Gong Qiji, Wang Xuechun, Bai Bo, Zhang Qian, Mei Meng, Sun Yaxin
Key Laboratory of Subsurface Hydrology and Ecological Effect in Arid Region of the Ministry of Education, Chang'an University, Xi'an 710054, PR China; School of Water and Environment, Chang'an University, Xi'an 710054, PR China.
Key Laboratory of Subsurface Hydrology and Ecological Effect in Arid Region of the Ministry of Education, Chang'an University, Xi'an 710054, PR China; School of Water and Environment, Chang'an University, Xi'an 710054, PR China; Key Laboratory of Eco-hydrology and Water Security in Arid and Semi-arid Regions of the Ministry of Water Resources, Chang'an University, Xi'an 710054, PR China.
Sci Total Environ. 2024 Jun 1;927:172314. doi: 10.1016/j.scitotenv.2024.172314. Epub 2024 Apr 7.
Solar-driven steam evaporation technology, known for its low energy consumption and environmental friendliness, has emerged as a promising approach for seawater desalination, wastewater purification, etc. However, creating a low-cost solar evaporation system that simultaneously achieves rapid water transport, efficient light absorption, and salt tolerance remains challenging. Here, a dual-layer evaporator based on reed roots has been developed after a simple HO delignification treatment and flame treatment, which exhibited enhanced water transport performance and photothermal properties. As excepted, delignification treatment enhanced the capillary water transport ability of reed roots, which is conducive to promoting the dilution of salt in the evaporator and preventing salt deposition. The evaporator demonstrates an impressive steam generation efficiency of 83.5 % and a remarkable water evaporation rate of 1.407 kg m h under 1 sun, thanks to its well-designed structure and optimized performance. Moreover, the evaporator exhibited excellent practical performance for outdoor applications and demonstrates a remarkable capacity for sewage purification, effectively treating heavy metal ion wastewater as well as dye wastewater. As a result, the objective of our research is to explore opportunities for the implementation of deployable, cost-effective, low-carbon-footprint solar water purification systems, particularly for some impoverished regions, to ensure the provision of high-quality water.
太阳能驱动的蒸汽蒸发技术,以其低能耗和环境友好著称,已成为海水淡化、废水净化等领域一种有前景的方法。然而,创建一个同时实现快速水传输、高效光吸收和耐盐性的低成本太阳能蒸发系统仍然具有挑战性。在此,经过简单的脱木质素处理和火焰处理后,开发了一种基于芦苇根的双层蒸发器,其展现出增强的水传输性能和光热性能。如预期的那样,脱木质素处理增强了芦苇根的毛细管水传输能力,这有利于促进蒸发器中盐分的稀释并防止盐沉积。由于其精心设计的结构和优化的性能,该蒸发器在1个太阳光照强度下展现出令人印象深刻的83.5%的蒸汽产生效率和1.407 kg m⁻² h⁻¹的显著水蒸发速率。此外,该蒸发器在户外应用中表现出优异的实际性能,并展现出卓越的污水净化能力,能有效处理重金属离子废水以及染料废水。因此,我们研究的目标是探索实施可部署、具有成本效益、低碳足迹的太阳能水净化系统的机会,特别是为一些贫困地区,以确保提供高质量的水。