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作 者:徐忠营 王伟[1] 孟松鹤[1] 解维华[1] 易法军[1]
机构地区:[1]哈尔滨工业大学复合材料与结构研究所,哈尔滨150080
出 处:《装备环境工程》2016年第3期37-42,共6页Equipment Environmental Engineering
基 金:国家自然科学基金面上项目(11272107);国家重点基础研究发展计划(2015CB655200)~~
摘 要:目的测量热结构材料在高温环境下的热膨胀系数,方法将数字图像相关(DIC)技术和通电加热技术相结合,建立高温热变形测量系统。该系统使用CCD相机采集不同温度下试样的表面图像,经DIC方法分析处理得到被测材料随温度升高产生的变形和应变,进一步计算得到相应温度下的热膨胀系数。测量紫铜、石墨分别在600-800℃,600-1200℃范围内的热膨胀系数,并与文献数据进行比较。结果使用该实验系统测量得到了紫铜和石墨分别在600-800℃,600-1200℃范围内的热膨胀系数,与文献参考值吻合较好。结论该测量方法可精确得到导电材料的热应变及热膨胀系数,测量温度上限可达1200℃。Objective To measure thermal expansion coefficient(CTE) of heat structures materials at high temperature. Methods Combining the digital image correlation(DIC) method and energized resistance heating technology, a test system for measuring high-temperature deformation and strain was established. After recording the surface images at different temperatures by a CCD camera, DIC method was used to analyze all the images to obtain the deformation and strain along with increasing temperature, and the corresponding thermal expansion coefficients at different temperatures were further calculated. This paper measured the thermal expansion coefficients of copper in the range of 600-800 ℃, and measured the graphite′s CTE in the range of 600 -1200 ℃, comparing with literature data. Results The CTE of copper was in the range of 600 -800 ℃ and graphite in the range of 600-1200 ℃ as, measured by this system, showing that the data were in good agreement with the literature. Conclusion This method showed the ability to accurately measure thermal strain and CTE of conductive material, and its temperature limit reached up to 1200 ℃.
关 键 词:高温 热变形 数字图像相关技术 石墨 热膨胀系数
分 类 号:TJ06[兵器科学与技术—兵器发射理论与技术]
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