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A review study on LPG as an alternative refrigerant

Yıl 2017, Cilt: 7 Sayı: 3, 1 - 7, 31.12.2017

Öz

This study reviews the literature, which has numerous works on the use
of LPG, a hydrocarbon fuel utilized in many types of equipment, as an
alternative refrigerant without any change in refrigerators, air conditioners,
and similar cooling devices at various sizes. Referring to the results obtained
from these studies LPG provides improvement of COP, reduction of the
refrigerant amount used and energy saving compared to the other refrigerants in
cooling devices draw attention of scientists. Outlining the results of the
works given in this study, COP improvement, refrigerant reduction by mass, and
energy saving reach to the values of 25.1%, 50%, and 90%, respectively, in case
of using LPG instead of convensional refrigerants in different types of cooling
machines.

Kaynakça

  • Abboud, B. (1994). Field trials of propane/butane in automotive air-conditioning, B.E. thesis, School of Mechanical and Manufacturing Engineering, The University of New South Wales, Sydney.
  • Akash, B.A. and Said, S.A. (2003). Assessment of LPG as a possible alternative to R-12 in domestic refrigerators, Energy Conversion and Management, 44, 381–388.
  • Alsaad, M.A. and Hammad, M.A. (1998). The application of propane/butane mixture for domestic refrigerators, Applied Thermal Engineering, 18, 911-918.
  • Beser, E. (1997). Sogutucu maddelerle ilgili dünyada ve Türkiye'deki gelişmeler, IV. Ulusal Tesisat Mühendisligi Kongresi ve Sergisi, Bildiriler Kitabı, 2, 679-697.
  • Beşer, E. (1998). Soğutucu maddelerle ilgili dünyada ve Türkiye'deki gelişmeler, Mühendis ve Makine, 39, 458, 15-26.
  • Calm, J.M. and Hourahan, G.C. (2001). Refrigerant data summery, Engineering Systems, 18, 74–88.
  • Chaichana, C., Lu, A. and Charters, W.W.S. (2003). Natural working fluids for solar boosted heat pumps, International Journal of Refrigeration, 26, 637–643.
  • Chang, Y.S., Kim, M.S. and Ro, S.T. (2000). Performance and heat transfer characteristics of hydrocarbon refrigerants in a heat pump system, International Journal of Refrigeration, 23, 232–242.
  • Choi, D.K., Domanski, P.A. and Didion, D.A. (1996). Evaluation of flammable refrigerants for use in water-to-water residential heat pump. IIR applications for natural refrigerants, In: Proceedings, Aarhus, Denmark, 467–476.
  • Dalkilic, A.S. and Wongwises, S. (2010). A performance comparison of vapour-compression refrigeration system using various alternative refrigerants, International Communications in Heat and Mass Transfer, 37, 1340–1349.
  • Dieckmann, J., Bentley, J. and Varone, A. (1991). Non-inert refrigerant study for automotive applications final report, US Department of Energy, 76.
  • Dossat, R.J. (1997). Principles of refrigeration, Prentice Hall, 512, New Jersey.
  • Ed. Kreith, F. (2000). The CRC handbook of thermal engineering, CRC Press LLC.
  • Elefsen, F., Nyvad, J., Gerrard, A. and VanGerwen, R. (2003). Field test of 75 R404A and R290 ice cream freezers in Australia, ARIAH Journal, 24–27.
  • El-Morsi, M. (2015). Energy and exergy analysis of LPG (liquefied petroleum gas) as a drop in replacement for R134a in domestic refrigerators, Energy, 86, 344-353.
  • Fatouh, M. and El Kafafy, M. (2006). Experimental evaluation of a domestic refrigerator working with LPG, Applied Thermal Engineering, 26, 1593–1603.
  • Ghodbane, M. (1999). An investigation of R152a and hydrocarbon refrigerants in mobile air conditioning, SAE Technical Papers, Paper No. 1999-01-0874, Society of Automotive Engineers.
  • Hammad, M.A. and Alsaad, M.A. (1999). The use of hydrocarbon mixtures as refrigerants in domestic refrigerators, Applied Thermal Engineering, 19, 1181-1189.
  • Hesselgreaves, J.E. (2001). Compact heat exchangers, Elsevier Science & Technology Books.
  • Hwang, Y., Jin, D.H. and Radermacher, R. (2004). Comparison of hydrocarbon R-290 and two HFC blends R-404a and R-410a for medium temperature refrigeration applications, Final Interim Report, University of Maryland.
  • IPCC, (1994). Radiative forcing of climate change, The 1994 report of the scientic assessment working group of IPCC, Summary for policy makers, Intergovernmental Panel on Climate Change, 28.
  • Joudi, K.A., Mohammed A.S. and Aljanabi, M.K. (2003). Experimental and computer performance study of an automotive air conditioning system with alternative refrigerants, Energy Conversion Management, 44, 2959–2976.
  • Jung, D., Kim, C.B., Lim, B.H. and Lee, H.W. (1996). Testing of a hydrocarbon mixture in domestic refrigerators, ASHRAE Transactions, 3, 1077–1084.
  • Jung, D., Kim, C.B., Song, K. and Park, B. (2000). Testing of propane/izobutane mixture in domestic refrigerators, International Journal of Refrigeration, 23, 517-527.
