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抑制负泊松比超壳中的扭转屈曲。

Suppressing torsional buckling in auxetic meta-shells.

作者信息

Ghorbani Aref, Mirzaali Mohammad J, Roebroek Tobias, Coulais Corentin, Bonn Daniel, van der Linden Erik, Habibi Mehdi

机构信息

Laboratory of Physics and Physical Chemistry of Foods, Wageningen University, 6708 WG, Wageningen, The Netherlands.

Department of Biomechanical Engineering, Delft University of Technology, 2628 CD, Delft, The Netherlands.

出版信息

Nat Commun. 2024 Aug 14;15(1):6999. doi: 10.1038/s41467-024-51104-3.

Abstract

Take a thin cylindrical shell and twist it; it will buckle immediately. Such unavoidable torsional buckling can lead to systemic failure, for example by disrupting the blood flow through arteries. In this study, we prevent this torsional buckling instability using a combination of auxeticity and orthotropy in cylindrical metamaterial shells with a holey pattern. When the principal axes of the orthotropic meta-shell are relatively aligned with that of the compressive component of the applied stress during twisting, the meta-shell uniformly shrinks in the radial direction as a result of a local buckling instability. This shrinkage coincides with a softening-stiffening transition that leads to ordered stacking of unit cells along the compressive component of the applied stress. These transitions due to local instabilities circumvent the usual torsional instability even under a large twist angle. This study highlights the potential of tailoring anisotropy and programming instabilities in metamaterials, with potential applications in designing mechanical elements for soft robotics, biomechanics or fluidics. As an example of such applications, we demonstrate soft torsional compressor for generating pulsatile flows through a torsion release mechanism.

摘要

取一个薄圆柱壳并对其进行扭转;它会立即发生屈曲。这种不可避免的扭转屈曲可能导致系统故障,例如通过扰乱动脉中的血流。在本研究中,我们通过在具有多孔图案的圆柱超材料壳中结合负泊松比和正交各向异性来防止这种扭转屈曲不稳定性。当正交各向异性超壳的主轴在扭转过程中与施加应力的压缩分量的主轴相对对齐时,由于局部屈曲不稳定性,超壳在径向方向上均匀收缩。这种收缩与软化 - 硬化转变相吻合,该转变导致沿施加应力的压缩分量方向的单元胞有序堆叠。即使在大扭转角下,这些由局部不稳定性引起的转变也能规避通常的扭转不稳定性。这项研究突出了在超材料中定制各向异性和编程不稳定性的潜力,在设计用于软机器人技术、生物力学或流体力学的机械元件方面具有潜在应用。作为此类应用的一个例子,我们展示了一种软扭转压缩机,它通过扭转释放机制产生脉动流。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/af39/11324657/16323d807ac5/41467_2024_51104_Fig1_HTML.jpg

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