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首页> 外文期刊>Journal of Fluid Mechanics >Coupled fluid and energy flow in fabrication of microstructured optical fibres
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Coupled fluid and energy flow in fabrication of microstructured optical fibres

机译:耦合流体和能量流动在微结构化光纤的制造中

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摘要

We consider the role of heating and cooling in the steady drawing of a long and thin viscous thread with an arbitrary number of internal holes of arbitrary shape. The internal holes and the external boundary evolve as a result of the axial drawing and surface-tension effects. The heating and cooling affects the evolution of the thread because both the viscosity and surface tension of the thread are assumed to be functions of the temperature. We use asymptotic techniques to show that, under a suitable transformation, this complicated three-dimensional free boundary problem can be formulated in such a way that the transverse aspect of the flow can be reduced to the solution of a standard Stokes flow problem in the absence of axial stretching. The solution of this standard problem can then be substituted into a system of three ordinary differential equations that completely determine the flow. We use this approach to develop a very simple numerical method that can determine the way that thermal effects impact on the drawing of threads by devices that either specify the fibre tension or the draw ratio. We also develop a numerical method to solve the inverse problem of determining the initial cross-sectional geometry, draw tension and, importantly, heater temperature to obtain a desired cross-sectional shape and change in cross-sectional area at the device exit. This precisely allows one to determine the pattern of air holes in the preform that will achieve the desired hole pattern in the stretched fibre.
机译:我们考虑加热和冷却在长而薄粘性螺纹的稳定图中的作用,该粘帘的稳定图具有任意形状的任意数量的内部孔。由于轴向拉伸和表面张力效应,内孔和外部边界演变。加热和冷却影响线的进化,因为螺纹的粘度和表面张力都被假定为温度的功能。我们使用渐近技术表明,在合适的转换下,可以以这样的方式配制这种复杂的三维自由边界问题,即可以减少流动的横向方面在缺失中的标准Stokes流量问题的溶液中的溶解情况轴向拉伸。然后可以将该标准问题的解决方案被替换为三个完全确定流程的三个常微分方程的系统。我们使用这种方法来开发一个非常简单的数字方法,可以确定热效应通过指定光纤张力或拉伸比的设备对螺纹的影响的方式。我们还开发了一种解决了确定初始横截面几何形状,拉伸张力的逆问题的数值方法,提取张力和重要的,加热温度,以获得所需的横截面形状和装置出口处的横截面积的变化。这精确地允许人们确定预制件中的空气孔的图案,其将在拉伸纤维中实现所需的孔图案。

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