ZnO nanorefrigerant in R152a refrigeration system for energy conservation and green environment

D. SENDIL KUMAR, R. ELANSEZHIAN

PDF(290 KB)
PDF(290 KB)
Front. Mech. Eng. ›› 2014, Vol. 9 ›› Issue (1) : 75-80. DOI: 10.1007/s11465-014-0285-y
RESEARCH ARTICLE

ZnO nanorefrigerant in R152a refrigeration system for energy conservation and green environment

Author information +
History +

Abstract

In this paper the reliability and performance of a vapour compression refrigeration system with ZnO nanoparticles in the working fluid was investigated experimentally. Nanorefrigerant was synthesized on the basis of the concept of the nanofluids, which was prepared by mixing ZnO nanoparticles with R152a refrigerant. The conventional refrigerant R134a has a global warming potential (GWP) of 1300 whereas R152a has a significant reduced value of GWP of 140 only. An experimental test rig is designed and fabricated indigenously in the laboratory to carry out the investigations. ZnO nanoparticles with refrigerant mixture were used in HFC R152a refrigeration system. The system performance with nanoparticles was then investigated. The concentration of nano ZnO ranges in the order of 0.1% v, 0.3% v and 0.5%v with particle size of 50 nm and 150 g of R152a was charged and tests were conducted. The compressor suction pressure, discharge pressure and evaporator temperature were measured. The results indicated that ZnO nanorefrigerant works normally and safely in the system. The ZnO nanoparticle concentration is an important factor considered for heat transfer enhancement in the refrigeration system. The performance of the system was significantly improved with 21% less energy consumption when 0.5%v ZnO-R152a refrigerant. Both the suction pressure and discharge pressure were lowered by 10.5% when nanorefrigerant was used. The evaporator temperature was reduced by 6% with the use of nanorefrigerant. Hence ZnO nanoparticles could be used in refrigeration system to considerably reduce energy consumption. The usage of R152a with zero ozone depleting potential (ODP) and very less GWP and thus provides a green and clean environment. The complete experimental results and their analysis are reported in the main paper.

Keywords

ZnO nanorefrigerant / reduced GWP / COP / pressure ratio green energy

Cite this article

Download citation ▾
D. SENDIL KUMAR, R. ELANSEZHIAN. ZnO nanorefrigerant in R152a refrigeration system for energy conservation and green environment. Front. Mech. Eng., 2014, 9(1): 75‒80 https://doi.org/10.1007/s11465-014-0285-y

