Christopher Sathiya Satchi, Thakur Amrit Kumar, Hazra Soumya Kanti, Sharshir Swellam Wafa, Pandey Adarsh Kumar, Rahman Saidur, Singh Punit, Sunder Lingala Syam, Raj Arun Kumaradas, Dhivagar Ramasamy, Sathyamurthy Ravishankar
Department of Mechanical Engineering, Saveetha School of Engineering, SIMATS, Chennai, India.
Department of Mechanical Engineering, KPR Institute of Engineering and Technology, Arasur, Coimbatore, Tamil Nadu, 641407, India.
Environ Sci Pollut Res Int. 2023 May;30(22):62137-62150. doi: 10.1007/s11356-023-26399-2. Epub 2023 Mar 20.
The aim of this research was to develop a model for a solar refrigeration system (SRS) that utilizes an External Compound Parabolic Collector and a thermal energy storage system (TESS) for solar water heating in Chennai, India. The system parameters were optimized using TRNSYS software by varying factors such as collector area, mass flow rate of heat transfer fluid, and storage system volume and height. The resulting optimized system was found to meet 80% of hot water requirements for the application on an annual basis, with an annual collector energy efficiency of 58% and an annual TESS exergy efficiency of 64% for a discharge period of 6 h per day. In addition, the thermal performance of 3.5 kW SRS was studied by connecting it to an optimized solar water heating system (SWHS). The system was found to generate an average cooling energy of 12.26 MJ/h annually, with a coefficient of performance of 0.59. By demonstrating the ability to efficiently generate both hot water and cooling energy, the results of this study indicate the potential for utilizing a SWHS in combination with STST and SRS. The optimization of system parameters and the use of exergy analysis provide valuable insights into the thermal behavior and performance of the system, which can inform future designs and improve the overall efficiency of similar systems.
本研究的目的是开发一种太阳能制冷系统(SRS)模型,该系统利用外部复合抛物面集热器和热能存储系统(TESS)在印度金奈进行太阳能热水加热。通过改变集热器面积、传热流体质量流量以及存储系统体积和高度等因素,使用TRNSYS软件对系统参数进行了优化。结果发现,优化后的系统每年可满足该应用80%的热水需求,集热器年能量效率为58%,热能存储系统(TESS)在每天6小时的排放期内年火用效率为64%。此外,通过将3.5千瓦的太阳能制冷系统(SRS)连接到优化后的太阳能热水系统(SWHS),研究了其热性能。该系统每年平均产生12.26兆焦/小时的冷却能量,性能系数为0.59。通过证明能够高效地产生热水和冷却能量,本研究结果表明了将太阳能热水系统(SWHS)与热能存储系统(STST)和太阳能制冷系统(SRS)结合使用的潜力。系统参数的优化和火用分析的使用为系统的热行为和性能提供了有价值的见解,可为未来设计提供参考并提高类似系统的整体效率。