for mobile applications utilizing exhaust gases. Heat and Mass Transfer, 32(5), 333-340.
  • [10] Horuz, I. (1999). Vapor absorption refrigeration in road transport vehicles. Journal of Energy Engineering, 125(2), 48-58.
  • [11] Boatto, P., Boccaletti, C., Cerri, G., & Malvicino, C. (2000). Internal combustion engine waste heat potential for an automotive absorption system of air conditioning part 1: tests on the exhaust system of a spark-ignition engine. Proceedings of the Institution of Mechanical Engineers, Part D: Journal of Automobile Engineering, 214(8), 979-982.
  • [12] Lambert, M. A., & Jones, B. J. (2006). Automotive adsorption air conditioner powered by exhaust heat. Part 1: conceptual and embodiment design. Proceedings of the Institution of Mechanical Engineers, Part D: Journal of Automobile Engineering, 220(7), 959-972.
  • [13] Kilic, M., & Kaynakli, O. (2007). Second law-based thermodynamic analysis of water-lithium bromide absorption refrigeration system. Energy, 32(8), 1505-1512.
  • [14] Şencan, A., Yakut, K. A., & Kalogirou, S. A. (2005). Exergy analysis of lithium bromide/water absorption systems. Renewable energy, 30(5), 645-657.
  • [15] Talbi, M. M., & Agnew, B. (2000). Exergy analysis: an absorption refrigerator using lithium bromide and water as the working fluids. Applied Thermal Engineering, 20(7), 619-630.
  • [16] Gomri, R. (2009). Second law comparison of single effect and double effect vapour absorption refrigeration systems. Energy Conversion and Management, 50(5), 1279-1287.
  • [17] Kaynakli, O., Saka, K., & Kaynakli, F. (2015). Energy and exergy analysis of a double effect absorption refrigeration system based on different heat sources. Energy Conversion and Management, 106, 21-30.
  • [18] Arora, A., Dixit, M., & Kaushik, S. C. (2016). Energy and exergy analysis of a double effect parallel flow LiBr/H2O absorption refrigeration system. Journal of Thermal Engineering, 2(1), 541-549.
  • [19] Onan, C., Ozkan, D. B., & Erdem, S. (2010). Exergy analysis of a solar assisted absorption cooling system on an hourly basis in villa applications. Energy, 35(12), 5277-5285.
  • [20] Yılmaz, A. (2015). Transcritical organic Rankine vapor compression refrigeration system for intercity bus air-conditioning using engine exhaust heat. Energy, 82, 1047-1056.
  • [21] Shu, G., Liu, L., Tian, H., Wei, H., & Xu, X. (2013). Performance comparison and working fluid analysis of subcritical and transcritical dual-loop organic Rankine cycle (DORC) used in engine waste heat recovery. Energy Conversion and Management, 74, 35-43.
  • [22] Yamankaradeniz, R., Horuz, I., Kaynakli, O., Coskun, S., & Yamankaradeniz, N. (2009). Refrigeration techniques and heat pump applications.
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  • [25] Florides, G. A., Kalogirou, S. A., Tassou, S. A., & Wrobel, L. C. (2003). Design and construction of a LiBr–water absorption machine. Energy conversion and management, 44(15), 2483-2508.
  • [26] Chua, H. T., Toh, H. K., Malek, A., Ng, K. C., & Srinivasan, K. (2000). Improved thermodynamic property fields of LiBr–H2O solution. International Journal of Refrigeration, 23(6), 412-429.
  • [27] Y.A. Çengel, M. Boles, Thermodynamics: An Engineering Approach. New York: McGraw-Hill Series, 2011.
  • [28] Anand, D. K., & Kumar, B. (1987). Absorption machine irreversibility using new entropy calculations. Solar Energy, 39(3), 243-256.
  • [29] S.C. Kaushik, A. Arora, “Energy and exergy analysis of single effect and series flow double effect water–lithium bromide absorption refrigeration systems”, International Journal of Refrigeration, 2009.
  • [30] Wikipedia, The free encyclopedia, https://en.wikipedia.org/wiki/Brake_specific_fuel_consumption. (accessed 17 January 2017)
  • [31] Hegar, M., Kolda, M., Kopecka, M., Rajtmajer, V., & Ryska, A. (2013). Bus HVAC energy consumption test method based on HVAC unit behavior. International Journal of Refrigeration, 36(4), 1254-1262.
  • [32] Robinson, K. K., & Briggs, D. E. (1966). Pressure drop of air flowing across triangular pitch banks of finned tubes. In Chem. Eng. Prog. Symp. Ser (Vol. 62, No. 64, pp. 177-184).
  • [33] Farshi, L. G., Mahmoudi, S. S., Rosen, M. A., Yari, M., & Amidpour, M. (2013). Exergoeconomic analysis of double effect absorption refrigeration systems. Energy Conversion and Management, 65, 13-25.
  • [34] Ghassemieh, E. (2011). Materials in automotive application, state of the art and prospects. In New trends and developments in automotive industry. InTechOpen..
  • [35] Temsa TS45 Broshure, http://chbussales.com/wp-content/uploads/2015/01/2015-TS-45-Brochure_Online.pdf. (accessed 17 January 2017)
Year 2019, Volume: 5 Issue: 4, 355 - 371, 24.06.2019
https://doi.org/10.18186/thermal.583316