  • Jung, D.S., Park, B. and Lee, H. (1999). Evaluation of supplementary/ retrofit refrigerants for automobile air conditioning charged with CFC12, International Journal of Refrigeration, 22, 558–568.
  • Jwo, C.S., Ting, C.C. and Wang, W.R. (2009). Efficiency analysis of home refrigerators by replacing hydrocarbon refrigerants, Measurement, 42, 697–701.
  • Kara, A. (2008). Evaporatif kondenser tasarımı, imalatı ve deneysel olarak incelenmesi, Bilim Uzmanlıgı Tezi, Karabük Üniversitesi.
  • Leonardi, E. and Maclaine-cross, I.L. (1995). Performance and safety of LPG refrigerants, Proceeding of the Fuel for Change Conference of the Australian LPG Association Ltd, 149-168.
  • Liu, B.Y., Tomasek, M. and Radermacher, R. (1995). Experimental results with hydrocarbon mixtures in domestic refrigerator/freezers, ASHRAE Trans., 101, 1415–1421.
  • Maclaine-cross, I. L. and Leonardi, E. (1995). Hydrocarbon Refrigerant Risk in Car Air-Conditioners, International CFC and Halon Alternatives Conference, Washington DC.
  • Mani, K. and Selladurai, V. (2008). Experimental analysis of a new refrigerant mixture as dropin replacement for CFC12 and HFC134a, International Journal of Thermal Sciences, 47, 1490–1495.
  • Meyer, J.P. (1998). Evaluation of LPG as a refrigerant in air conditioning and refrigeration, Mechanical Technology, December, 7-12.
  • Mohanraj, M., Jayaraj, S. and Muraleedharan, C. (2009). Environment friendly alternatives to halogenated refrigerants - A review, International Journal of Greenhouse Gas Control, 3, 108-119.
  • Mohanraj, M., Jayaraj, S., Muraleedharan, C. and Chandrasekar, P. (2009). Experimental investigation of R290/R600a mixture as an alternative to R134a in a domestic refrigerator, International Journal of Thermal Sciences, 48, 1036–1042.
  • NIST, (2002). REFPROP-Reference Fluid Thermodynamic and Transport Properties V7.0.
  • Özkol, N. (1999). Uygulamalı soğutma tekniği, TMMOB Makine Mühendisleri Odası, Yayın No: 115, 714, Ankara.
  • Park, K.J. and Jung, D.S. (2006). Thermodynamic performance of HCFC22 alternative refrigerants for residential air conditioning applications, Energy and Buildings, 39, 675–680.
  • Parmar, A.S. (1995). Performance of hydrocarbon refrigerants in motor car air- conditioning, B.E. Thesis, School of Mechanical and Manufacturing Engineering, The University of New South Wales, Sydney.
  • Peixoto, R., Epof, S. and Parra, D. (2000). Experimental Investigation on the Performance of Commercial Freezers Using Refrigerant R600a, IIF-IIR Commission B1, B2, E1 and E2, Purdue University, USA, 159–165.
  • Purkayastha, B. and Bansal, P.K. (1998). Experimental study on HC290 and a commercial liquefied petroleum gas (LPG) mix as suitable replacements for HCFC22, International Journal of Refrigeration, 21, 213–217.
  • Rasti, M., Aghamiri, S.F. and Hatamipour, M.S. (2013). Energy efficiency enhancement of a domestic refrigerator using R436A and R600a as alternative refrigerants to R134a, International Journal of Thermal Sciences, 74, 86-94.
  • Rasti, M., Hatamipour, M.S., Aghamiri, S.F. and Tavakoli, M. (2012). Enhancement of domestic refrigerator’s energy efficiency index using a hydrocarbon mixture refrigerant, Measurement, 45, 1807–1813.
  • Ravikumar, T.S. and Lal, D.M. (2009). On-road performance analysis of R134a/R600a/R290 refrigerant mixture in an automobile air-conditioning system with mineral oil as lubricant, Energy Conversion and Management, 50, 1891–1901.
  • Richardson, R. and Butterworth, J. (1995). The performance of propane/isobutane mixtures in vapor compression systems, International Journal of Refrigeration, 18, 1, 58-62.
  • Rivis, E. and Bidone, A. (1994). Isobutane/propane mixtures: comparison with traditional refrigerants, The Day After Conference, Padua, Italy, 345-353.
  • Şengür, S. (2005). Buzdolaplarında alternatif soğutucu akışkan olarak LPG kullanılmasının deneysel olarak araştırılması, Yüksek Lisans Tezi, Fırat Üniversitesi.
  • Urchueguia, J.F., Corberan, J.M., Gonzalvez, J. and Diaz, J.M. (2004). Experimental characterization of a commercial–size scroll and reciprocating compressor working with R22 and propane (R290) as refrigerant, Ecobibrium Journal of AIRAH, 23–25.
  • Wongwises, S. and Chimres, N. (2005). Experimental study of hydrocarbon mixtures to replace HFC134a in domestic refrigerators, Energy Conversion and Management, 46, 85–100.
  • Wongwises, S., Kamboon, A. and Orachon, B. (2006). Experimental investigation of hydrocarbon mixtures to replace HFC-134a in an automotive air conditioning system, Energy Conversion and Management, 47, 1644–1659.
  • World Meteorological Organization, (1991). Scientific assessment of ozone depletion:1991, Global ozone research and monitoring project - Report No. 25, Geneva.
  • Yu, C.C. and Teng, T.P. (2014). Retrofit assessment of refrigerator using hydrocarbon refrigerants, Applied Thermal Engineering, 66, 507-518.

