Article (Scientific journals)
Linear stability analysis of nonisothermal glass fiber drawing
Philippi, Julien; Bechert, Mathias; Chouffart, Quentin et al.
2022In Physical Review Fluids, 7 (4)
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Keywords :
Draw ratio; Draw resonances; Fiber aspect ratio; Fiber-drawing process; Glass fiber drawings; Heat transfer co-efficients; In-fiber; Inlet velocity; Nonisothermal; Resonance effect; Computational Mechanics; Modeling and Simulation; Fluid Flow and Transfer Processes
Abstract :
[en] The draw resonance effect appears in fiber drawing processes when the draw ratio, defined as the ratio between the take-up and the inlet velocities, exceeds a critical value. In many cases, inertia, gravity, and surface tension cannot be neglected, and a model combining all these effects is necessary in order to correctly describe the physics of the phenomenon. Additionally, it is also known that cooling can have a highly stabilizing effect on the draw resonance instability. However, a detailed analysis encompassing the effect of inertia, gravity, surface tension, and temperature is still lacking. Due to a destabilizing effect induced by geometry in the heat equation, we first show that the maximum critical draw ratio for fiber drawing can be two orders of magnitude lower than the one for the film casting problem when the heat transfer coefficient is assumed constant. By introducing a scaling making the fiber aspect ratio an independent parameter, we next show that the high value of the critical draw ratio encountered in industrial applications could be rationalized only if we consider that the heat transfer coefficient is not constant but depends on both the velocity and the cross-section area of the fiber. Within this framework, we show how the practical stability window is affected by the five control parameters: the draw ratio, the fiber aspect ratio, the inlet temperature, the convective heat transfer coefficient, and the stiffness of the non-homogeneous ambient temperature. We finally discuss the influence of radiative heat transfer on the stability.
Disciplines :
Materials science & engineering
Author, co-author :
Philippi, Julien ;  TIPs, Université Libre de Bruxelles, Brussels, Belgium
Bechert, Mathias ;  Forschungszentrum Jülich GmbH, Helmholtz Institute Erlangen-Nürnberg for Renewable Energy (IEK-11), Nuremberg, Germany
Chouffart, Quentin ;  Université de Liège - ULiège > Unités de recherche interfacultaires > Space sciences, Technologies and Astrophysics Research (STAR) ; 3B-The Fibreglass Company, Belgium
Waucquez, Christophe;  3B-The Fibreglass Company, Belgium
Scheid, Benoit ;  TIPs, Université Libre de Bruxelles, Brussels, Belgium
Language :
English
Title :
Linear stability analysis of nonisothermal glass fiber drawing
Publication date :
April 2022
Journal title :
Physical Review Fluids
ISSN :
2469-9918
eISSN :
2469-990X
Publisher :
American Physical Society
Volume :
7
Issue :
4
Peer reviewed :
Peer Reviewed verified by ORBi
Funders :
F.R.S.-FNRS - Fonds de la Recherche Scientifique [BE]
Funding text :
We acknowledge 3B–The Fibreglass Company for supporting this research. B.S. thanks the FRS-FNRS for financial support.
Available on ORBi :
since 07 November 2022

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