Evaluation of the thermal performance of various nanofluids used to harvest solar energy

Bader Alshuraiaan

Energy, Ecology and Environment ›› 2021, Vol. 6 ›› Issue (6) : 531 -539.

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Energy, Ecology and Environment ›› 2021, Vol. 6 ›› Issue (6) : 531 -539. DOI: 10.1007/s40974-021-00213-6
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Evaluation of the thermal performance of various nanofluids used to harvest solar energy

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Abstract

The use of alternative energy sources is nearly the only way to meet the energy needs of people worldwide caused by the exhaustion of natural fuel sources. Currently, solar energy is the most affordable and environmentally sustainable energy resource. However, the efficiency of the existing solar collectors is below 50%. There are many technological approaches to increase the heat transfer efficiency of solar collectors, which imply the enhancement of solar radiation uptake. The efficiency of solar collectors was also found dependent upon the properties of the working liquid. Nanofluids are used to improve the thermal properties of solar collectors as they are characterized by good radiation absorption performance. This paper examines the thermal performance of different nanofluids used to collect solar energy at the volumetric flow rate ranging from 50 to 100 ml/h using a GALMET heat exchanger. The examined nanofluids are aqueous solutions composed of Al2O3, SiO2, TiO2, and graphene nanoparticles (0.500…2wt.%). With these nanofluids, direct absorption solar collectors (DASCs) demonstrated efficiency improvements of up to 5%. The effect of flow hydrodynamics on heat transfer capacity and thermal efficiency of solar collectors has been studied. The thermal performances of nanofluids were as follows: graphene-based, 10.755 kJ/m; TiO2-based, 9.414 kJ/m2; SiO2-based, 7.467 kJ/m2; and Al2O3-based, 5.714 kJ/m2. The efficiencies of solar collectors using these nanofluids as a working fluid were 64%, 59%, 57%, and 52%, respectively. The multi-factor cluster analysis revealed that graphene nanofluid was the most efficient choice.

Keywords

Heat transfer / Nanofluids / Solar collector efficiency / Solar energy / Thermal characteristics

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Bader Alshuraiaan. Evaluation of the thermal performance of various nanofluids used to harvest solar energy. Energy, Ecology and Environment, 2021, 6(6): 531-539 DOI:10.1007/s40974-021-00213-6

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References

[1]

Ahmadi MH, Mirlohi A, Nazari MA, Ghasempour R. A review of thermal conductivity of various nano-fluids. J Mol Liq, 2018, 265: 181-188

[2]

Alsarraf J, Malekahmadi O, Karimipour A, Tlili I, Karimipour A, Ghashang M. Increase thermal conductivity of aqueous mixture by additives graphene nanoparticles in water via an experimental/numerical study: synthesise, characterization, conductivity measurement, and neural network modeling. Int Commun Heat Mass Transf, 2020, 118: 104864

[3]

Bioucas FEB, Rausch MH, Schmidt J, Bück A, Koller TM, Fröba AP. Effective thermal conductivity of nano-fluids: measurement and prediction. Int J Thermophys, 2020, 41(5): 1-27

[4]

Bulat MP, Bulat PV. The analysis centric isentropic compression waves. World Appl Sci J, 2013, 27(8): 1023-1026

[5]

Bulat PV, Volkov KN, Ilyina TY. Interaction of a shock wave with a cloud of particles. Math Educ, 2016, 11(8): 2949-2962

[6]

Choi TJ, Kim SH, Jang SP, Lin L, Kedzierski MA. Aqueous nano-fluids containing paraffin-filled MWCNTs for improving effective specific heat and extinction coefficient. Energy, 2020, 210: 118523

[7]

Cruz T, Schaeffer R, Lucena AF, Melo S, Dutra R. Solar water heating technical-economic potential in the household sector in Brazil. Renew Energy, 2020, 146: 1618-1639

[8]

Farhana K, Kadirgama K, Rahman MM, Ramasamy D, Noor MM, Najafi G, Samykano M, Mahamude ASF. Improvement in the performance of solar collectors with nano-fluids—a state-of-the-art review. Nano-Struct Nano-Objects, 2019, 18: 100276

[9]

Genc AM, Ezan MA, Turgut A. Thermal performance of a nano-fluid-based flat plate solar collector: a transient numerical study. Appl Therm Eng, 2018, 130: 395-407

[10]

