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首页> 外文期刊>International journal of applied ceramic technology >Evaluation of Micromechanical Properties of Carbon/ Carbon and Carbon/Carbon-Silicon Carbide Composites at Ultralow Load
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Evaluation of Micromechanical Properties of Carbon/ Carbon and Carbon/Carbon-Silicon Carbide Composites at Ultralow Load

机译:超低负荷下碳/碳和碳/碳-碳化硅复合材料的微机械性能评估

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摘要

2D carbon fiber (C-fiber)-reinforced carbon/carbon (C/C) composites were prepared by vacuum infiltration with coal-tar pitch followed by carbonization and graphitization in inert atmosphere. Liquid silicon infiltration was done in controlled atmosphere at 1600℃ to convert the matrix carbon of the C/C composites into silicon carbide. The 2D C/C and carbon/ carbon-silicon carbide (C/C-SiC) composites had density of ~ 1.65 and ~ 2.32 g/cm~3, respectively with corresponding flexural strength of ~70 and ~169MPa, respectively. The local mechanical properties like hardness, Young's modulus, contact pressure, relative stiffness, relative spring back, and indentation energies of the two composites under different loading conditions were measured at an ultra low load of 10 mN using a nanoindentation instrument with a Berkovich indenter. The scatter in the data was treated in terms of the two-parameter Weibull statistical analysis. The maximum characteristic Young's modulus (~ 16 GPa) and hardness (1.20 GPa) was obtained for the C/C-SiC composites in parallel direction of fabric stacking. The elastic rebounce was also the maximum (0.77) for the C/C-SiC composites when loaded in parallel direction of fabric stacking. The extent of structural anisotropy was higher in the C/C-SiC composite than that of the C/C composite.
机译:二维碳纤维(C纤维)增强的碳/碳(C / C)复合材料是通过用煤焦油沥青进行真空渗透,然后在惰性气氛中进行碳化和石墨化来制备的。在1600℃的受控气氛中进行液态硅的浸渗,将C / C复合材料的基体碳转化为碳化硅。二维C / C和碳/碳-碳化硅(C / C-SiC)复合材料的密度分别为〜1.65和〜2.32 g / cm〜3,相应的抗弯强度分别为〜70和〜169MPa。使用带有Berkovich压头的纳米压痕仪在10 mN的超低负载下测量了两种复合材料在不同负载条件下的局部机械性能,如硬度,杨氏模量,接触压力,相对刚度,相对回弹力和压痕能。数据中的散点根据两参数威布尔统计分析进行处理。 C / C-SiC复合材料在织物堆叠的平行方​​向上获得了最大特征杨氏模量(〜16 GPa)和硬度(1.20 GPa)。当C / C-SiC复合材料在织物堆叠的平行方​​向上加载时,弹性反弹也是最大值(0.77)。 C / C-SiC复合材料的结构各向异性程度高于C / C复合材料的结构各向异性程度。

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    Non-Oxide Ceramic and Composite Division, Central Glass & Ceramic Research Institute (CSIR), Kolkata-700032, India;

    Non-Oxide Ceramic and Composite Division, Central Glass & Ceramic Research Institute (CSIR), Kolkata-700032, India;

    Non-Oxide Ceramic and Composite Division, Central Glass & Ceramic Research Institute (CSIR), Kolkata-700032, India;

    Non-Oxide Ceramic and Composite Division, Central Glass & Ceramic Research Institute (CSIR), Kolkata-700032, India;

    Ceramic Matrix Composite Division, ASL, DRDO, Hyderabad 500058, India;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
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  • 正文语种 eng
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