Materials Science, California Institute of Technology (Caltech) , Pasadena, California, United States.
ACS Nano. 2013 Oct 22;7(10):8593-604. doi: 10.1021/nn402710j. Epub 2013 Sep 16.
Micromechanical experiments, image analysis, and theoretical modeling revealed that local failure events and compressive stresses of vertically aligned carbon nanotubes (VACNTs) were uniquely linked to relative density gradients. Edge detection analysis of systematically obtained scanning electron micrographs was used to quantify a microstructural figure-of-merit related to relative local density along VACNT heights. Sequential bottom-to-top buckling and hardening in stress-strain response were observed in samples with smaller relative density at the bottom. When density gradient was insubstantial or reversed, bottom regions always buckled last, and a flat stress plateau was obtained. These findings were consistent with predictions of a 2D material model based on a viscoplastic solid with plastic non-normality and a hardening-softening-hardening plastic flow relation. The hardening slope in compression generated by the model was directly related to the stiffness gradient along the sample height, and hence to the local relative density. These results demonstrate that a microstructural figure-of-merit, the effective relative density, can be used to quantify and predict the mechanical response.
微机械实验、图像分析和理论建模表明,垂直排列碳纳米管(VACNTs)的局部失效事件和压缩应力与相对密度梯度有着独特的联系。通过对系统获得的扫描电子显微镜图像进行边缘检测分析,我们可以定量评估与 VACNT 高度上相对局部密度相关的微观结构卓越指标。在底部相对密度较小的样品中,观察到了从底部到顶部的顺序屈曲和应力-应变响应硬化。当密度梯度不明显或相反时,底部区域总是最后屈曲,并获得平坦的应力平台。这些发现与基于具有塑性非归一性和硬化软化硬化塑性流动关系的粘性塑性固体的二维材料模型的预测一致。模型产生的压缩硬化斜率与沿样品高度的刚度梯度直接相关,因此与局部相对密度相关。这些结果表明,可以使用微观结构卓越指标,即有效相对密度,来量化和预测力学响应。