Study on saline-alkali water distillation system by reflection enhanced solar heating

IF 6 2区 工程技术 Q2 ENERGY & FUELS Solar Energy Pub Date : 2024-06-12 DOI:10.1016/j.solener.2024.112686
Yingxu Chen , Jingyang Han , Keqin Huang , Xu Ji , Ren Zhang , Mengqi Wang
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Abstract

A saline-alkali water distillation system by reflection enhanced solar heating is proposed to treat the saline-alkali soil washing water. In this system, the heat concentration collector employs heat collecting plate to receive solar radiation energy, and converges to small-area steam generating tube through efficiently heat transfer. Without expensive optical tracking equipment, the system also employs an external reflector to reflect the solar radiation to the surface of the heat concentration collector. Thereby the energy flow density is further increased, and the useful energy and vaporization intensity is promoted. The latent heat of the steam is reused by heat recovery to enhance the energy utilization efficiency. The optimal inclination angles of reflector in different seasons and system performance were theoretically calculated. In the spring equinox, summer solstice, autumn equinox, and winter solstice, the optimal inclination angles of the reflector were 30°, 45°, 30°, and 15°, respectively. The freshwater production, useful energy, and heat recovery efficiency of the system were investigated by experiments. The daily freshwater production of the system was 17.04 kg, and the maximum production rate was 3.44 kg/h. The reflector increased the useful energy and freshwater production of the system by 33.68% and 35%, respectively. With heat recovery, the initial temperature of the saline-alkali water was increased to 53.8 °C and the freshwater production was increased by 13.16%.

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利用反射增强太阳能加热的盐碱水蒸馏系统研究
提出了一种利用反射增强太阳能加热的盐碱水蒸馏系统来处理盐碱土壤冲洗水。在该系统中,热量集中收集器采用集热板接收太阳辐射能,并通过高效传热汇聚到小面积蒸汽发生管。由于不需要昂贵的光学跟踪设备,该系统还采用了外部反射器,将太阳辐射反射到集热器表面。这样就进一步提高了能量流密度,提升了有用能量和汽化强度。蒸汽的潜热可通过热回收再利用,从而提高能源利用效率。理论计算了不同季节反射器的最佳倾角和系统性能。在春分、夏至、秋分和冬至,反射器的最佳倾角分别为 30°、45°、30° 和 15°。实验研究了该系统的淡水产量、有用能量和热回收效率。该系统的淡水日产量为 17.04 千克,最大生产率为 3.44 千克/小时。反射器使系统的有用能量和淡水产量分别增加了 33.68% 和 35%。通过热回收,盐碱水的初始温度提高到 53.8 °C,淡水产量增加了 13.16%。
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来源期刊
Solar Energy
Solar Energy 工程技术-能源与燃料
CiteScore
13.90
自引率
9.00%
发文量
0
审稿时长
47 days
期刊介绍: Solar Energy welcomes manuscripts presenting information not previously published in journals on any aspect of solar energy research, development, application, measurement or policy. The term "solar energy" in this context includes the indirect uses such as wind energy and biomass
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