Heussinger C, Frey E
Arnold Sommerfeld Center for Theoretical Physics and Center for NanoScience, Department of Physics, Ludwig-Maximilians-Universität München, Theresienstrasse 37, D-80333 München, Germany.
Eur Phys J E Soft Matter. 2007 Sep;24(1):47-53. doi: 10.1140/epje/i2007-10209-1. Epub 2007 Sep 3.
We study the elasticity of random stiff fiber networks. The elastic response of the fibers is characterized by a central force stretching stiffness as well as a bending stiffness that acts transverse to the fiber contour. Previous studies have shown that this model displays an anomalous elastic regime where the stretching mode is fully frozen out and the elastic energy is completely dominated by the bending mode. We demonstrate by simulations and scaling arguments that, in contrast to the bending dominated elastic energy, the equally important elastic forces are to a large extent stretching dominated. By characterizing these forces on microscopic, mesoscopic and macroscopic scales we find two mechanisms of how forces are transmitted in the network. While forces smaller than a threshold Fc are effectively balanced by a homogeneous background medium, forces larger than Fc are found to be heterogeneously distributed throughout the sample, giving rise to highly localized force chains known from granular media.
我们研究随机刚性纤维网络的弹性。纤维的弹性响应由中心力拉伸刚度以及垂直于纤维轮廓起作用的弯曲刚度来表征。先前的研究表明,该模型呈现出一种反常弹性状态,其中拉伸模式完全冻结,弹性能量完全由弯曲模式主导。我们通过模拟和标度论证表明,与弯曲主导的弹性能量相反,同样重要的弹性力在很大程度上是拉伸主导的。通过在微观、介观和宏观尺度上表征这些力,我们发现了网络中力传递的两种机制。当小于阈值Fc的力被均匀背景介质有效平衡时,大于Fc的力在整个样品中呈非均匀分布,从而产生了颗粒介质中已知的高度局部化的力链。