利用超声效应对直接接触膜蒸馏进行性能分析

Ussama Ali, M. Sajjad, I. Janajreh
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引用次数: 1

摘要

直接接触式膜蒸馏(DCMD)在脱盐过程中经常遇到膜污染、结垢、渗透通量低和孔隙润湿等问题。本研究的重点是将超声与dmd相结合,通过提高质量通量和降低温度极化来缓解这些问题。建立了一种计算流体动力学模型来评估超声增强dmd的温度极化。计算域包括两个通道,即馈入通道和渗透通道。全长20mm,通道高1mm,膜厚130μ m。考虑低雷诺数层流(Re□10),进料和渗透在相同的进口速度下以逆流的方式流动,但不同的温度。所采用的数值模型为非定常非等温模型,由与聚合物膜热共轭的Navier-Stokes方程控制。该模型受不同的声频和幅值的影响。它采用动态网格与时间声音应用相结合,以非常小的时间步长来解决与声效相关的控制方程。对不同参数对直接接触膜蒸馏性能的影响进行了灵敏度研究。研究了超声波(振幅和频率)、进料流量和进料温度对温度极化系数(TPC)和质量通量的影响。结果表明,超声确实可以改善dmd的性能,在TPC和质量通量方面都有所提高。
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Performance Analysis of the Direct Contact Membrane Distillation Using Sonication Effect
Direct contact membrane distillation (DCMD) for desalination often suffers from membrane fouling, scaling, low permeate water flux and pore wetting. This study focuses on the integration of sonication with DCMD to mitigate these problems by enhancing mass flux and reducing temperature polarization. A computational fluid dynamic model has been developed for the evaluation of temperature polarization through sonication enhanced DCMD. The computational domain consists of two channels, i.e., feed and permeate. It has a length of 20 mm, with a height of 1 mm for each channel, and a membrane thickness of 130 μm. Laminar flow at a low Reynolds number is considered (Re □ 10), with feed and permeate flowing in a counter-flow arrangement at the same inlet velocity but different temperatures. The employed numerical model is unsteady non-isothermal governed by Navier–Stokes equations which are conjugated thermally with the polymeric membrane. The model is subjected to different sonication frequencies and amplitudes. It employs dynamic mesh in conjunction with temporal sound application with a very small-time step to solve the governing equations associated with the sonication effect. A sensitivity study based on the effect of different parameters on the performance of the direct contact membrane distillation is conducted. The parameters studied include the effect of sonication wave (amplitude and frequency), feed flow rate and feed temperature on temperature polarization coefficient (TPC) and mass flux. Results show that sonication definitely can ameliorate the DCMD performance seen as a gain in both TPC and mass flux.
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