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Study on heating model and heat transfer law of anti-oxidation coating materials in high vacuum environment

机译:高真空环境下抗氧化涂料的加热模型和传热规律研究

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On the basis of resistance direct heating method, a wide-temperature-range (773–2573?K) and high-vacuum heating apparatus for anti-oxidation coatings materials is built. The heat transfer model of coating materials is deduced by the heat transfer principle. By COMSOL numerical analysis, the relationship between heat transfer, heat distribution, extreme value of temperature and power voltage, power time, diameter of surface defects is studied. The results show that the heat coupling effect causes the maximum temperature in the central area. Both centre part temperature and the maximum temperature increase and tend to be stable with the rise of voltage, time and the diameter of surface defects. When the time reaches the 30?s and the voltage is 1.9?V, the maximal temperature is about 2600?K, 5?K higher than central part temperature. When the electric voltage is from 1.5?V to 2?V, the maximum temperature of the iridium coating surface varies from 2300?K to the melting point (2719?K). With a 1.9?V electric voltage, the diameter of surface defects varies from 0.5?×?10?3to 3?×?10?3?m and the maximal surface temperature varies from 2583?K to 2610?K. In the study, the present work aims to reveal the heat transfer law of anti-oxidation coatings materials and play an active role in failure and reliability research of the materials, which will speed up the research development of engineering application.
机译:在电阻直接加热法的基础上,建立了一个宽温度范围(773-2573?K)和高真空的抗氧化涂料材料加热装置。通过传热原理推导了涂料的传热模型。通过COMSOL数值分析,研究了传热,热分布,温度和电源电压的极值,通电时间,表面缺陷直径之间的关系。结果表明,热耦合效应引起中心区域的最高温度。中心部分温度和最高温度都升高,并且随着电压,时间和表面缺陷直径的增加趋于稳定。当时间达到30?s且电压为1.9?V时,最高温度约为2600?K,比中央部分温度高5?K。当电压为1.5?V至2?V时,铱涂层表面的最高温度从2300?K到熔点(2719?K)变化。电压为1.9?V时,表面缺陷的直径在0.5?×?10?3至3?×?10?3?m之间变化,最大表面温度在2583?K至2610?K之间变化。在研究中,本工作旨在揭示抗氧化涂层材料的传热规律,并在材料的失效和可靠性研究中发挥积极作用,从而加快工程应用的研究发展。

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