The Effect of Variations in Mass Fraction of Al2O3 Nanofluid on Thermal and Electrical Efficiency in Photovoltaic Thermal Systems Using Computational Methods

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This study examines the enhancement of Photovoltaic Thermal (PVT) systems through the application of nanofluids containing hexagonal boron nitride (Al2O3) nanoparticles. PVT systems, which integrate photovoltaic cells with thermal collectors, offer a dual-function solution by generating both electricity and heat, thereby maximizing the utilization of solar energy. The research specifically focuses on optimizing the thermal and electrical efficiencies of PVT systems by adjusting two critical parameters: the inlet velocity of the nanofluids and the concentration of Al2O3 nanoparticles. Computational simulations were performed using ANSYS Fluent software to analyze the impact of these variables on temperature distribution within the systems. The simulations revealed that both higher inlet velocities and increased nanoparticle concentrations lead to significant improvements in system performance. The most notable gains were observed at a nanoparticle concentration of 0.05% and an inlet velocity of 0.08 m/s, where thermal efficiency reached 74.80%, and electrical efficiency increased to 14.43%. The study confirms that the enhanced thermal conductivity of nanofluids due to the presence of Al2O3 nanoparticles plays a pivotal role in improving heat transfer and cooling processes. This optimization leads to the photovoltaic cells operating at more efficient temperatures, thus elevating both the output and overall efficiency of the PVT systems. The findings suggest that carefully controlled adjustments to the nanofluid properties can effectively optimize PVT systems, making them a more viable and efficient solution for simultaneous heat and electricity production from solar energy.

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177-188

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July 2026

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© 2026 Trans Tech Publications Ltd. All Rights Reserved

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[1] M. Ichsan, M. Lockwood, and M. Ramadhani, "National oil companies and fossil fuel subsidy regimes in transition: The case of Indonesia," Extractive Industries and Society, 2022.

DOI: 10.1016/j.exis.2022.101104

Google Scholar

[2] D. Arina Manasikhana et al., "Effect of TiO2/Al2O3 Hybrid Nanofluid and Irradiation Time on Solar Photovoltaic Thermal Performance," in E3S Web of Conferences, EDP Sciences, Nov. 2023.

DOI: 10.1051/e3sconf/202344501033

Google Scholar

[3] A.A. Permanasari et al., "Efficiency of a Photovoltaic Thermal (PVT) System using Bio-nanofluid based on Virgin Coconut Oil-Graphene with Additive Surfactant: An Experimental Study," Journal of Advanced Research in Applied Sciences and Engineering Technology, vol. 34, no. 2, p.287–304, Apr. 2024.

DOI: 10.37934/araset.34.2.287304

Google Scholar

[4] E. P. Laksana et al., "Potential Usage of Solar Energy as a Renewable Energy Source in Petukangan Utara, South Jakarta," Jurnal Rekayasa Elektrika, vol. 17, no. 4, Dec. 2021.

DOI: 10.17529/jre.v17i4.22538

Google Scholar

[5] F.A. Sachit et al., "Current Progress on Flat-Plate Water Collector Design in Photovoltaic Thermal (PV/T) Systems: A REVIEW," 2018. [Online]. Available: https://www.researchgate.net/publication/326901262

Google Scholar

[6] M. Vaka, R. Walvekar, A. K. Rasheed, and M. Khalid, "A review on Malaysia's solar energy pathway towards carbon-neutral Malaysia beyond Covid'19 pandemic," Journal of Cleaner Production, vol. 273. Elsevier Ltd, Nov. 10, 2020.

DOI: 10.1016/j.jclepro.2020.122834

Google Scholar

[7] A. Riahi et al., "Study of thermal conductivity of synthesized Al2O3-water nanofluid by pulsed laser ablation in liquid," J Mol Liq, vol. 304, Apr. 2020.

DOI: 10.1016/j.molliq.2020.112694

Google Scholar

[8] X. Li, W. Chen, and C. Zou, "An experimental study on β-cyclodextrin modified carbon nanotubes nanofluids for the direct absorption solar collector (DASC): Specific heat capacity and photo-thermal conversion performance," Solar Energy Materials and Solar Cells, vol. 204, Jan. 2020.

DOI: 10.1016/j.solmat.2019.110240

Google Scholar

[9] Y.A. Çengel, M.A. Boles, and M. Kanoğlu, Thermodynamics: An Engineering Approach, Ninth Edition. 2019.

Google Scholar

[10] Y.A. Cengel and M.A. Boles, "Thermodynamics: An Engineering Approach 8th Edition Chapter 1 INTRODUCTION AND BASIC CONCEPTS," 2015.

Google Scholar

[11] S. Majety et al., "Semiconducting hexagonal boron nitride for deep ultraviolet photonics," in Quantum Sensing and Nanophotonic Devices IX, SPIE, Jan. 2012, p. 82682R.

DOI: 10.1117/12.914084

Google Scholar

[12] M. Abid, U. Hammerschmidt, and J. Köhler, "Thermophysical properties of a fluid-saturated sandstone," International Journal of Thermal Sciences, vol. 76, p.43–50, 2014.