References

[1]
MohanrajM, JayarajS, MuraleedharanC, ChandrasekarP. Experimental investigation of R290/R600a mixture as an alternative to R134a in a domestic refrigerator. International Journal of Thermal Sciences, 2009, 48(5): 1036-1042
CrossRef Google scholar
[2]
TsaiW T. An overview of environmental hazards and exposure risk of hydrofluorocarbons (HFCs). Chemosphere, 2005, 61(11): 1539-1547
CrossRef Pubmed Google scholar
[3]
JanseenM, EnglesF. The use of HFC134a with mineral oil in hermetic cooling equipment, Report 95403/NO 07. Presented in the 19th International Congress of Refrigeration. The Hague1995
[4]
SekharS J, LalD M. HFC 134a/HC600a/HC290 mixture a retrofit for CFC12 systems. International Journal of Refrigeration, 2005, 28(5): 735-743
CrossRef Google scholar
[5]
MahbubulI M, FadhilahS A, SaidurR, LeongK Y, AmalinaM A. Thermophysical properties and heat transfer, Performance of Al2O3/R-134a nanorefrigerants. International Journal of Heat and Mass Transfer, 2013, 57(1): 100-108
CrossRef Google scholar
[6]
WongwisesS, ChimresN.Experimental studies of hydrocarbon mixture to replace HFC134a in a domestic refrigerator. Energy Conversion and Management, 2005, 46(1): 85-100
CrossRef Google scholar
[7]
BolajiB O, AkintundeM A, FaladeT O. Comparative analysis of performance of three ozone-friends HFC refrigerants in a vapour compression refrigeration. Journal of Sustainable and Environment, 2011, 2: 61-64
[8]
AminfarH, HaghgooM R. Brownian motion and thermophoresis effects on natural convection of alumina-water nanofluid. Proceedings of the Institution of Mechanical Engineers. Part C, Journal of Mechanical Engineering Science, 2013, 227(1): 100-110
CrossRef Google scholar
[9]
SarkarJ, BhattacharyaS, LalA. Selection of suitable natural refrigerants pairs for cascade refrigeration system. Proceedings of the Institution of Mechanical Engineers. Part A, Journal of Power and Energy, 2013, 227(5): 612-622
CrossRef Google scholar
[10]
AminfarH, MaroofiazarR. A numerical study of the hydro-thermal behavior of nanofluids in rectangular microchannels using a mixture model. Proceedings of the Institution of Mechanical Engineers Part C: Journal of Mechanical Engineering Science, 2011, 225(4): 791-798
[11]
TajikB, AbbassiA, Saffsr-AvvalM, NajafabadiM A. Ultrasonic properties of suspensions of TiO2 and Al2O3 nanoparticles in water. Powder Technology, 2012, 217: 171-176
CrossRef Google scholar
[12]
LiuZ H, ZhuQ Z. Application of aqueous nanofluids in a horizontal mesh heat pipe. Energy Conversion and Management, 2011, 52(1): 292-300
CrossRef Google scholar
[13]
TsaiC Y, ChienH T, DingP P, ChanB, LuhT Y, ChenP H. Effect of structural character of gold nanoparticles in nanofluid on heat pipe thermal performance. Materials Letters, 2004, 58(9): 1461-1465
CrossRef Google scholar
[14]
SalehiH, Zeinali HerisS, NoieS H. Zeinali HerisS, NoieS H. Water-silver nanofluid application in a TPCT under an external magnetic field. Heat Transfer Asian Research, 2012, 41(4): 289-301
CrossRef Google scholar
[15]
AroraA, SachdevH L.Thermodynamic analysis of R422 series refrigerants as alternative refrigerants to HCFC22 in a vapour compression refrigeration system. International Journal of Energy Research, 2009, 33(8): 753-765
CrossRef Google scholar
[16]
MittalN, ManojV,. Santhosh KumarD,. SatheeshA. Numerical simulation of mixed convection in a porous medium filled with water/Al2O3 Nanofluid. Heat Transfer-Asian Research, 2013, 42(1): 46-59
[17]
HeZ, WangS, WangX, IqbalZ. Hydrogen storage in hierarchical nanoporous silicon-carbon nanotube architectures. International Journal of Energy Research, 2013, 37(7): 754-760
CrossRef Google scholar
[18]
LiuZ H, LiY Y, BaoR. Composite effect of nanoparticle parameter on thermal performance of cylindrical micro-grooved heat pipe using nanofluids. International Journal of Thermal Sciences, 2011, 50: 558-568
CrossRef Google scholar
[19]
MwabaM G, HuangX, GuJ. Influence of wick characteristics on heat pipe performance. International Journal of Energy Research, 2006, 30(7): 489-499
CrossRef Google scholar
[20]
TsaiC Y, ChienH T, DingP P, ChanB, LuhT Y, ChenP H. Effect of structural character of gold nanoparticles in nanofluid on heat pipe thermal performance. Materials Letters, 2004, 58(9): 1461-1465
CrossRef Google scholar
[21]
ManimaranR, PalaniradjaK, AlgumurthiN, HussainJ. Experimental comparative study of heat pipe performance using CuO and TiO2 nanofluids. International Journal of Energy Research, 2013<month>Jun</month><day>6</day>, [Epub ahead of print]
CrossRef Google scholar
[22]
BiS, GuoK, LiuZ, WuJ. Performance of a domestic refrigerator using TiO2-R600a nano-refrigerant as working fluid. Int J of Energy Conservation and Management, 2011, 52(1): 733-737
CrossRef Google scholar
[23]
SaidurR, KaziS N, HossainM S, RahmanM M, MohammedH A. A review on the performance of nano-particles suspended with refrigerants and lubricating oils in refrigeration system.Renewable and Sustainable Energy Reviews, 2011, 15(1): 310-323
CrossRef Google scholar
[24]
Joseph SekherS, Mohan LalD, RenganarayananS. Improved energy efficiency for CFC domestic refrigerators retrofitted with ozone friendly HFC134a. International Journal of Thermal Sciences, 2004, 43(3): 307-314
CrossRef Google scholar
[25]
Sendil KumarD, ElansezhainR. Experimental study of Al2O3-R134a nano-refrigerant in refrigeration system. International Journal of Modern Engineering Research, 2012, 2(5): 3927-3929
[26]
PulitiG, PaoluccciS, SenM. Thermodynamic properies of gold-water nanofluids using molecular dynamics. Journal of Nanoparticle Research, 2012, 14(12): 1296
CrossRef Google scholar
[27]
YangK S, ChangW R, ChenI Y, WangC C. An investigation of a top-mounted domestic refrigerator.Energy Conservation and Management, 2010, 51(7): 1422-1427
CrossRef Google scholar
[28]
JiangW, DingG, PengH. Measurement and model on thermal conductivities of carbon nanotube nanorefrigerants. International Journal of Thermal Sciences, 2009, 48(6): 1108-1115
CrossRef Google scholar
[29]
SaidurR, KaziS N, HossainM S, RahmanM M, MohamedH A. A review on the performance of nanoparticles suspended with refrigerants and lubricating oils in refrigeration systems. Renewable & Sustainable Energy Reviews, 2011, 15(1): 310-323
CrossRef Google scholar
[30]
BolajiB O. Experimental study of R152a and R32 to replace R134a in a domestic refrigerator. Energy, 2010, 35(9): 3793-3798
CrossRef Google scholar

Acknowledgments

The authors would like to thank the Department of Science, Technology and Environment, Puducherry for partially funding this research project vide G.O.Rt.No.09/2013- Envt.

RIGHTS & PERMISSIONS

2014 Higher Education Press and Springer-Verlag Berlin Heidelberg
AI Summary AI Mindmap
PDF(290 KB)

Accesses

Citations

Detail

Sections
Recommended

/