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MicroStructure Element Method (MSEM): viscous flow model for the virtual draw of microstructured optical fibers

机译:微结构单元法(msEm):用于微结构光纤虚拟拉伸的粘性流动模型

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摘要

We propose a new method to accurately model the structural evolution of a microstructured fiber (MOF) during its drawing process, given its initial preform structure and draw conditions. The method, applicable to a broad range of MOFs with high air-filling fraction and thin glass membranes, is an extension of the Discrete Element Method; it determines forces on the nodes in the microstructure to progressively update their position along the neck-down region, until the fiber reaches a final frozen state. The model is validated through simulation of 6 Hollow Core Photonic Band Gap Fibers (HC-PBGFs) and is shown to predict accurately the final fiber dimensions and cross-sectional distortions. The model is vastly more capable than other state of the art models and allows fast exploration of wide drawing parameter spaces, eliminating the need for expensive and time-consuming empirical parameter scans.
机译:我们提出了一种新方法,可以根据给定的初始瓶坯结构和拉伸条件,准确地模拟微结构纤维(MOF)在拉伸过程中的结构演变。该方法适用于具有高空气填充率和薄玻璃膜的多种MOF,是对离散元素方法的扩展。它确定了微结构中节点上的力,以逐步更新它们沿着颈缩区域的位置,直到纤维达到最终的冻结状态。该模型通过仿真6根中空光子带隙光纤(HC-PBGF)进行了验证,并可以准确预测最终的光纤尺寸和横截面变形。该模型比其他现有技术模型具有更强大的功能,并且可以快速浏览广泛的绘图参数空间,从而无需昂贵且耗时的经验参数扫描。

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