Abstract

References

  • [1] Hwang, Y. (2004). Potential energy benefits of integrated refrigeration system with microturbine and absorption chiller. International Journal of Refrigeration, 27(8), 816-829.
  • [2] www.johnsoncontrols.com. Application opportunities for absorption chillers. (accessed 17 January 2017)
  • [3] http://thermaxglobal.com. (accessed 17 January 2017)
  • [4] Horuz, I. (1998). A comparison between ammonia-water and water-lithium bromide solutions in vapor absorption refrigeration systems. International communications in heat and mass transfer, 25(5), 711-721.
  • [5] Little, A. B., & Garimella, S. (2011). Comparative assessment of alternative cycles for waste heat recovery and upgrade. Energy, 36(7), 4492-4504.
  • [6] Saidur, R., Rezaei, M., Muzammil, W. K., Hassan, M. H., Paria, S., & Hasanuzzaman, M. (2012). Technologies to recover exhaust heat from internal combustion engines. Renewable and sustainable energy reviews, 16(8), 5649-5659.
  • [7] Boatto, P., Boccaletti, C., Cerri, G., & Malvicino, C. (2000). Internal combustion engine waste heat potential for an automotive absorption system of air conditioning part 1: tests on the exhaust system of a spark-ignition engine. Proceedings of the Institution of Mechanical Engineers, Part D: Journal of Automobile Engineering, 214(8), 979-982.
  • [8] Manzela, A. A., Hanriot, S. M., Cabezas-Gómez, L., & Sodré, J. R. (2010). Using engine exhaust gas as energy source for an absorption refrigeration system. Applied energy, 87(4), 1141-1148.
  • [9] Koehler, J., Tegethoff, W. J., Westphalen, D., & Sonnekalb, M. (1997). Absorption refrigeration system for mobile applications utilizing exhaust gases. Heat and Mass Transfer, 32(5), 333-340.
  • [10] Horuz, I. (1999). Vapor absorption refrigeration in road transport vehicles. Journal of Energy Engineering, 125(2), 48-58.
  • [11] Boatto, P., Boccaletti, C., Cerri, G., & Malvicino, C. (2000). Internal combustion engine waste heat potential for an automotive absorption system of air conditioning part 1: tests on the exhaust system of a spark-ignition engine. Proceedings of the Institution of Mechanical Engineers, Part D: Journal of Automobile Engineering, 214(8), 979-982.
  • [12] Lambert, M. A., & Jones, B. J. (2006). Automotive adsorption air conditioner powered by exhaust heat. Part 1: conceptual and embodiment design. Proceedings of the Institution of Mechanical Engineers, Part D: Journal of Automobile Engineering, 220(7), 959-972.
  • [13] Kilic, M., & Kaynakli, O. (2007). Second law-based thermodynamic analysis of water-lithium bromide absorption refrigeration system. Energy, 32(8), 1505-1512.
  • [14] Şencan, A., Yakut, K. A., & Kalogirou, S. A. (2005). Exergy analysis of lithium bromide/water absorption systems. Renewable energy, 30(5), 645-657.
  • [15] Talbi, M. M., & Agnew, B. (2000). Exergy analysis: an absorption refrigerator using lithium bromide and water as the working fluids. Applied Thermal Engineering, 20(7), 619-630.
  • [16] Gomri, R. (2009). Second law comparison of single effect and double effect vapour absorption refrigeration systems. Energy Conversion and Management, 50(5), 1279-1287.
