纺织学报 ›› 2026, Vol. 47 ›› Issue (07): 128-135.doi: 10.13475/j.fzxb.20251002001
乔浩然1,2, 严洪波1,2, 赵梓萌1,2, 李久刚2, 李文斌1,2(
), 徐卫林2
QIAO Haoran1,2, YAN Hongbo1,2, ZHAO Zimeng1,2, LI Jiugang2, LI Wenbin1,2(
), XU Weilin2
摘要:
随着全球淡水资源的日益紧缺,开发高效、低成本的太阳能驱动海水淡化技术具有重要意义。通过编织工艺将亲水性棉纱与高光热转换效率的碳纤维复合,构建了一种三维仿生树状蒸发器,系统探究了纱线暴露高度对蒸发器光热蒸发性能的影响机制。实验结果表明,高度为15 cm的蒸发器在1 kW/m2光照强度下实现了1.95 kg/(m2·h)的蒸发速率,较高度为5、10和20 cm的蒸发器明显提升。该结构通过优化毛细供水与热管理协同作用,在循环测试中表现出优异的稳定性,并在高盐度(15% NaCl)条件下仍保持较高蒸发效率。此外,蒸发系统对海水中Na+、Mg2+、Ca2+等离子的截留率高达99%以上,净化水质符合国际饮用水标准。该研究为纺织基光热蒸发材料的可控制备及高效海水淡化应用提供了新思路,在可持续水处理领域具有广阔前景。
中图分类号:
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