A systematic study for predicting the performance of forward osmosis desalination using commercial low-cost superabsorber polymer (SAP) hydrogels as draw agents: water flux enhancement by tailoring process parameters

IF 3.1 4区 环境科学与生态学 Q3 ENGINEERING, ENVIRONMENTAL Environmental Science: Water Research & Technology Pub Date : 2025-02-06 DOI:10.1039/D4EW00918E
Waid Omar, Sarah Palloks, Huan Zhang, Michael Pollard, Florencia Saravia and Manfred Wilhelm
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Abstract

This study investigates the potential of using low-cost commercial superabsorbent polymers (SAPs) as draw agents in a hydrogel-driven forward osmosis (FO) desalination process. Different types of commercial SAPs were tested, with Evonik weak-crosslinked (EV-WC) hydrogels displaying the highest water flux and swelling ratio. Using EV-WC as the draw agent, the initial water flux was approximately 0.96 LMH with 200–300 μm size hydrogels for a 2000 ppm NaCl solution. Water flux improved with smaller hydrogel particles, achieving 1.02 LMH with 100–200 μm particles, while larger particles (>600 μm) yielded 0.75 LMH. Increasing the mass of hydrogels on the membrane surface also enhanced water flux; doubling the hydrogel mass from 0.1 to 0.2 g increased the initial water flux from 0.8 to 1.03 LMH, and doubling it again from 0.2 to 0.4 g raised the flux to 1.51 LMH. Adding a slight weight above the hydrogels to ensure better contact with the membrane surface further improved water flux. This study demonstrates the effectiveness of EV-WC hydrogels as draw agents and provides insights into optimizing conditions for improved FO desalination performance. Increasing the hydraulic pressure from 40 to 50 cm resulted in a 37% increase in initial water flux while increasing it from 50 to 57 cm yielded a 7% augmentation in initial water flux. Water recovery from swollen hydrogels has been studied using our own developed specialized press by the application of external pressure to extract water from swollen hydrogels. The results indicate that when the pressure is increased from 1 bar to 75 bar at a rate of 60 bar per hour, approximately 250 J of energy is required to recover 300 mL of water.

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以商用低成本超吸收聚合物(SAP)水凝胶为引剂预测正向渗透海水淡化性能的系统研究:通过调整工艺参数提高水通量
本研究探讨了在水凝胶驱动的正向渗透(FO)脱盐过程中使用低成本的商业高吸水性聚合物(sap)作为牵引剂的潜力。对不同类型的商用sap进行了测试,赢创弱交联(EV-WC)水凝胶的水通量和溶胀率最高。在NaCl浓度为2000 ppm的条件下,当水凝胶粒径为200-300 μm时,EV-WC作为拉拔剂,初始水通量约为0.96 LMH。水凝胶粒径越小,水通量越高,100-200 μm粒径的水通量为1.02 LMH,较大粒径(>600 μm)的水通量为0.75 LMH。增加膜表面水凝胶的质量也能提高水通量;当水凝胶质量从0.1 g增加到0.2 g时,初始水通量从0.8 LMH增加到1.03 LMH,当水凝胶质量从0.2 g增加到0.4 g时,初始水通量增加到1.51 LMH。在水凝胶上方添加少许重量,以确保与膜表面更好地接触,进一步提高了水通量。该研究证明了EV-WC水凝胶作为牵引剂的有效性,并为优化FO脱盐性能的条件提供了见解。将水压从40厘米增加到50厘米,使初始水通量增加37%,而将水压从50厘米增加到57厘米,使初始水通量增加7%。利用我们自己开发的专用压机,通过外部压力从膨胀的水凝胶中提取水,研究了膨胀水凝胶中的水回收。结果表明,当压力以每小时60 bar的速度从1 bar增加到75 bar时,回收300 mL的水大约需要250 J的能量。
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来源期刊
Environmental Science: Water Research & Technology
Environmental Science: Water Research & Technology ENGINEERING, ENVIRONMENTALENVIRONMENTAL SC-ENVIRONMENTAL SCIENCES
CiteScore
8.60
自引率
4.00%
发文量
206
期刊介绍: Environmental Science: Water Research & Technology seeks to showcase high quality research about fundamental science, innovative technologies, and management practices that promote sustainable water.
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