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Application of projection and immersed boundary methods to simulating heat and mass transport in membrane distillation

机译:投影和浸入边界方法在膜蒸馏中模拟热量输送的应用

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Membrane distillation is an emerging desalination process with important applications to the energy-water nexus. Its performance depends, however, on heat and mass transport phenomena that are uniquely challenging to simulate. Difficulties include two adjacent channel flows coupled by heat and mass transport across a semi-permeable membrane. Within the channels, heat and mass boundary layers interact with the membrane surface and vortical flow structures generated by complicated geometries. The presence of multiple inlets and outlets also complicates the application of mass-conserving outlet conditions. Moreover, even small amounts of outlet noise affect the resolution of important near-membrane fluid velocities. We show these phenomena can be simulated to second-order spatial and temporal accuracy using finite volume methods with immersed boundaries and projection methods. Our approach includes a projection method that staggers the coupled channel flows and applies Robin boundary conditions to facilitate mass conservation at the outlets. We also develop an immersed boundary method that applies Neumann boundary conditions to second-order spatial accuracy. The methods are verified and validated against manufactured solutions and theoretical predictions of vortex shedding. They are then applied to the simulation of steady and unsteady transport phenomena in membrane distillation. The methods have important applications to the broad field of chemical engineering and deal with long-standing issues in both theoretical and computational fluid dynamics. (C) 2020 Elsevier Ltd. All rights reserved.
机译:膜蒸馏是一种具有重要应用的新出现的脱盐过程,适用于能量 - 水Nexus。然而,它的性能取决于热量和大规模运输现象,这些现象是唯一挑战模拟的。困难包括两个相邻的通道流,通过在半透膜上通过热量和质量传输耦合。在通道内,热量和质量边界层与复杂几何形状产生的膜表面和涡流结构相互作用。存在多个入口和出口的存在也使质量保守出口条件的应用复杂化。此外,即使少量的出口噪声也会影响重要的近膜流体速度的分辨率。我们显示这些现象可以使用具有浸入边界和投影方法的有限体积方法模拟到二阶空间和时间精度。我们的方法包括一种投影方法,该投影方法将耦合通道流慢慢地施加罗宾边界条件,以便于出口处的质量守恒。我们还开发了一种浸入的边界方法,将Neumann边界条件应用于二阶空间精度。该方法是针对制造解决方案的验证和验证的涡旋脱落的理论预测。然后将它们应用于膜蒸馏中稳态和不稳定的运输现象的模拟。该方法对广泛的化学工程领域具有重要应用,并处理理论和计算流体动力学中的长期问题。 (c)2020 elestvier有限公司保留所有权利。

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