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Change in failure mode of carbon nanofibers in nanocomposites as a function of loading rate

机译:纳米复合材料中碳纳米纤维的破坏模式随负载率的变化

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Vapor-grown carbon nanofiber (CNF)/epoxy composites are characterized under compression at 5 9 10(-3)-2800 s(-1) strain rates. A difference in the fiber failure mechanism is identified based on the strain rate. CNFs show signs of deformation along their entire length under quasi-static compression. In contrast, the high-strain rate failure results in rupture of outer turbostratic carbon layers, leading to stress transfer to the inner graphite layers. The graphitic layers elongate and rupture, forming a conical tip at the fracture cross section of the CNFs. The strength of nanocomposites at high strain rate is measured to be up to 180 % higher depending on the composite composition and strain rate. CNFs substantially increase the localized plastic deformation of the matrix under quasi-static compression and result in nanoscale deformation features on the failure surface. The observed higher strength and modulus of nanocomposites at high strain rates are attributed to the difference in the matrix and fiber failure mechanisms at different strain rates.
机译:气相生长的碳纳米纤维(CNF)/环氧复合材料的特征在于在5 9 10(-3)-2800 s(-1)应变速率下受压。根据应变率识别出纤维破坏机理的差异。 CNF在准静态压缩下沿其整个长度显示出变形的迹象。相反,高应变率破坏导致外层涡轮碳层破裂,导致应力转移到内层石墨层。石墨层伸长并破裂,在CNF的断裂截面处形成圆锥形尖端。纳米复合材料在高应变速率下的强度最高可提高180%,具体取决于复合材料的组成和应变速率。 CNF在准静态压缩下显着增加了基体的局部塑性变形,并在破坏表面上产生了纳米级的变形特征。在高应变速率下观察到的纳米复合材料更高的强度和模量归因于不同应变速率下基质和纤维破坏机理的差异。

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