首页> 外文会议>ASME international mechanical engineering congress and exposition >FAILURE MECHANISM OF CEMENTITIOUS NANOCOMPOSITES REINFORCED BY MULTI-WALLED AND SINGLE-WALLED CARBON NANOTUBES UNDER SPLITTING TENSILE TEST
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FAILURE MECHANISM OF CEMENTITIOUS NANOCOMPOSITES REINFORCED BY MULTI-WALLED AND SINGLE-WALLED CARBON NANOTUBES UNDER SPLITTING TENSILE TEST

机译:多壁和单壁碳纳米管在拉伸试验中增强的胶结纳米复合材料的破坏机理

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Sudden concrete failure is due to inelastic deformations of concrete subjected to tension. However, synthesizing nanomaterials reinforcements has significant impact on cement-based composites failure mechanism. Nanomaterials morphology bridges cement crystals as homogeneous and ductile matrix. In this experiment, cement matrix with water to cement ratio of 0.5 reinforced by 0.2-0.6 wt% of functionalized (COOH group) multi-walled and single-walled carbon nanotubes were used. After sonication of carbon nanotubes in water solution for an hour, the cementitious nanocomposites were casted in cylindrical molds (25 mm diameter and 50 mm height). Failure mechanism of cementitious nanocomposite showed considerable ductility throughout splitting tensile test compared to cement mortar. Additionally, the failure pattern after developing the initial crack provided additional time before ultimate failure occurred in cement-based nanocomposites. The evolution of crack propagation was assessed until ultimate specimen failure during splitting-tensile test on cementitious nanocomposite surface. The deformation of cross section from circle to oval shape augmented tensile strength by 50% in cementitious nanocomposite compared to conventional cement mortar.
机译:突然的混凝土破坏是由于受拉混凝土的非弹性变形所致。然而,合成纳米材料增强材料对水泥基复合材料的破坏机理具有重大影响。纳米材料的形态在水泥晶体之间架起了均质且易延展的基质。在该实验中,使用通过0.2-0.6重量%的官能化(COOH基团)的多壁和单壁碳纳米管增强的水灰比为0.5的水泥基质。将碳纳米管在水溶液中超声处理一个小时后,将胶结纳米复合材料浇铸在圆柱形模具中(直径25毫米,高度50毫米)。与水泥砂浆相比,水泥纳米复合材料的破坏机理在整个拉伸试验中显示出相当大的延展性。此外,在水泥基纳米复合材料中,出现初始裂纹后的破坏模式为最终破坏发生之前提供了额外的时间。评估裂纹扩展的发展,直到在胶结纳米复合材料表面劈裂拉伸试验期间最终试样破坏为止。与常规水泥砂浆相比,水泥纳米复合材料的从圆形到椭圆形的横截面变形将抗张强度提高了50%。

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