ALTERNATİF BİR SOĞUTUCU GAZ OLARAK LPG ÜZERİNE BİR DERLEME ÇALIŞMASI

Yıl 2017, Cilt: 7 Sayı: 3, 1 - 7, 31.12.2017

Öz

Bu çalışma, çeşitli boyutlardaki buzdolabı, klima ve benzeri soğutma gereçleri olmak üzere pek çok ekipmanda alternatif bir soğutucu gaz olarak kullanılan bir hidrokarbon yakıt olan LPG üzerine yapılan çok sayıda çalışmaları içeren literatürü derlemektedir. Bu çalışmalardan elde edilen sonuçlara başvurulduğunda LPG'nin diğer soğutucularla kıyaslandığında soğutma gereçlerinde COP'yi geliştirdiği, kullanılan soğutucu gaz miktarını düşürdüğü ve enerji tasarrufu sağladığı bilim adamlarının dikkatini çekmektedir. Bu çalışmada verilen eserlerden elde edilen sonuçlar özetlendiğinde, farklı tiplerde soğutma makinelerinde geleneksel soğutucu gazlar yerine LPG kullanılması durumunda COP gelişimi, kütlesel olarak soğutucu gaz miktarındaki azalma ve enerji tasarrufu sırasıyla %25,1, %50 ve %90 değerlerine ulaşmaktadır.