Gorji TB, Ranjbar AA. A review on optical properties and application of nano-fluids in direct absorption solar collectors (DASCs). Renew Sust Energ Rev, 2017, 72: 10-32

[11]

Gorjian S, Ebadi H, Calise F, Shukla A, Ingrao C. A review on recent advancements in performance enhancement techniques for low-temperature solar collectors. Energy Convers Manag, 2020, 222: 113246

[12]

Huang J, Chen Z, Du Z, Xu X, Zhang Z, Fang X. A highly stable hydroxylated graphene/ethylene glycol-water nano-fluid with excellent extinction property at a low loading for direct absorption solar collectors. Thermochim Acta, 2020, 684: 178487

[13]

Hussein AK. Applications of nanotechnology to improve the performance of solar collectors—recent advances and overview. Renew Sust Energ Rev, 2016, 62: 767-792

[14]

Iacobazzi F, Milanese M, Colangelo G, Lomascolo M, de Risi A. An explanation of the Al2O3 nano-fluid thermal conductivity based on the phonon theory of liquid. Energy, 2016, 116: 786-794

[15]

Karami M, Bozorgi M, Delfani S. Effect of design and operating parameters on thermal performance of low-temperature direct absorption solar collectors: a review. J Therm Anal Calorim, 2020, 1: 21

[16]

Karasu S, Altan A, Bekiros S, Ahmad W. A new forecasting model with wrapper-based feature selection approach using multi-objective optimization technique for chaotic crude oil time series. Energy, 2020, 212: 118750

[17]

Khanafer K, Vafai K. A review on the applications of nano-fluids in solar energy field. Renew Energy, 2018, 123: 398-406

[18]

Liu J, Chen L, Fang X, Zhang Z. Preparation of graphite nanoparticles-modified phase change microcapsules and their dispersed slurry for direct absorption solar collectors. Sol Energy Mater Sol Cells, 2017, 159: 159-166

[19]

Paknezhad B, Vakili M, Bozorgi M, Hajialibabaie M, Yahyaei M. A hybrid genetic–BP algorithm approach for thermal conductivity modeling of nano-fluid containing silver nanoparticles coated with PVP. J Therm Anal Calorim, 2020, 1: 14

[20]

Pourrajab R, Noghrehabadi A, Hajidavalloo E, Behbahani M. Investigation of thermal conductivity of a new hybrid nano-fluids based on mesoporous silica modified with copper nanoparticles: synthesis, characterization and experimental study. J Mol Liq, 2020, 300: 112337

[21]

Pryazhnikov MI, Minakov AV, Rudyak VY, Guzei DV. Thermal conductivity measurements of nano-fluids. Int J Heat Mass Transf, 2017, 104: 1275-1282

[22]

Pylypova OV, Evtukh AA, Parfenyuk PV, Ivanov II, Korobchuk IM, Havryliuk OO, Semchuk OY. Electrical and optical properties of nanowires based solar cell with radial pn junction. Opto-Electron Rev, 2019, 27: 143-148

[23]

Raj P, Subudhi S. A review of studies using nano-fluids in flat-plate and direct absorption solar collectors. Renew Sust Energ Rev, 2018, 84: 54-74

[24]

Sajid MU, Ali HM. Thermal conductivity of hybrid nano-fluids: a critical review. Int J Heat Mass Transf, 2018, 126: 211-234

[25]

Seetharaman GR, Sangwai JS. Effect of nanoparticles on the performance of drilling fluids. Nanotechnology for energy and environmental engineering, 2020 Cham Springer 279-297

[26]

Semenenko M, Kyriienko O, Yilmazoglu O, Steblova O, Klyui N. Photo-assisted field emission and electro-reflectance modulation investigations of GaN nanorod arrays. Thin Solid Films, 2014, 564: 218-221

[27]

Sitar A, Može M, Crivellari M, Schille J, Golobič I. Nucleate pool boiling heat transfer on etched and laser structured silicon surfaces. Int J Heat Mass Transf, 2020, 147: 118956

[28]

Sulgani MT, Karimipour A. Improve the thermal conductivity of 10w40-engine oil at various temperature by addition of Al2O3/Fe2O3 nanoparticles. J Mol Liq, 2019, 283: 660-666

[29]

Wang H, Liu M, Kong H, Hao Y. Thermodynamic analysis on mid/low temperature solar methane steam reforming with hydrogen permeation membrane reactors. Appl Therm Eng, 2019, 152: 925-936

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