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首页> 外文期刊>Desalination: The International Journal on the Science and Technology of Desalting and Water Purification >Performance improvements by embedded spacer in direct contact membrane distillation - Computational study
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Performance improvements by embedded spacer in direct contact membrane distillation - Computational study

机译:直接接触膜蒸馏中的嵌入式垫片的性能改进 - 计算研究

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Computational fluid dynamics simulations were conducted in direct contact membrane distillation modules containing a novel spacer design. The net-type spacers with a 45 degrees strand angle and various strand size were embedded between two active layers of the membrane. The embedded spacers create a micro-patterned surface at each side of the membrane that induces local mixing in the vicinity of the surface. The k - omega SST turbulent model was employed to conduct simulations in modules with embedded spacers while the laminar model was employed to conduct simulations in the module containing a flat membrane. The membrane was treated as a functional surface with zero thickness. Dusty-Gas model was applied to determine the vapor permeation rate coupled with the local temperature and concentration over the surface of the membrane. Concentration and temperature polarization were mitigated significantly, and water flux was enhanced by about 40% with the module containing embedded spacers of the larger strand. It is demonstrated here that with mitigation of polarizations and reduction of scaling/fouling propensity direct contact membrane distillation modules containing embedded spacers could be a good candidate for seawater desalination and for treating highly concentrated nonvolatile solutions.
机译:在含有新型间隔设计的直接接触膜蒸馏模块中进行计算流体动力学模拟。嵌入膜的两个活性层之间具有45度股线角度和各种股线尺寸的净型间隔物。嵌入的间隔物在膜的每一侧产生微图案化表面,其在表面附近诱导局部混合。 K - Omega SST湍流模型用于在具有嵌入式间隔物的模块中进行模拟,而采用层状模型在含有扁平膜的模块中进行模拟。将膜作为零厚的官能表面处理。施加尘埃气体模型以确定与局部温度和膜的局部温度和浓度相结合的蒸汽渗透率。显着减轻浓度和温度偏振,并且随着较大股线的嵌入式垫片的模块,水通量增强了约40%。这里证明,随着偏振的减轻和减少含有嵌入间隔物的直接接触膜蒸馏模块,可以是海水淡化的良好候选者,并用于处理高度浓缩的非挥发性溶液。

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