Mathematical Modeling of the Self-Pressurizing Mechanism for Microstructured Fiber Drawing

A method is proposed for modeling the self-pressurization of optical fibers that are sealed before drawing. The model is solved numerically and the results compared with experimental results. An explanation of the mechanism is presented and a numerical investigation is undertaken to optimize the cho...

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Veröffentlicht in:Journal of lightwave technology 2009-04, Vol.27 (7), p.871-878
Hauptverfasser: Voyce, C.J., Fitt, A.D., Hayes, J.R., Monro, T.M.
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container_end_page 878
container_issue 7
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container_title Journal of lightwave technology
container_volume 27
creator Voyce, C.J.
Fitt, A.D.
Hayes, J.R.
Monro, T.M.
description A method is proposed for modeling the self-pressurization of optical fibers that are sealed before drawing. The model is solved numerically and the results compared with experimental results. An explanation of the mechanism is presented and a numerical investigation is undertaken to optimize the choice of experimental parameters to minimize the transient effects of sealed preform drawing.
doi_str_mv 10.1109/JLT.2007.916489
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source IEEE Electronic Library (IEL)
subjects Applied sciences
Circuit properties
Electric, optical and optoelectronic circuits
Electronics
Exact sciences and technology
Fabrication
Fibers
Integrated optics. Optical fibers and wave guides
Mathematical model
Mathematical modeling
Mathematical models
Numerical models
Optical and optoelectronic circuits
optical fiber
Optical fiber applications
optical fiber fabrication
optical fiber theory
Optical fibers
Photonic crystal fibers
Predictive models
Preforms
pressure effects
Solid modeling
Surface tension
title Mathematical Modeling of the Self-Pressurizing Mechanism for Microstructured Fiber Drawing
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