Analysis of Model Parameters for a Polymer Filtration Simulator

Author:

Brackett-Rozinsky N.1,Mondal S.2,Fowler K. R.2,Jenkins E. W.3

Affiliation:

1. UCLA Department of Mathematics, University of California Los Angeles, Los Angeles, CA 90095-1555, USA

2. Department of Mathematics, Clarkson University, Potsdam, NY 13699-5815, USA

3. Department of Mathematical Sciences, Clemson University, Clemson, SC 29634, USA

Abstract

We examine a simulation model for polymer extrusion filters and determine its sensitivity to filter parameters. The simulator is a three-dimensional, time-dependent discretization of a coupled system of nonlinear partial differential equations used to model fluid flow and debris transport, along with statistical relationships that define debris distributions and retention probabilities. The flow of polymer fluid, and suspended debris particles, is tracked to determine how well a filter performs and how long it operates before clogging. A filter may have multiple layers, characterized by thickness, porosity, and average pore diameter. In this work, the thickness of each layer is fixed, while the porosities and pore diameters vary for a two-layer and three-layer study. The effects of porosity and average pore diameter on the measures of filter quality are calculated. For the three layer model, these effects are tested for statistical significance using analysis of variance. Furthermore, the effects of each pair of interacting parameters are considered. This allows the detection of complexity, where in changing two aspects of a filter together may generate results substantially different from what occurs when those same aspects change separately. The principal findings indicate that the first layer of a filter is the most important.

Publisher

Hindawi Limited

Subject

Computer Science Applications,General Engineering,Modelling and Simulation

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