脉冲加热时钨板和钨蒸气薄层的热电流计算,考虑温度和相位相关电阻和热电动势

IF 0.58 Q3 Engineering
G. G. Lazareva, V. A. Popov
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引用次数: 0

摘要

在本文中,我们考虑了一个模型的电流分布在钨试样和蒸发的物质,当表面被电子束加热。该模型是在求解圆柱坐标系下的电动力学方程和两相Stefan问题的基础上建立的。我们在蒸发钨的薄层中使用模型温度分布来复制表面温度。热电流是利用钨及其蒸气的电阻和热电动势的近似温度依赖关系得到的。模型参数取自俄罗斯科学院西伯利亚分院Budker核物理研究所的电子束材料测试应用(BETA)台的实验。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Calculation of Thermal Currents in a Tungsten Plate and in a Thin Layer of Tungsten Vapor during Pulse Heating with Allowance for Temperature- and Phase-Dependent Electrical Resistance and Thermo EMF

In this paper, we consider a model of current distribution in a tungsten specimen and the evaporated substance when the surface is heated by an electron beam. The model is based on solving the equations of electrodynamics and the two-phase Stefan problem for calculating the specimen area temperature in a cylindrical coordinate system. We use a model temperature distribution in a thin layer of evaporated tungsten that replicates the surface temperature. Thermal currents are obtained using approximate temperature dependences of the electrical resistance and thermo emf of tungsten and its vapor. The model parameters are taken from experiments at the Beam of Electrons for materials Test Applications (BETA) stand, created at the Budker Institute of Nuclear Physics of the Siberian Branch of the Russian Academy of Sciences.

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来源期刊
Journal of Applied and Industrial Mathematics
Journal of Applied and Industrial Mathematics Engineering-Industrial and Manufacturing Engineering
CiteScore
1.00
自引率
0.00%
发文量
16
期刊介绍: Journal of Applied and Industrial Mathematics  is a journal that publishes original and review articles containing theoretical results and those of interest for applications in various branches of industry. The journal topics include the qualitative theory of differential equations in application to mechanics, physics, chemistry, biology, technical and natural processes; mathematical modeling in mechanics, physics, engineering, chemistry, biology, ecology, medicine, etc.; control theory; discrete optimization; discrete structures and extremum problems; combinatorics; control and reliability of discrete circuits; mathematical programming; mathematical models and methods for making optimal decisions; models of theory of scheduling, location and replacement of equipment; modeling the control processes; development and analysis of algorithms; synthesis and complexity of control systems; automata theory; graph theory; game theory and its applications; coding theory; scheduling theory; and theory of circuits.
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