高温处理对炭基碳-碳复合材料力学性能的影响

Q3 Materials Science
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引用次数: 0

摘要

多孔基质的热解压实是获得碳-碳复合材料的方法之一。例如,当在高温下使用这种材料作为加热器的元件时,有必要考虑高温对其机械特性的影响。本工作研究了高温处理对材料力学性能的影响,并考虑了JSC“Composite”生产的材料“Argolon GR”样品的破坏机理。研究表明,随着加工温度从1800°C提高到2400°C,样品的开孔率与样品中裂纹数量和尺寸的增加成正比。压缩破坏应力对温度的依赖性很弱,然而,相应的依赖性曲线图清楚地显示,随着加工温度从2000°C增加到2400°C,压缩破坏应力略有下降,这对应于材料基体中损伤的累积,从而降低了其强度。值得注意的是,经过高温处理后,材料的抗拉强度显著提高,这在碳-碳复合材料中并不常见。材料样品的拉伸断裂应力随加工温度的升高而变化,在2000°C时具有明显的最大值。对冲击强度、样品断裂表面粗糙度参数和拉伸断裂应力变化的分析表明,断裂过程中的主要机制是强度增加的机制,这种机制与违反材料部件变形的相容性条件有关,而热应力松弛的影响非常小。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
INFLUENCE OF HIGH TEMPERATURE TREATMENT ON THE MECHANICAL CHARACTERISTICS OF CARBON-CARBON COMPOSITE MATERIALS WITHPYROCARBON MATRIX
Pyrolytic compaction of porous substrates is one of the methods for obtaining carbon-carbon composite materials. When using such materials at high temperatures, for example, as elements of heaters, it is necessary to take into account the effect of high temperatures on their mechanical characteristics. In this work, the influence of high-temperature treatment on me-chanical characteristics was studied and the mechanism of destruction of samples of the mate-rial "Argolon GR" produced by JSC "Composite" was considered. It is shown that with an in-crease in the processing temperature from 1800 to 2400 °C, the open porosity of the samples increases in proportion to the increase in the number and size of cracks in the samples. The compressive failure stress depends very weakly on temperature, however, the graph of the corresponding dependence clearly shows its slight decrease with an increase in the processing temperature from 2000 to 2400 °C, which corresponds to the accumulation of damage in the material matrix that reduces its strength. Attention is drawn to a significant increase in the ten-sile strength of the material after high-temperature treatment, which is not typical for carbon-carbon composite materials. The dependence of the breaking stress in tension with an increase in the processing temperature for material samples has a pronounced maximum at 2000 °C. The analysis of the change in impact strength, the roughness parameter of the fracture surface of the samples, and the breaking stress in tension showed that the dominant mechanism during fracture is the mechanism of strength increase associated with the violation of the compatibility condition of deformations in the components of the material, while the effect of thermal stress relaxation is very small.
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来源期刊
PNRPU Mechanics Bulletin
PNRPU Mechanics Bulletin Materials Science-Materials Science (miscellaneous)
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1.10
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