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用于高盐度海水淡化的3D锥形太阳能蒸发器中局部结晶的见解

Insights into Localized Crystallization in the 3D-Cone Solar Evaporator for High-Salinity Desalination.

作者信息

Tang Ruolan, Chen Wanqi, Yang Bo, Lv Banghe, Yan Haile, Li Song, Zuo Liang

机构信息

Key Laboratory for Anisotropy and Texture of Materials, School of Material Science and Engineering, Northeastern University, Shenyang 110819, China.

出版信息

Materials (Basel). 2025 Jun 3;18(11):2610. doi: 10.3390/ma18112610.

Abstract

Solar-driven interfacial evaporation desalination is regarded as a promising solution to address freshwater scarcity. However, salt deposition remains a significant challenge. While structural designs such as designated deposition sites can control crystallization, the mechanisms of salt precipitation at specific locations are still unclear. In the present work, we designed a three-dimensional conical evaporator using low-cost cellulose paper for efficient solar-driven desalination. This innovative evaporator design achieves controlled salt crystallization by meticulously balancing the rates of salt diffusion and accumulation, thereby directing salt precipitation to a predetermined location approximately 1.4 cm above the conical base. This phenomenon arises from temperature variations across the evaporator's three-dimensional surface, which induce differences in water surface tension and create favorable sites for salt precipitation. Such a salt management strategy allows for continuous operation for up to 8 h in high-salinity conditions (24.5 wt.%) without compromising performance. Under one sun irradiation, the evaporator demonstrates exceptional performance, with an evaporation rate of 2.54 kg·m·h and an impressive energy conversion efficiency of 93.7%. This approach provides valuable insights into the salt precipitation mechanism, contributing to the future design of three-dimensional evaporators and innovative salt collection strategies.

摘要

太阳能驱动的界面蒸发脱盐被视为解决淡水短缺问题的一种有前景的解决方案。然而,盐沉积仍然是一个重大挑战。虽然诸如指定沉积位点等结构设计可以控制结晶,但特定位置的盐沉淀机制仍不清楚。在本工作中,我们使用低成本的纤维素纸设计了一种三维锥形蒸发器,用于高效的太阳能驱动脱盐。这种创新的蒸发器设计通过精心平衡盐扩散和积累的速率来实现可控的盐结晶,从而将盐沉淀引导至锥形底部上方约1.4厘米处的预定位置。这种现象源于蒸发器三维表面的温度变化,这种变化会引起水表面张力的差异,并为盐沉淀创造有利位点。这种盐管理策略允许在高盐度条件(24.5 wt.%)下连续运行长达8小时而不影响性能。在一个太阳辐照下,该蒸发器表现出卓越的性能,蒸发速率为2.54 kg·m²·h,能量转换效率高达93.7%。这种方法为盐沉淀机制提供了有价值的见解,有助于三维蒸发器的未来设计和创新的盐收集策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3592/12155923/5c0b84b31b14/materials-18-02610-g001.jpg

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