  • [17] Kaynakli, O., Saka, K., & Kaynakli, F. (2015). Energy and exergy analysis of a double effect absorption refrigeration system based on different heat sources. Energy Conversion and Management, 106, 21-30.
  • [18] Arora, A., Dixit, M., & Kaushik, S. C. (2016). Energy and exergy analysis of a double effect parallel flow LiBr/H2O absorption refrigeration system. Journal of Thermal Engineering, 2(1), 541-549.
  • [19] Onan, C., Ozkan, D. B., & Erdem, S. (2010). Exergy analysis of a solar assisted absorption cooling system on an hourly basis in villa applications. Energy, 35(12), 5277-5285.
  • [20] Yılmaz, A. (2015). Transcritical organic Rankine vapor compression refrigeration system for intercity bus air-conditioning using engine exhaust heat. Energy, 82, 1047-1056.
  • [21] Shu, G., Liu, L., Tian, H., Wei, H., & Xu, X. (2013). Performance comparison and working fluid analysis of subcritical and transcritical dual-loop organic Rankine cycle (DORC) used in engine waste heat recovery. Energy Conversion and Management, 74, 35-43.
  • [22] Yamankaradeniz, R., Horuz, I., Kaynakli, O., Coskun, S., & Yamankaradeniz, N. (2009). Refrigeration techniques and heat pump applications.
  • [23] Dincer, I., & Rosen, M. A. (2012). Exergy: energy, environment and sustainable development. Newnes.
  • [24] Klein, S. A. (2003). EES-engineering equation solver, professional version. F-chart software, Middleton, WI.
  • [25] Florides, G. A., Kalogirou, S. A., Tassou, S. A., & Wrobel, L. C. (2003). Design and construction of a LiBr–water absorption machine. Energy conversion and management, 44(15), 2483-2508.
  • [26] Chua, H. T., Toh, H. K., Malek, A., Ng, K. C., & Srinivasan, K. (2000). Improved thermodynamic property fields of LiBr–H2O solution. International Journal of Refrigeration, 23(6), 412-429.
  • [27] Y.A. Çengel, M. Boles, Thermodynamics: An Engineering Approach. New York: McGraw-Hill Series, 2011.
  • [28] Anand, D. K., & Kumar, B. (1987). Absorption machine irreversibility using new entropy calculations. Solar Energy, 39(3), 243-256.
  • [29] S.C. Kaushik, A. Arora, “Energy and exergy analysis of single effect and series flow double effect water–lithium bromide absorption refrigeration systems”, International Journal of Refrigeration, 2009.
  • [30] Wikipedia, The free encyclopedia, https://en.wikipedia.org/wiki/Brake_specific_fuel_consumption. (accessed 17 January 2017)
  • [31] Hegar, M., Kolda, M., Kopecka, M., Rajtmajer, V., & Ryska, A. (2013). Bus HVAC energy consumption test method based on HVAC unit behavior. International Journal of Refrigeration, 36(4), 1254-1262.
  • [32] Robinson, K. K., & Briggs, D. E. (1966). Pressure drop of air flowing across triangular pitch banks of finned tubes. In Chem. Eng. Prog. Symp. Ser (Vol. 62, No. 64, pp. 177-184).
  • [33] Farshi, L. G., Mahmoudi, S. S., Rosen, M. A., Yari, M., & Amidpour, M. (2013). Exergoeconomic analysis of double effect absorption refrigeration systems. Energy Conversion and Management, 65, 13-25.
  • [34] Ghassemieh, E. (2011). Materials in automotive application, state of the art and prospects. In New trends and developments in automotive industry. InTechOpen..
  • [35] Temsa TS45 Broshure, http://chbussales.com/wp-content/uploads/2015/01/2015-TS-45-Brochure_Online.pdf. (accessed 17 January 2017)
There are 35 citations in total.

