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Membrane pervaporation to reuse contaminated water for microirrigation.

机译:膜渗透蒸发以将受污染的水再用于微灌。

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A novel wastewater microirrigation technology for plants to extract reclaimed water directly from hydrophilic, homogeneous dense membrane modules embedded in the soil was studied. The experiments were first conducted by using a sweeping air pervaporation unit to characterize hollow fiber (HF) and corrugated sheet (CS) membrane modules in terms of water permeate flux and enrichment factor, using borate, selenate, sodium chloride and glucose as model contaminants. As well, a bench soil pervaporation unit was designed and constructed to quantify the irrigation water in loamy sand and loam soils by varying feed temperature, pressure, solute concentration, soil water content and membrane configuration. The results showed that the maximum water permeate fluxes from CS and HF modules buried in saturated and unsaturated soils with less than 15% moisture content ranged from 0.2 to 1.0 L/m2/d and 0.1 to 1.0 L/m2/d, respectively. The average enrichment factors for glucose, selenate, borate and sodium chloride were 0.18, 0.08, 0.19 and 0.23, respectively, indicating that the new microirrigation technology can efficiently deliver high quality water to the crops as needed, eliminating clogging problems and potential ground and surface water contamination commonly associated with conventional irrigation systems.; Subsequently, a mathematical model was also developed by combining the solution-diffusion model for mass transport through the pervaporation membrane, the Richard's equation for soil water movement and the root-activity function for plant water uptake to predict the water permeate flux for different soil and process operating conditions. A good agreement was observed between the model predictions and the experimental measurements. Further analysis concluded that the plants will self-extract water from the membrane, as needed, depending on their evapotranspiration potential and the water potential of the soil. Thus, it can be concluded that the proposed membrane pervaporation microirrigation system holds great promise as an efficient, environmentally friendly alternative to reuse brackish or contaminated waters for plant growth.
机译:研究了一种新颖的废水微灌溉技术,该技术可直接从嵌入土壤中的亲水性均质致密膜组件中直接提取再生水。首先,使用硼酸盐,硒酸盐,氯化钠和葡萄糖作为模型污染物,通过使用吹扫空气渗透蒸发单元对中空纤维(HF)和瓦楞纸板(CS)膜组件进行水渗透通量和富集因子表征来进行实验。同样,还设计和建造了一个台式土壤全蒸发单元,通过改变进料温度,压力,溶质浓度,土壤含水量和膜结构,对壤土和壤土中的灌溉水进行定量。结果表明,埋藏在水分含量低于15%的饱和和非饱和土壤中的CS和HF模块的最大通水通量分别为0.2至1.0 L / m2 / d和0.1至1.0 L / m2 / d。葡萄糖,硒酸根,硼酸根和氯化钠的平均富集系数分别为0.18、0.08、0.19和0.23,这表明新的微灌溉技术可以根据需要有效地向作物输送优质水,消除了堵塞问题和潜在的地面和地面通常与常规灌溉系统有关的水污染。随后,还建立了数学模型,将溶液扩散模型用于渗透通过渗透蒸发膜的传质,土壤水分运动的理查德方程和植物水分吸收的根活度函数相结合,以预测不同土壤和土壤的渗透通量。工艺操作条件。在模型预测和实验测量之间观察到良好的一致性。进一步的分析得出结论,植物将根据需要从膜中自吸水分,这取决于它们的蒸散量和土壤的水势。因此,可以得出结论,提出的膜渗透蒸发微灌溉系统作为将苦咸水或受污染的水重新用于植物生长的一种有效,环保的替代方法具有广阔的前景。

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