Abstract

The production of hydrogen using photovoltaic–thermal (PVT) solar collectors with minimal environmental impact is a significant issue that necessitates a methodical approach. The selection of an appropriate nanofluid is essential in a thermal collector to optimize the performance of the photovoltaic-thermal (PVT) system and increase the rate of hydrogen production. This study analyzes several nanofluids in terms of viscosity, thermal conductivity, density, specific heat, pumping power, and fluid cost. This study discovered a nanofluid that may significantly enhance the rate of hydrogen generation. To achieve this objective, the analytical hierarchy process (AHP) and Technique for Order Preference by Similarity to Ideal Solution (TOPSIS) methods were used to identify the appropriate choice and assess the hydrogen production rate. First, the AHP technique was used to determine the required weights, followed by sorting the alternatives using the TOPSIS technique. The findings indicate that a hybrid nanofluid consisting of a 0.2% volume concentration of Al2O3–CuO in water exhibits the most favourable heat transfer characteristics and is considered the best option for improving heat transfer efficiency and boosting the rate of hydrogen generation.

Keywords

Publication details

DOI
10.53540/tjer.vol21iss1pp1-7
Journal
The Journal of Engineering Research, 21(1), 1-7
Publisher
Sultan Qaboos University
Open access
Gold open access
License
CC BY-ND 4.0

Cite this article

APA 7

Shanmugasundaram, S., Rajendiran, G., Thangavel, S., & Munian, B. (2025). Integrated AHP – TOPSIS Approach for Optimization of Coolant with Nanoparticles in PVT-Based Hydrogen Production System. The Journal of Engineering Research, 21(1), 1-7. https://doi.org/10.53540/tjer.vol21iss1pp1-7

MLA 9

Shanmugasundaram, Senthilraja, et al. "Integrated AHP – TOPSIS Approach for Optimization of Coolant with Nanoparticles in PVT-Based Hydrogen Production System." The Journal of Engineering Research, vol. 21, no. 1, 2025, pp. 1-7. https://doi.org/10.53540/tjer.vol21iss1pp1-7.

Chicago (author–date)

Shanmugasundaram, Senthilraja, Gangadevi Rajendiran, Sivasakthivel Thangavel, and Baskaran Munian. 2025. "Integrated AHP – TOPSIS Approach for Optimization of Coolant with Nanoparticles in PVT-Based Hydrogen Production System." The Journal of Engineering Research 21 (1): 1-7. https://doi.org/10.53540/tjer.vol21iss1pp1-7.

Harvard

Shanmugasundaram, S., Rajendiran, G., Thangavel, S. and Munian, B. (2025) 'Integrated AHP – TOPSIS Approach for Optimization of Coolant with Nanoparticles in PVT-Based Hydrogen Production System', The Journal of Engineering Research, 21(1), pp. 1-7. doi:10.53540/tjer.vol21iss1pp1-7.

Vancouver

Shanmugasundaram S, Rajendiran G, Thangavel S, Munian B. Integrated AHP – TOPSIS Approach for Optimization of Coolant with Nanoparticles in PVT-Based Hydrogen Production System. The Journal of Engineering Research. 2025;21(1):1-7. doi:10.53540/tjer.vol21iss1pp1-7

IEEE

S. Shanmugasundaram, G. Rajendiran, S. Thangavel, and B. Munian, "Integrated AHP – TOPSIS Approach for Optimization of Coolant with Nanoparticles in PVT-Based Hydrogen Production System," The Journal of Engineering Research, vol. 21, no. 1, pp. 1-7, 2025, doi: 10.53540/tjer.vol21iss1pp1-7.