Kaynakça

  • Abboud, B. (1994). Field trials of propane/butane in automotive air-conditioning, B.E. thesis, School of Mechanical and Manufacturing Engineering, The University of New South Wales, Sydney.
  • Akash, B.A. and Said, S.A. (2003). Assessment of LPG as a possible alternative to R-12 in domestic refrigerators, Energy Conversion and Management, 44, 381–388.
  • Alsaad, M.A. and Hammad, M.A. (1998). The application of propane/butane mixture for domestic refrigerators, Applied Thermal Engineering, 18, 911-918.
  • Beser, E. (1997). Sogutucu maddelerle ilgili dünyada ve Türkiye'deki gelişmeler, IV. Ulusal Tesisat Mühendisligi Kongresi ve Sergisi, Bildiriler Kitabı, 2, 679-697.
  • Beşer, E. (1998). Soğutucu maddelerle ilgili dünyada ve Türkiye'deki gelişmeler, Mühendis ve Makine, 39, 458, 15-26.
  • Calm, J.M. and Hourahan, G.C. (2001). Refrigerant data summery, Engineering Systems, 18, 74–88.
  • Chaichana, C., Lu, A. and Charters, W.W.S. (2003). Natural working fluids for solar boosted heat pumps, International Journal of Refrigeration, 26, 637–643.
  • Chang, Y.S., Kim, M.S. and Ro, S.T. (2000). Performance and heat transfer characteristics of hydrocarbon refrigerants in a heat pump system, International Journal of Refrigeration, 23, 232–242.
  • Choi, D.K., Domanski, P.A. and Didion, D.A. (1996). Evaluation of flammable refrigerants for use in water-to-water residential heat pump. IIR applications for natural refrigerants, In: Proceedings, Aarhus, Denmark, 467–476.
  • Dalkilic, A.S. and Wongwises, S. (2010). A performance comparison of vapour-compression refrigeration system using various alternative refrigerants, International Communications in Heat and Mass Transfer, 37, 1340–1349.
  • Dieckmann, J., Bentley, J. and Varone, A. (1991). Non-inert refrigerant study for automotive applications final report, US Department of Energy, 76.
  • Dossat, R.J. (1997). Principles of refrigeration, Prentice Hall, 512, New Jersey.
  • Ed. Kreith, F. (2000). The CRC handbook of thermal engineering, CRC Press LLC.
  • Elefsen, F., Nyvad, J., Gerrard, A. and VanGerwen, R. (2003). Field test of 75 R404A and R290 ice cream freezers in Australia, ARIAH Journal, 24–27.
  • El-Morsi, M. (2015). Energy and exergy analysis of LPG (liquefied petroleum gas) as a drop in replacement for R134a in domestic refrigerators, Energy, 86, 344-353.
  • Fatouh, M. and El Kafafy, M. (2006). Experimental evaluation of a domestic refrigerator working with LPG, Applied Thermal Engineering, 26, 1593–1603.
  • Ghodbane, M. (1999). An investigation of R152a and hydrocarbon refrigerants in mobile air conditioning, SAE Technical Papers, Paper No. 1999-01-0874, Society of Automotive Engineers.
  • Hammad, M.A. and Alsaad, M.A. (1999). The use of hydrocarbon mixtures as refrigerants in domestic refrigerators, Applied Thermal Engineering, 19, 1181-1189.
  • Hesselgreaves, J.E. (2001). Compact heat exchangers, Elsevier Science & Technology Books.
  • Hwang, Y., Jin, D.H. and Radermacher, R. (2004). Comparison of hydrocarbon R-290 and two HFC blends R-404a and R-410a for medium temperature refrigeration applications, Final Interim Report, University of Maryland.
  • IPCC, (1994). Radiative forcing of climate change, The 1994 report of the scientic assessment working group of IPCC, Summary for policy makers, Intergovernmental Panel on Climate Change, 28.
  • Joudi, K.A., Mohammed A.S. and Aljanabi, M.K. (2003). Experimental and computer performance study of an automotive air conditioning system with alternative refrigerants, Energy Conversion Management, 44, 2959–2976.
  • Jung, D., Kim, C.B., Lim, B.H. and Lee, H.W. (1996). Testing of a hydrocarbon mixture in domestic refrigerators, ASHRAE Transactions, 3, 1077–1084.
  • Jung, D., Kim, C.B., Song, K. and Park, B. (2000). Testing of propane/izobutane mixture in domestic refrigerators, International Journal of Refrigeration, 23, 517-527.
  • Jung, D.S., Park, B. and Lee, H. (1999). Evaluation of supplementary/ retrofit refrigerants for automobile air conditioning charged with CFC12, International Journal of Refrigeration, 22, 558–568.
  • Jwo, C.S., Ting, C.C. and Wang, W.R. (2009). Efficiency analysis of home refrigerators by replacing hydrocarbon refrigerants, Measurement, 42, 697–701.
  • Kara, A. (2008). Evaporatif kondenser tasarımı, imalatı ve deneysel olarak incelenmesi, Bilim Uzmanlıgı Tezi, Karabük Üniversitesi.
  • Leonardi, E. and Maclaine-cross, I.L. (1995). Performance and safety of LPG refrigerants, Proceeding of the Fuel for Change Conference of the Australian LPG Association Ltd, 149-168.
