应用iqlab程序求解铬镍圆柱形热感测仪的反热传导问题的特点

E. N. Zotov, A. Moskalenko, O. V. Razumtseva, L. N. Protsenko, V. Dobryvechir
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引用次数: 0

摘要

本文介绍了利用IQLab程序求解耐热铬镍合金在液体介质中冷却时的反热传导问题并恢复圆柱形热感仪表面温度的实验计算研究结果。本文的目的是验证IQLab程序在恢复1-3个热电偶的热感测仪表面温度时的正确操作。IQLab程序还设计用于解决一维非线性直线和反热传导问题,具有恒定的初始和边界条件,指定为时间的函数,以表格形式具有恒定和可变的时间步长。采用有限差分法求解热方程。实验对样品D = 10-50 mm,在NaCl与育空- e聚合物水溶液、菜籽油和I-20A矿物油等不同冷却能力的液体中进行。为了计算,我们使用了安装在圆柱形热电偶内部点的读数。使用IQLab程序解决反热传导问题的优点包括,根据位于热感测仪几何中心的单个热电偶指示,可以恢复直径为10 mm至50 mm的圆柱形样品的表面温度,并且具有实际精度,从而简化了探头的制造。对于直径D≥50mm的较大尺寸,有必要安装控制中间热电偶并进行额外的测试。反热传导问题的解决和样品表面温度的恢复使得计算冷却过程的其他重要特性:热流密度和传热系数成为可能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
FEATURES OF THE APPLICATION OF THE IQLAB PROGRAM FOR SOLVING THE INVERSE HEAT CONDUCTION PROBLEM FOR CHROMIUM-NICKEL CYLINDRICAL THERMOSONDES
The paper presents an experimental-computational study of the results of using the IQLab program to solve inverse heat conduction problem and restore the surface temperature of cylindrical thermosondes from heat-resistant chromium-nickel alloys while cooling them in liquid media. The purpose of this paper is to verify the correct operation of the IQLab program when restoring the surface temperature of thermosondes with 1-3 thermocouples. The IQLab program is also designed to solve one-dimensional nonlinear direct lines and inverse heat conduction problems with constant initial and boundary conditions specified as a function of time in a tabular form with a constant and variable time step. A finite-difference method is used to solve the heat equation. Experiments were carried out on samples D = 10-50 mm in liquids with different cooling capacities such as aqueous solutions of  NaCl and Yukon-E polymer, rapeseed oil and I-20A mineral oil. For the calculation we used the readings of thermocouples installed at internal points of cylindrical thermosondes. The advantages of solving inverse heat conduction problems with the IQLab program include the possibility of restoring the surface temperature for cylindrical samples with a diameter of 10 mm to 50 mm with practical accuracy according to the indications of a single thermocouple located in the geometrical center of the thermosonde, which simplifies the manufacture of the probe. For larger dimensions with a diameter D ≥ 50 mm, it is necessary to install control intermediate thermocouples and perform additional tests. The solution of inverse heat conduction problems and restoration of the surface temperature of the sample makes it possible to calculate other important characteristics of the cooling process: the heat flux density and the heat transfer coefficient.
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