State Key Laboratory of Urban Water Resource and Environment (SKLUWRE), School of Environment, Harbin Institute of Technology, Harbin 150090, China.
School of Materials Science and Environment, Zhengzhou University, Zhengzhou 450001, China.
Water Res. 2022 May 15;215:118246. doi: 10.1016/j.watres.2022.118246. Epub 2022 Mar 2.
Membrane distillation (MD) is an acknowledged promising technology for desalinating hypersaline brine, and as such can be a suitable candidate to further concentrate the seawater discharged from reverse osmosis process. Mineral scaling represents a major constraint against the application of MD for further desalination of concentrated seawater, especially when considering CaSO (gypsum) and NaCl. Up until now, it has been difficult to rely solely on membrane modification to mitigate CaSO scaling. Permeate-side aeration can lessen CaSO scaling, but does not permit to increase the water flux. Herein, we proposed the synergy of feed-side aeration and super slippery interface to perform concentrated seawater desalination via direct contact membrane distillation. The results of this study show that this synergistic effect could significantly increase the water flux, which was approximately 1.5 times higher in comparison to the membrane without aeration. Moreover, the synergistic effect effectively alleviates the complex scaling of concentrated seawater, achieving 90 wt% water recovery rate. Based on the observed results, we elucidated the mechanisms governing the enhanced water flux and scaling mitigation driven by the synergistic effect. In addition, we studied the optimal working condition for this system, unveiling that low-intensity large bubbles are more suitable as they lead to a better equilibrium between the economics and functionality of the process.
膜蒸馏(MD)是一种被公认为有前途的淡化高盐卤水的技术,因此可以成为进一步浓缩反渗透工艺排放海水的合适候选技术。矿物结垢是 MD 进一步淡化浓缩海水的主要限制因素,特别是在考虑 CaSO(石膏)和 NaCl 时。到目前为止,仅依靠膜改性来减轻 CaSO 结垢一直很困难。渗透侧通气可以减轻 CaSO 结垢,但不能提高水通量。在此,我们提出了在进料侧通气和超滑界面的协同作用,通过直接接触膜蒸馏来进行浓缩海水淡化。该研究的结果表明,这种协同效应可以显著提高水通量,与没有通气的膜相比,水通量大约提高了 1.5 倍。此外,协同效应有效地缓解了浓缩海水的复杂结垢问题,实现了 90wt%的水回收率。基于观察到的结果,我们阐明了协同效应驱动的增强水通量和结垢缓解的机制。此外,我们研究了该系统的最佳工作条件,揭示出低强度大气泡更适合,因为它们在工艺的经济性和功能性之间达到了更好的平衡。