Institute of Physics, van der Waals-Zeeman Institute, University of Amsterdam, Science Park 904, 1098 XH Amsterdam, The Netherlands.
Soft Matter. 2017 Jun 7;13(22):4029-4034. doi: 10.1039/c6sm02817a.
While simple at first glance, the dense packing of sheets is a complex phenomenon that depends on material parameters and the packing protocol. We study the effect of plasticity on the crumpling of sheets of different materials by performing isotropic compaction experiments on sheets of different sizes and elasto-plastic properties. First, we quantify the material properties using a dimensionless foldability index. Then, the compaction force required to crumple a sheet into a ball as well as the average number of layers inside the ball are measured. For each material, both quantities exhibit a power-law dependence on the diameter of the crumpled ball. We experimentally establish the power-law exponents and find that both depend nonlinearly on the foldability index. However the exponents that characterize the mechanical response and morphology of the crumpled materials are related linearly. A simple scaling argument explains this in terms of the buckling of the sheets, and recovers the relation between the crumpling force and the morphology of the crumpled structure. Our results suggest a new approach to tailor the mechanical response of the crumpled objects by carefully selecting their material properties.
虽然乍一看很简单,但薄片的密集堆积是一种复杂的现象,取决于材料参数和堆积协议。我们通过对不同尺寸和弹塑性特性的薄片进行各向同性压缩实验,研究了塑性对不同材料薄片起皱的影响。首先,我们使用无量纲可折叠性指数来量化材料特性。然后,测量将薄片压成球所需的压缩力以及球内的平均层数。对于每种材料,这两个量都与皱缩球的直径呈幂律关系。我们通过实验确定了幂律指数,并发现它们都与可折叠性指数呈非线性关系。然而,描述皱缩材料力学响应和形态的指数呈线性关系。一个简单的缩放论点根据薄片的屈曲来解释这一点,并恢复了皱缩力与皱缩结构形态之间的关系。我们的结果表明,通过仔细选择材料特性,可以为皱缩物体的力学响应提供一种新的定制方法。