DOI: 10.1016/j.ijthermalsci.2013.08.017

Google Scholar

[13] M. G. Li, C. Zheng, F. Feng, X. Chen, and W. T. Wu, "Natural convection and anisotropic heat transfer of shear-thinning ferro-nanofluid in partially heated rectangular enclosures under magnetic field," Thermal Science and Engineering Progress, vol. 25, Oct. 2021.

DOI: 10.1016/j.tsep.2021.100992

Google Scholar

[14] H. Riazi, T. Murphy, G. B. Webber, R. Atkin, S. S. M. Tehrani, and R. A. Taylor, "Specific heat control of nanofluids: A critical review," International Journal of Thermal Sciences, vol. 107. Elsevier Masson SAS, p.25–38, Sep. 01, 2016.

DOI: 10.1016/j.ijthermalsci.2016.03.024

Google Scholar

[15] N. J. Bridges, A. E. Visser, and E. B. Fox, "The Potential of Nanoparticle Enhanced Ionic Liquids (NEILs) as Advanced Heat Transfer Fluids."

DOI: 10.1021/ef2012084

Google Scholar

[16] G. Yıldız, Ü. Ağbulut, and A. E. Gürel, "A review of stability, thermophysical properties and impact of using nanofluids on the performance of refrigeration systems," International Journal of Refrigeration, vol. 129. Elsevier Ltd, p.342–364, Sep. 01, 2021.

DOI: 10.1016/j.ijrefrig.2021.05.016

Google Scholar

[17] D. Arisanty, M. Muhaimin, D. Rosadi, A. N. Saputra, K. P. Hastuti, and I. Rajiani, "Spatiotemporal Patterns of Burned Areas Based on the Geographic Information System for Fire Risk Monitoring," International Journal of Forestry Research, vol. 2021, 2021.

DOI: 10.1155/2021/2784474

Google Scholar

[18] J. Sobczak et al., "Thermophysical profile of ethylene glycol based nanofluids containing two types of carbon black nanoparticles with different specific surface areas," J Mol Liq, vol. 326, Mar. 2021.

DOI: 10.1016/j.molliq.2020.115255

Google Scholar

[19] I. Carrillo-Berdugo et al., "Improving the efficiency of the concentrating solar power plants using heat transfer nanofluids with gold nanoplates: An analysis from laboratory to industrial scale," J Mol Liq, vol. 376, Apr. 2023.

DOI: 10.1016/j.molliq.2023.121415

Google Scholar

[20] P. Wulan, "Motor Bakar," Motor Bakar Diesel, vol. 2, p.21–27, 2018.

Google Scholar

[21] Y. Jiao, M. Xing, and P. Estellé, "Efficient utilization of hybrid photovoltaic/thermal solar systems by nanofluid-based spectral beam splitting: A review Efficient utilization of hybrid photovoltaic/thermal solar sys-tems by nanofluid-based spectral beam splitting: A review. Solar Energy Materials and Solar Cells Efficient utilization of hybrid photovoltaic/thermal solar systems by nanofluid-based spectral beam splitting: A review," vol. 265, p.112648.

DOI: 10.1016/j.solmat.2023.112648

Google Scholar

[22] A. M. Bassam, K. Sopian, A. Ibrahim, M. F. Fauzan, A. B. Al-Aasam, and G. Y. Abusaibaa, "Experimental analysis for the photovoltaic thermal collector (PVT) with nano PCM and micro-fins tube nanofluid," Case Studies in Thermal Engineering, vol. 41, Jan. 2023.

DOI: 10.1016/j.csite.2022.102579

Google Scholar

[23] A.H.A. Al-Waeli et al., "Evaluation of the nanofluid and nano-PCM based photovoltaic thermal (PVT) system: An experimental study," Energy Convers Manag, vol. 151, p.693–708, Nov. 2017.

DOI: 10.1016/j.enconman.2017.09.032

Google Scholar

[24] H.A. Hasan, A.A. Hatem, L.A. Abd, A.M. Abed, and K. Sopian, "Numerical investigation of nanofluids comprising different metal oxide nanoparticles for cooling concentration photovoltaic thermal CPVT," Clean Eng Technol, vol. 10, Oct. 2022.

DOI: 10.1016/j.clet.2022.100543

Google Scholar

[25] L. Nascimento et al., "Greenhouse gas mitigation scenarios for major emitters Analysis of current climate policies and mitigation commitments: 2023 update," 2023. [Online]. Available: http://newclimate.org/publications/

Google Scholar

[26] A. Ibrahim, M. R. Ramadan, A. E. M. Khallaf, and M. Abdulhamid, "A comprehensive study for Al2O3 nanofluid cooling effect on the electrical and thermal properties of polycrystalline solar panels in outdoor conditions," Environmental Science and Pollution Research, vol. 30, no. 49, p.106838–106859, Oct. 2023.

DOI: 10.1007/s11356-023-25928-3

Google Scholar