A model for radiative cooling of a semitransparent molten glass jet

M. Song, K. Ball, T. Bergman
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引用次数: 10

Abstract

Transfer of molten glass from location to location typically involves a pouring process, during which a stream of glass is driven by gravity and cooled by combined convective and radiative heat transfer. This study of the thermal and fluid mechanics aspects of glass pouring is motivated by the glass casting of vitrified, surplus weapons-grade plutonium. Here, a mathematical model for the radiative cooling of a semitransparent molten glass jet with temperature-dependent viscosity has been developed and is implemented numerically. The axial velocity and jet diameter variations along the length of the jet, the axial bulk mean temperature distributions, and the centerline-to-surface glass temperature distributions are determined for different processing conditions. Comparisons are also made between the semitransparent predictions, which are based on a spectral discrete ordinates model, and predictions for an opaque medium.
半透明熔融玻璃射流的辐射冷却模型
熔融玻璃从一个位置转移到另一个位置通常涉及一个浇铸过程,在此过程中,玻璃流由重力驱动,并通过对流和辐射传热组合冷却。这项研究的热和流体力学方面的玻璃浇铸是由玻璃化,剩余武器级钚的玻璃铸造。本文建立了具有温度依赖粘度的半透明熔融玻璃射流辐射冷却的数学模型,并进行了数值实现。测定了不同加工条件下的轴向速度和射流直径沿射流长度的变化、轴向体积平均温度分布以及中心线到表面的玻璃温度分布。在基于光谱离散坐标模型的半透明预测和不透明介质的预测之间也进行了比较。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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