首页> 外文期刊>Desalination: The International Journal on the Science and Technology of Desalting and Water Purification >Modular matrix design for large-scale membrane distillation system via Aspen simulations
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Modular matrix design for large-scale membrane distillation system via Aspen simulations

机译:通过ASPEN模拟大规模膜蒸馏系统的模块化矩阵设计

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摘要

Membrane distillation (MD) is emerging as a promising technology for treating the reverse osmosis brines. However, limited cases were reported on the design of a large-scale direct contact MD (DCMD) system. The practical scale-up options for modular matrix design in a multi-element MD system and a multi-subsystem MD train were explored by commercial flowsheet simulator Aspen Plus. Compared to the benchmark single module system, which showed drastically deteriorating membrane performance with increasing membrane area, the multi-element DCMD system with modules in parallel matrix was found to perform better with water production improved slightly but specific power consumption (SPC) greatly reduced down to 0.5% of the single module system. The optimal matrix was obtained at module number of eight for a 20 m(2) module due to trade-off relationship between module specifications and effective process driving force in MD. Supported by theoretical analysis, it was found that the matrix array pattern had no influence on the performance of the multi-subsystem DCMD train. Further investigation showed that an 18-subsystem MD train with a membrane area of 200 m(2) achieved a 16 times water production rate with only 10% of the SPC, as compared to that of single system with the same membrane area.
机译:膜蒸馏(MD)作为治疗反渗透盐水的有希望的技术。然而,关于大规模直接接触MD(DCMD)系统的设计报告了有限的情况。通过商业流程模拟器Aspen Plus探索了多元素MD系统中模块化矩阵设计的实用扩大选项和多副系统MD列车。与基准单模块系统相比,随着膜面积的增加而显示出膜性能急剧劣化,发现具有并联矩阵模块的多元素DCMD系统,利用水生产进行更好地执行略微但特定功耗(SPC)大大减少到单模块系统的0.5%。由于模块规格与MD中的有效过程驱动力之间的权衡关系,在20米(2)模块的模块数为20米(2)模块的模块数,最佳矩阵。通过理论分析支持,发现矩阵阵列模式对多子系统DCMD列车的性能没有影响。进一步的研究表明,具有200m(2)的膜面积的18个子系统MD火车,与具有相同膜面积的单个系统相比,仅具有10%的SPC的水产率为16倍。

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