Numerical Solution Strategies in Permeation Processes

Author:

von der Weth Axel1,Koch Daniela Piccioni1,Arbeiter Frederik1,Glage Till1,Klimenko Dmitry1,Schlindwein Georg1,Pasler Volker1,Prothmann Norbert1,Zinn Kevin1

Affiliation:

1. Karlsruhe Institute of Technology

Abstract

In this work, the strategy for numerical solutions in transport processes is investigated. Permeation problems can be solved analytically or numerically by means of the Finite Difference Method (FDM), while choosing the Euler forward explicit or Euler backwards implicit formalism. The first method is the easiest and most commonly used, while the Euler backwards implicit is not yet well established and needs further development. Hereafter, a possible solution of the Crank-Nicolson algorithm is presented, which makes use of matrix multiplication and inversion, instead of the step-by-step FDM formalism. If one considers the one-dimensional diffusion case, the concentration of the elements can be expressed as a time dependent vector, which also contains the boundary conditions. The numerically stable matrix inversion is performed by the Branch and Bound (B&B) algorithm [2]. Furthermore, the paper will investigate, whether a larger time step can be used for speeding up the simulations. The stability range is investigated by eigenvalue estimation of the Euler forward and Euler backward. In addition, a third solver is considered, referred to as Combined Solver, that is made up of the last two ones. Finally, the Crank-Nicolson solver [9] is investigated. All these results are compared with the analytical solution. The solver stability is analyzed by means of the Steady State Eigenvector (SSEV), a mathematical entity which was developed ad hoc in the present work. In addition, the obtained results will be compared with the analytical solution by Daynes [6,7].

Publisher

Trans Tech Publications, Ltd.

Subject

Condensed Matter Physics,General Materials Science,Radiation

Reference25 articles.

1. A. von der Weth et al., Numerical analysis of an isovolumetric thermal desorption experiment, Proceeding of Diffusion in Solids and Liquids (DSL) conference, Defect and Diffusion Forum., (Athens, 24.-28.June 2019).

2. A. von der Weth et al., Permeation Data Analysis Considering a Nonzero Hydrogen Concentration on the Low Pressure Detector Side for a Purged Permeation Experiment, Defect and Diffusion Forum, 2019, 18-19, Vol 391, https://doi.org/10.4028/www.scientific.net/DDF.391.18.

3. L. A. Sedano et al., Intrinsic hydrogen transport constants in the CFC matrix and fibres derived from isovolumetric desorption experiments, Journal of Nuclear Materials 273 (1999) 285±293.

4. K. Nagatou, M. R. Schulz et al, ANALYTICAL SOLUTION OF A GAS RELEASE PROBLEM CONSIDERING PERMEATION WITH TIME DEPENDENT BOUNDARY CONDITIONS, ICTT (2019).

5. bwUniCluster, https://www.scc.kit.edu/dienste/bwUniCluster.php.

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