论文标题
压缩下的丝带中的热屈曲和对称性破裂
Thermal buckling and symmetry breaking in thin ribbons under compression
论文作者
论文摘要
了解从宏到纳米级的薄纸可以控制机械性能,例如可变形性。平面压缩导致的平面外屈曲可能是设计新材料的关键功能。虽然薄板理论可以在非常低的温度下预测薄帧和纳米纤维的临界屈曲阈值,这是一个统一的框架,以描述在更高温度下屈曲的热波动对屈曲的效果带来微妙的困难。我们开发和测试一种理论方法,其中包括平面压缩和平面外部扰动场,以描述屈曲过渡上方和下方的热丝带的机制。我们表明,一旦将弹性常数重新规定以考虑到色带的宽度(以热长度尺度的单位),我们可以将物理学映射到屈曲的平均野外处理上,只要长度与色带持久性长度相比短。我们的理论预测通过轴向压缩下的薄热丝带的广泛分子动力学模拟来检查。
Understanding thin sheets, ranging from the macro to the nanoscale, can allow control of mechanical properties such as deformability. Out-of-plane buckling due to in-plane compression can be a key feature in designing new materials. While thin-plate theory can predict critical buckling thresholds for thin frames and nanoribbons at very low temperatures, a unifying framework to describe the effects of thermal fluctuations on buckling at more elevated temperatures presents subtle difficulties. We develop and test a theoretical approach that includes both an in-plane compression and an out-of-plane perturbing field to describe the mechanics of thermalised ribbons above and below the buckling transition. We show that, once the elastic constants are renormalised to take into account the ribbon's width (in units of the thermal length scale), we can map the physics onto a mean-field treatment of buckling, provided the length is short compared to a ribbon persistence length. Our theoretical predictions are checked by extensive molecular dynamics simulations of thin thermalised ribbons under axial compression.