Enhancing thermal efficiency in flat plate solar collectors through internal barrier optimization

IF 5.1 3区 工程技术 Q2 ENERGY & FUELS Thermal Science and Engineering Progress Pub Date : 2024-09-01 DOI:10.1016/j.tsep.2024.102856
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Abstract

This study investigates the impact of introducing horizontal barriers within the internal cavity of flat plate solar collectors on their thermal efficiency. The primary objective is to enhance thermal performance by reducing convective heat loss. An experimental test bench was constructed to evaluate five solar collectors under controlled conditions. One collector was unmodified as a reference, while the other four had 1 to 4 horizontal barriers inserted between the absorber plate and glass cover. Each collector’s efficiency was assessed by measuring inlet and outlet water temperatures, incident solar radiation, ambient temperature, and water flow rate. Efficiency versus heat loss parameter curves were generated, and correction factors were applied to account for material and sensor differences. The collector with four barriers demonstrated the highest overall thermal efficiency, achieving an efficiency improvement of up to 12 % compared to the reference collector. Specifically, the efficiency of the reference collector was around 70 %, while the collector with four barriers reached an efficiency of approximately 82 %. Introducing two barriers resulted in a 9 % increase in efficiency, bringing it to about 79 %. Conversely, the collector with three barriers showed a slight decrease in efficiency to 68 %. The barriers effectively reduced internal convective heat loss, enhancing the collector’s ability to harness incident solar radiation. Inserting horizontal barriers within the internal cavity of flat plate solar collectors significantly improves thermal efficiency by reducing convective heat loss. The optimal configuration, based on this study, involves using four barriers. This method presents a straightforward yet effective approach to enhancing solar collector performance. Future research should focus on refining barrier design and placement for different collector sizes and geometries, potentially supporting broader adoption of solar thermal energy systems and contributing to sustainable energy solutions.

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通过优化内部阻挡层提高平板太阳能集热器的热效率
本研究探讨了在平板太阳能集热器的内腔中引入水平屏障对其热效率的影响。主要目的是通过减少对流热损失来提高热性能。研究人员建造了一个实验测试台,在受控条件下对五个太阳能集热器进行评估。其中一个集热器未经改装,作为参照物,而其他四个集热器则在吸收板和玻璃盖之间插入了 1 到 4 个水平隔板。通过测量进水和出水温度、入射太阳辐射、环境温度和水流量,对每个集热器的效率进行了评估。生成了效率与热损失参数曲线,并应用校正因子来考虑材料和传感器的差异。与参考集热器相比,带有四道屏障的集热器总体热效率最高,可提高 12%。具体来说,参考集热器的效率约为 70%,而带有四道屏障的集热器的效率约为 82%。引入两道屏障后,效率提高了 9%,达到约 79%。相反,带三层隔板的集热器效率略有下降,仅为 68%。隔热箱有效减少了内部对流热损失,提高了集热器利用入射太阳辐射的能力。在平板太阳能集热器的内腔中插入水平隔热箱可减少对流热损失,从而显著提高热效率。根据这项研究,最佳配置包括使用四道屏障。这种方法是提高太阳能集热器性能的一种简单而有效的方法。未来的研究应侧重于针对不同的集热器尺寸和几何形状改进隔热箱的设计和布置,从而为更广泛地采用太阳能热利用系统提供支持,并为可持续能源解决方案做出贡献。
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来源期刊
Thermal Science and Engineering Progress
Thermal Science and Engineering Progress Chemical Engineering-Fluid Flow and Transfer Processes
CiteScore
7.20
自引率
10.40%
发文量
327
审稿时长
41 days
期刊介绍: Thermal Science and Engineering Progress (TSEP) publishes original, high-quality research articles that span activities ranging from fundamental scientific research and discussion of the more controversial thermodynamic theories, to developments in thermal engineering that are in many instances examples of the way scientists and engineers are addressing the challenges facing a growing population – smart cities and global warming – maximising thermodynamic efficiencies and minimising all heat losses. It is intended that these will be of current relevance and interest to industry, academia and other practitioners. It is evident that many specialised journals in thermal and, to some extent, in fluid disciplines tend to focus on topics that can be classified as fundamental in nature, or are ‘applied’ and near-market. Thermal Science and Engineering Progress will bridge the gap between these two areas, allowing authors to make an easy choice, should they or a journal editor feel that their papers are ‘out of scope’ when considering other journals. The range of topics covered by Thermal Science and Engineering Progress addresses the rapid rate of development being made in thermal transfer processes as they affect traditional fields, and important growth in the topical research areas of aerospace, thermal biological and medical systems, electronics and nano-technologies, renewable energy systems, food production (including agriculture), and the need to minimise man-made thermal impacts on climate change. Review articles on appropriate topics for TSEP are encouraged, although until TSEP is fully established, these will be limited in number. Before submitting such articles, please contact one of the Editors, or a member of the Editorial Advisory Board with an outline of your proposal and your expertise in the area of your review.
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