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Experimental and numerical characterization of the water flow in spacer-filled channels of spiral-wound membranes

机译:螺旋缠绕膜填充垫片通道中水流的实验和数值表征

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摘要

Micro-scale flow distribution in spacer-filled flow channels of spiral-wound membrane modules was determined with a particle image velocimetry system (PIV), aiming to elucidate the flow behaviour in spacer-filled flow channels. Two-dimensional water velocity fields were measured in a flow cell (representing the feed spacer-filled flow channel of a spiral wound reverse osmosis membrane module without permeate production) at several planes throughout the channel height. At linear flow velocities (volumetric flow rate per cross-section of the flow channel considering the channel porosity, also described as crossflow velocities) used in practice (0.074 and 0.163 m∙s-1) the recorded flow was laminar with only slight unsteadiness in the upper velocity limit. At higher linear flow velocity (0.3 m∙s-1) the flow was observed to be unsteady and with recirculation zones. Measurements made at different locations in the flow cell exhibited very similar flow patterns within all feed spacer mesh elements, thus revealing the same hydrodynamic conditions along the length of the flow channel. Three-dimensional (3-D) computational fluid dynamics simulations were performed using the same geometries and flow parameters as the experiments, based on steady laminar flow assumption. The numerical results were in good agreement (0.85-0.95 Bray-Curtis similarity) with the measured flow fields at linear velocities of 0.074 and 0.163 m∙s-1, thus supporting the use of model-based studies in the optimization of feed spacer geometries and operational conditions of spiral wound membrane systems.
机译:利用粒子图像测速系统(PIV)确定了螺旋缠绕膜组件的垫片填充流道中的微观流动分布,旨在阐明垫片填充流道中的流动行为。在整个通道高度的多个平面上,在流通池(代表螺旋式反渗透膜组件的进料垫片填充流道,没有渗透液产生)中测量二维水速度场。在实际使用的线性流速(考虑通道孔隙度的流道横截面的体积流速,也称为横向流率)下(0.074和0.163 m∙s-1),记录的流是层流的,在速度上限。在较高的线性流速(0.3 m∙s-1)下,观察到流动不稳定且带有回流区。在流通池中不同位置进行的测量显示,所有进料隔片网状元件内的流动模式都非常相似,因此沿流动通道的长度揭示了相同的流体动力学条件。基于稳定的层流假设,使用与实验相同的几何形状和流动参数进行了三维(3-D)计算流体动力学模拟。数值结果与在0.074和0.163 m∙s-1的线速度下测得的流场具有很好的一致性(0.85-0.95 Bray-Curtis相似性),因此支持基于模型的研究在优化饲料间隔物几何形状中的应用和螺旋缠绕膜系统的运行条件。

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