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    Modeling of Advanced Melting Zone for Manufacturing of Optical Fibers*

    Source: Journal of Manufacturing Science and Engineering:;2004:;volume( 126 ):;issue: 004::page 750
    Author:
    Zhiyong Wei
    ,
    Zhi Zhou
    ,
    Siu-Ping Hong
    ,
    Kok-Meng Lee
    DOI: 10.1115/1.1849032
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Optical fibers are drawn from preforms (fused silica glass rods) typically made up of two concentric cylinders (the core rod and the clad tube), which are usually joined in a separate fusion process. The setup time and hence manufacturing cost can be significantly reduced if the two cylinders can be joined in the same furnace in which the fiber is drawn. A good understanding of the transient temperature distribution is needed for controlling the feed rate to avoid thermally induced cracks. Since direct measurement of the temperature fields is often impossible, the geometrical design of the preform and the control of the feed rate have largely been accomplished by trials-and-errors. The ability to predict the transient temperature distribution and the thermally induced stresses will provide a rational basis to design optimization and feed rate control of the process. In this paper, we present an analytical model to predict the transient conductive-radiative transfer as two partially joined, concentric glass cylinders with specular surfaces are fed into the furnace. Finite volume method (FVM) is used to solve the radiative transfer equation (RTE). The specular surface reflectivity is obtained by the Fresnel’s law and the Snell’s law. The boundary intensities are obtained through the coupling of the interior glass radiative transfer and the exterior furnace enclosure analysis. The model has been used to numerically study the transient conductive-radiative transfer in the advanced melting zone (AMZ) of an optic fiber drawing process. This problem is of both theoretical and practical interest in the manufacture of optical fibers. The computational method for the radiation transfer developed in this paper can also be applied to the simulation of the fiber drawing process and other glass-related manufacturing processes.
    keyword(s): Temperature , Glass , Radiation (Physics) , Manufacturing , Melting , Fracture (Materials) , Cylinders , Equations , Furnaces , Optical fiber , Preforms , Temperature distribution , Temperature gradients , Modeling , Fibers , Simulation , Heat flux , Design , Reflectance , Radiative heat transfer AND Heat transfer ,
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      Modeling of Advanced Melting Zone for Manufacturing of Optical Fibers*

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    http://yetl.yabesh.ir/yetl1/handle/yetl/130340
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    contributor authorZhiyong Wei
    contributor authorZhi Zhou
    contributor authorSiu-Ping Hong
    contributor authorKok-Meng Lee
    date accessioned2017-05-09T00:13:34Z
    date available2017-05-09T00:13:34Z
    date copyrightNovember, 2004
    date issued2004
    identifier issn1087-1357
    identifier otherJMSEFK-27832#750_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/130340
    description abstractOptical fibers are drawn from preforms (fused silica glass rods) typically made up of two concentric cylinders (the core rod and the clad tube), which are usually joined in a separate fusion process. The setup time and hence manufacturing cost can be significantly reduced if the two cylinders can be joined in the same furnace in which the fiber is drawn. A good understanding of the transient temperature distribution is needed for controlling the feed rate to avoid thermally induced cracks. Since direct measurement of the temperature fields is often impossible, the geometrical design of the preform and the control of the feed rate have largely been accomplished by trials-and-errors. The ability to predict the transient temperature distribution and the thermally induced stresses will provide a rational basis to design optimization and feed rate control of the process. In this paper, we present an analytical model to predict the transient conductive-radiative transfer as two partially joined, concentric glass cylinders with specular surfaces are fed into the furnace. Finite volume method (FVM) is used to solve the radiative transfer equation (RTE). The specular surface reflectivity is obtained by the Fresnel’s law and the Snell’s law. The boundary intensities are obtained through the coupling of the interior glass radiative transfer and the exterior furnace enclosure analysis. The model has been used to numerically study the transient conductive-radiative transfer in the advanced melting zone (AMZ) of an optic fiber drawing process. This problem is of both theoretical and practical interest in the manufacture of optical fibers. The computational method for the radiation transfer developed in this paper can also be applied to the simulation of the fiber drawing process and other glass-related manufacturing processes.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleModeling of Advanced Melting Zone for Manufacturing of Optical Fibers*
    typeJournal Paper
    journal volume126
    journal issue4
    journal titleJournal of Manufacturing Science and Engineering
    identifier doi10.1115/1.1849032
    journal fristpage750
    journal lastpage759
    identifier eissn1528-8935
    keywordsTemperature
    keywordsGlass
    keywordsRadiation (Physics)
    keywordsManufacturing
    keywordsMelting
    keywordsFracture (Materials)
    keywordsCylinders
    keywordsEquations
    keywordsFurnaces
    keywordsOptical fiber
    keywordsPreforms
    keywordsTemperature distribution
    keywordsTemperature gradients
    keywordsModeling
    keywordsFibers
    keywordsSimulation
    keywordsHeat flux
    keywordsDesign
    keywordsReflectance
    keywordsRadiative heat transfer AND Heat transfer
    treeJournal of Manufacturing Science and Engineering:;2004:;volume( 126 ):;issue: 004
    contenttypeFulltext
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