  • Liu, B.Y., Tomasek, M. and Radermacher, R. (1995). Experimental results with hydrocarbon mixtures in domestic refrigerator/freezers, ASHRAE Trans., 101, 1415–1421.
  • Maclaine-cross, I. L. and Leonardi, E. (1995). Hydrocarbon Refrigerant Risk in Car Air-Conditioners, International CFC and Halon Alternatives Conference, Washington DC.
  • Mani, K. and Selladurai, V. (2008). Experimental analysis of a new refrigerant mixture as dropin replacement for CFC12 and HFC134a, International Journal of Thermal Sciences, 47, 1490–1495.
  • Meyer, J.P. (1998). Evaluation of LPG as a refrigerant in air conditioning and refrigeration, Mechanical Technology, December, 7-12.
  • Mohanraj, M., Jayaraj, S. and Muraleedharan, C. (2009). Environment friendly alternatives to halogenated refrigerants - A review, International Journal of Greenhouse Gas Control, 3, 108-119.
  • Mohanraj, M., Jayaraj, S., Muraleedharan, C. and Chandrasekar, P. (2009). Experimental investigation of R290/R600a mixture as an alternative to R134a in a domestic refrigerator, International Journal of Thermal Sciences, 48, 1036–1042.
  • NIST, (2002). REFPROP-Reference Fluid Thermodynamic and Transport Properties V7.0.
  • Özkol, N. (1999). Uygulamalı soğutma tekniği, TMMOB Makine Mühendisleri Odası, Yayın No: 115, 714, Ankara.
  • Park, K.J. and Jung, D.S. (2006). Thermodynamic performance of HCFC22 alternative refrigerants for residential air conditioning applications, Energy and Buildings, 39, 675–680.
  • Parmar, A.S. (1995). Performance of hydrocarbon refrigerants in motor car air- conditioning, B.E. Thesis, School of Mechanical and Manufacturing Engineering, The University of New South Wales, Sydney.
  • Peixoto, R., Epof, S. and Parra, D. (2000). Experimental Investigation on the Performance of Commercial Freezers Using Refrigerant R600a, IIF-IIR Commission B1, B2, E1 and E2, Purdue University, USA, 159–165.
  • Purkayastha, B. and Bansal, P.K. (1998). Experimental study on HC290 and a commercial liquefied petroleum gas (LPG) mix as suitable replacements for HCFC22, International Journal of Refrigeration, 21, 213–217.
  • Rasti, M., Aghamiri, S.F. and Hatamipour, M.S. (2013). Energy efficiency enhancement of a domestic refrigerator using R436A and R600a as alternative refrigerants to R134a, International Journal of Thermal Sciences, 74, 86-94.
  • Rasti, M., Hatamipour, M.S., Aghamiri, S.F. and Tavakoli, M. (2012). Enhancement of domestic refrigerator’s energy efficiency index using a hydrocarbon mixture refrigerant, Measurement, 45, 1807–1813.
  • Ravikumar, T.S. and Lal, D.M. (2009). On-road performance analysis of R134a/R600a/R290 refrigerant mixture in an automobile air-conditioning system with mineral oil as lubricant, Energy Conversion and Management, 50, 1891–1901.
  • Richardson, R. and Butterworth, J. (1995). The performance of propane/isobutane mixtures in vapor compression systems, International Journal of Refrigeration, 18, 1, 58-62.
  • Rivis, E. and Bidone, A. (1994). Isobutane/propane mixtures: comparison with traditional refrigerants, The Day After Conference, Padua, Italy, 345-353.
  • Şengür, S. (2005). Buzdolaplarında alternatif soğutucu akışkan olarak LPG kullanılmasının deneysel olarak araştırılması, Yüksek Lisans Tezi, Fırat Üniversitesi.
  • Urchueguia, J.F., Corberan, J.M., Gonzalvez, J. and Diaz, J.M. (2004). Experimental characterization of a commercial–size scroll and reciprocating compressor working with R22 and propane (R290) as refrigerant, Ecobibrium Journal of AIRAH, 23–25.
  • Wongwises, S. and Chimres, N. (2005). Experimental study of hydrocarbon mixtures to replace HFC134a in domestic refrigerators, Energy Conversion and Management, 46, 85–100.
  • Wongwises, S., Kamboon, A. and Orachon, B. (2006). Experimental investigation of hydrocarbon mixtures to replace HFC-134a in an automotive air conditioning system, Energy Conversion and Management, 47, 1644–1659.
  • World Meteorological Organization, (1991). Scientific assessment of ozone depletion:1991, Global ozone research and monitoring project - Report No. 25, Geneva.
  • Yu, C.C. and Teng, T.P. (2014). Retrofit assessment of refrigerator using hydrocarbon refrigerants, Applied Thermal Engineering, 66, 507-518.
Toplam 51 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Mühendislik
Bölüm Makaleler
Yazarlar

Adem Ugurlu

Cihan Gokcol Bu kişi benim

Yayımlanma Tarihi 31 Aralık 2017
Gönderilme Tarihi 22 Temmuz 2017
Yayımlandığı Sayı Yıl 2017 Cilt: 7 Sayı: 3

Kaynak Göster

APA Ugurlu, A., & Gokcol, C. (2017). A review study on LPG as an alternative refrigerant. Ejovoc (Electronic Journal of Vocational Colleges), 7(3), 1-7.