Article Gold Open Access 2024

An experimental investigation of various trickle collector structures to enhance solar water heater efficiency

Cleaner Engineering and Technology
Journal · Vol. 21 · Art. 100789
Abstract

This study aimed to enhance the efficiency of the solar water heater (SWH) due to the increasing demand of renewable energy. It compared use three different solar collector models, namely Model A (square-shaped polycarbonate), Model B (v-corrugated zinc), and Model C (trapezoidal aluminium) to identify the most cost-effective configuration. The models were subjected to experiments in real operating conditions during the summer season in Indonesia. Various parameters, including solar radiation intensity, wind speed, inlet and outlet temperatures, and flow rate, were measured every 10 min from morning to afternoon. Additionally, the study employed a trickle and one-way flow rate system. The results showed that Model B achieved the highest total efficiency at 50%, followed by Models A and C at 47% and 34%, respectively. The 120 Lph flow rate exhibited better performance in absorbing useful heat energy than the 240 Lph flow rate. Based on these findings, all three models were recommended for the household-scale SWH applications. Model A showed the most promising economic value but had a shorter lifespan due to the tendency of polycarbonate to deform. In contrast, Model B and Model C, using zinc and aluminium, offered longer lifespans. © 2024 The Authors

Keywords

Author Keywords

Project-Based Learning Cost-benefit analysis Efficiency enhancement Flat-plate collector Solar water heater

Index Keywords

Author Affiliations
Department of Mechanical Engineering, Universitas Sebelas Maret, Surakarta, Central Java, Indonesia
Department of Automotive Engineering Education, Universitas Pendidikan Indonesia, Bandung, West Java, Indonesia
Department of Metallurgy and Material Engineering, Universitas Indonesia, Depok, West Java, Indonesia
Institute of Industrial Science, Tokyo, Japan
Department of Renewable Energy Engineering, Politeknik Negeri Jember, Jember, East Java, Indonesia
Funding & Acknowledgements
Universitas Sebelas Maret, UNS
Grant: 3272.1/UN27.22/PT.01.03/2023
The authors are grateful to Universitas Sebelas Maret, Indonesia, for supporting this research through Grant Number [3272.1/UN27.22/PT.01.03/2023] under the International Collaboration Research TOP 100 (iTOP-100) program, administered by LPPM Universitas Sebelas Maret.
Universitas Sebelas Maret, UNS
The authors are grateful to Universitas Sebelas Maret, Indonesia, for supporting this research through Grant Number [3272.1/UN27.22/PT.01.03/2023] under the International Collaboration Research TOP 100 (iTOP-100) program, administered by LPPM Universitas Sebelas Maret.
Grant: TOP 100
The authors are grateful to Universitas Sebelas Maret, Indonesia, for supporting this research through Grant Number [3272.1/UN27.22/PT.01.03/2023] under the International Collaboration Research TOP 100 (iTOP-100) program, administered by LPPM Universitas Sebelas Maret.
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