Volume 10, March 2013
ISSN 1462-236X
K Farber, J Jasper, M Märtin, M Schmitt, S Krick, P Farber, J Leisen1 and HW Beckham1
Institut für Modellbildung und Hochleistungsrechnen der Hochschule Niederrhein, Krefeld, Germany
1Georgia Institute of Technology, School of Polymer, Textile & Fiber Engineering, Atlanta, USA
https://doi.org/10.59972/1jryslvs
Keywords: Computational Fluid Dynamics, CFD, Complex Geometry, Technical Textile, Paper Making Process, Forming Fabric
The use of virtual prototypes for the prediction of relevant flow related parameters is well established in many industries such as the automotive industry. For the development of technical textiles an analogous approach is anticipated as being beneficial. However, so far the complex geometry of textiles consisting of a very large number of filaments has impeded this approach.
We utilize this approach for the first time investigating a fabric, which is used during the paper forming process. The most challenging aspect for the simulation is the the process of geometry creation by use of single filaments together with the indispensible simplifications for a currently marketed fabric. Meshes of different sizes up 20 million cells have been generated and results from CFD calculations will be displayed together with an analysis of the numerical accuracy. The individual relevance of the simulation experiments will be discussed. Physical experiments at ambient temperature of laminar water flow through the same fabric under comparable conditions with a Reynolds Number of 15 based on pipe diameter of 9.0 mm and pipe volume flow rate averaged velocity magnitude of 0.00172 m/s were performed. The Reynolds Number based on the diameter of the different filaments of 0.2 mm up to 0.45 mm is approx. between 0.34 and 0.77. The experimental set up using Magnetic Resonance Imaging (MRI) will be explained. The use of this experimental approach as a means to validate the results of the simulation will be critically evaluated.
P. Farber, N. Dahmen, Virtual Prototyping for Textile Finishing, 26th Aachen Textile Conference, Aachen, Germany, November 24 - 25, 1999, P. 97 - 107
J. Leisen, H. W. Beckham, "Quantitative magnetic resonance imaging of fluid distribution and movement in textiles", Textile Research Journal 2001, 71,1033-1045.
H. Leisen, M. Märtin, T. Schipotinin, E. Rodehüser, K. Farber, P. Farber, A Synergistic Approach by MRI and CFD for the study of Micro-Flow in Textiles, ISC'2005, Industrial Simulation Conference, June 9-11, 2005 - IPK Fraunhofer Institute, Berlin, Germany
J. Leisen, P. Farber, Micro-Flow in Textiles, Techtextil-Symposium North America 2006, Atlanta/GA, March 28-30, 2006
J. Leisen, H. Beckham, P. Farber, NMR Studies of Fluid Distribution and Transport in Nonwovens, Presentation during INTC 2007, Intenational Nonwovens Technical Conference, Atlanta, Georgia, USA, 24.- 27. September 2007
Leisen, H.W. Beckham, P. Farber, "Fundamental Studies of Wicking in Textiles", Techtextil North America, Atlanta/GA, USA, April 1- April 3, 2008
S. Jaganathan, H. V. Tafreshi, B. Pourdeyhimi, A Case Study of Realistic Two-Scale Modeling of Water Permeability in Fibrous Media, Separation Science and Technology (2008), 43(8), 1901-1916
A. Vakil, A. Olyaei, I. S. Green, Three-dimensional geometry and flow field modeling of forming fabrics, Nordic Pulp & Paper Research Journal (2009), 24(3), 342-350
K Farber, J Jasper, M Märtin, M Schmitt, S Krick, P Farber, J Leisen and HW Beckham, Computational Fluid Dynamics Simulations of the Complex Geometry of a Technical Textile, NAFEMS International Journal of CFD Case Studies, Volume 10, 2013, Pages 5-17, https://doi.org/10.59972/1jryslvs
Reference | CFDJ10-1 |
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Authors | Farber. K Jasper. J Märtin. M Schmitt. M Krick. S Farber. P Leisen. J Beckham. H |
Language | English |
Type | Journal Article |
Date | 3rd January 2013 |
Organisations | Niederrhein University Georgia Institute of Technology |
Order Ref | CFDJ10-1 Download |
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Non-member Price | £5.00 | $6.26 | €6.01 |
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