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Modeling of Radiation Heat Transfer in the Drawing of an Optical Fiber With Multilayer Structure

机译:多层结构光纤拉制中的辐射传热建模

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A numerical model is developed to study the radiative heat transfer in a furnace for optical fiber drawing with a core-cladding structure in the fiber. The focus is on the effect of the difference in composition and thus the radiation properties in the two regions on radiative transport. The zonal method is applied to calculate the radiative heat transfer within the neck-down region of the preform. The radiative heat transfer between the preform and the furnace is computed by an enclosure analysis. A parallel computational scheme for determining the direct exchange areas is also studied. The radiation model is verified by comparisons with benchmark problems. Numerical results for a pure silica preform, a GeO_2-doped silica core with a pure silica cladding preform, and a pure silica core with a B_2O_3-doped silica cladding preform are presented. Radiation properties for these are obtained from the literatures and a three-band model is developed to represent the values. It is found that radiative heat flux on the surface of the preform is strongly affected by the differences in the absorption coefficient due to doping. However, changes of about 1% in the refractive index have only a small effect on radiative heat transfer. The basic approach is outlined in order to form the basis for simulating optical fiber drawing processes, which typically involve fibers and preforms with a core and a cladding. Furthermore, the approach can apply to estimate the multi-layer fiber drawing, which is of interest in the fabrication of specialty fibers that have been finding uses in a variety of practical applications. The model can be extended to other similar processes, which involve multiple regions with different radiation properties. The main interest in this study is on the approximate representation of radiation properties and on the modeling of the transport process.
机译:开发了一个数值模型来研究光纤拉丝炉中的辐射传热,其中光纤具有芯-包层结构。重点在于成分差异的影响,以及两个区域的辐射特性对辐射传输的影响。应用分区方法来计算预型件颈缩区域内的辐射热传递。通过外壳分析计算出预型件与熔炉之间的辐射热传递。还研究了用于确定直接交换区域的并行计算方案。通过与基准问题进行比较来验证辐射模型。给出了纯二氧化硅预制棒,具有纯二氧化硅包覆预制棒的GeO_2掺杂的二氧化硅芯和具有B_2O_3掺杂二氧化硅包覆预制棒的纯二氧化硅芯的数值结果。从文献中获得了这些材料的辐射特性,并开发了一个三波段模型来表示这些值。已经发现,由于掺杂引起的吸收系数的差异强烈地影响了预成型件表面上的辐射热通量。但是,折射率的大约1%的变化对辐射热传递的影响很小。概述了基本方法,以便形成模拟光纤拉伸过程的基础,该过程通常涉及具有纤芯和包层的光纤和预成型坯。此外,该方法可以应用于估计多层纤维拉伸,这在特种纤维的制造中是令人感兴趣的,该特种纤维已经在各种实际应用中找到用途。该模型可以扩展到其他类似的过程,这些过程涉及具有不同辐射特性的多个区域。这项研究的主要兴趣在于辐射特性的近似表示以及传输过程的建模。

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