A finite element model for concentration polarization and osmotic effects in a membrane channel

12/15/2022
by   Nicolás Carro, et al.
0

In this paper we study a mathematical model that represents the concentration polarization and osmosis effects in a reverse osmosis cross-flow channel with porous membranes at some of its boundaries. The fluid is modeled using the Navier-Stokes equations and Darcy's law is used to impose the momentum balance on the membrane. The scheme consist of a conforming finite element method with the velocity-pressure formulation for the Navier-Stokes equations, together with a primal scheme for the convection-diffusion equations. The Nitsche method is used to impose the permeability condition across the membrane. Several numerical experiments are performed to show the robustness of the method. The resulting model accurately replicates the analytical models and predicts similar results to previous works. It is found that the submerged configuration has the highest permeate production, but also has the greatest pressure loss of all three configurations studied.

READ FULL TEXT

page 10

page 11

page 12

page 13

page 14

research
10/30/2020

A mixed elasticity formulation for fluid-poroelastic structure interaction

We develop a mixed finite element method for the coupled problem arising...
research
08/29/2023

Stabilised finite element method for Stokes problem with nonlinear slip condition

This work introduces a stabilised finite element formulation for the Sto...
research
04/23/2020

Analysis of the Blade Element Momentum Theory

The Blade Element Momentum theory (BEM), introduced by H. Glauert in 192...
research
12/13/2019

A multimesh finite element method for the Navier-Stokes equations based on projection methods

The multimesh finite element method is a technique for solving partial d...
research
06/01/2021

A reduced 3D-0D FSI model of the aortic valve including leaflets curvature

In the present work, we propose a novel lumped-parameter model for the d...
research
01/31/2023

Exploring numerical blow-up phenomena for the Keller-Segel-Navier-Stokes equations

The Keller-Segel-Navier-Stokes system governs chemotaxis in liquid envir...
research
02/08/2022

A stabilized formulation for the solution of the incompressible unsteady Stokes equations in the frequency domain

A stabilized finite element method is introduced for the simulation of t...

Please sign up or login with your details

Forgot password? Click here to reset