Details

Primary Language English
Subjects Engineering
Journal Section Articles
Authors

Nazım Kurtulmuş

Publication Date June 24, 2019
Submission Date October 6, 2017
Published in Issue Year 2019 Volume: 5 Issue: 4

Cite

APA Kurtulmuş, N. (2019). ENERGY AND EXERGY ANALYSIS OF A VAPOR ABSORPTION REFRIGERATION SYSTEM IN AN INTERCITY BUS APPLICATION. Journal of Thermal Engineering, 5(4), 355-371. https://doi.org/10.18186/thermal.583316
AMA Kurtulmuş N. ENERGY AND EXERGY ANALYSIS OF A VAPOR ABSORPTION REFRIGERATION SYSTEM IN AN INTERCITY BUS APPLICATION. Journal of Thermal Engineering. June 2019;5(4):355-371. doi:10.18186/thermal.583316
Chicago Kurtulmuş, Nazım. “ENERGY AND EXERGY ANALYSIS OF A VAPOR ABSORPTION REFRIGERATION SYSTEM IN AN INTERCITY BUS APPLICATION”. Journal of Thermal Engineering 5, no. 4 (June 2019): 355-71. https://doi.org/10.18186/thermal.583316.
EndNote Kurtulmuş N (June 1, 2019) ENERGY AND EXERGY ANALYSIS OF A VAPOR ABSORPTION REFRIGERATION SYSTEM IN AN INTERCITY BUS APPLICATION. Journal of Thermal Engineering 5 4 355–371.
IEEE N. Kurtulmuş, “ENERGY AND EXERGY ANALYSIS OF A VAPOR ABSORPTION REFRIGERATION SYSTEM IN AN INTERCITY BUS APPLICATION”, Journal of Thermal Engineering, vol. 5, no. 4, pp. 355–371, 2019, doi: 10.18186/thermal.583316.
ISNAD Kurtulmuş, Nazım. “ENERGY AND EXERGY ANALYSIS OF A VAPOR ABSORPTION REFRIGERATION SYSTEM IN AN INTERCITY BUS APPLICATION”. Journal of Thermal Engineering 5/4 (June 2019), 355-371. https://doi.org/10.18186/thermal.583316.
JAMA Kurtulmuş N. ENERGY AND EXERGY ANALYSIS OF A VAPOR ABSORPTION REFRIGERATION SYSTEM IN AN INTERCITY BUS APPLICATION. Journal of Thermal Engineering. 2019;5:355–371.
MLA Kurtulmuş, Nazım. “ENERGY AND EXERGY ANALYSIS OF A VAPOR ABSORPTION REFRIGERATION SYSTEM IN AN INTERCITY BUS APPLICATION”. Journal of Thermal Engineering, vol. 5, no. 4, 2019, pp. 355-71, doi:10.18186/thermal.583316.
Vancouver Kurtulmuş N. ENERGY AND EXERGY ANALYSIS OF A VAPOR ABSORPTION REFRIGERATION SYSTEM IN AN INTERCITY BUS APPLICATION. Journal of Thermal Engineering. 2019;5(4):355-71.

IMPORTANT NOTE: JOURNAL SUBMISSION LINK http://eds.yildiz.edu.tr/journal-of-thermal-engineering