The Institute of Scientific and Industrial Research, Osaka University, Mihogaoka 8-1, Ibaraki-shi, Osaka, 567-0047, Japan.
Organization for Promotion of Tenure Track, University of Miyazaki, Nishi 1-1 Gakuen Kibanadai, Miyazaki, 889-2192, Japan.
Sci Rep. 2021 Jan 12;11(1):790. doi: 10.1038/s41598-020-80890-1.
The elastic responsiveness of single cellulose nanofibres is important for advanced analysis of biological tissues and their use in sophisticated functional materials. However, the mechanical responsiveness derived from the twisted structure of cellulose nanofibres (CNFs) has remained unexplored. In this study, finite element simulations were applied to characterize the deformation response derived from the torsional structure by performing tensile and bending tests of an unconventionally very long and twisted rod model, having the known dimensional parameters and properties of CNFs. The antagonistic action of two types of structural elements (a contour twist and a curvilinear coordinate) was found to result in an irregular deformation response but with only small fluctuations. The contour twist generated rotational displacements under tensile load, but the curvilinear coordinate suppressed rotational displacement. Under bending stress, the contour twist minimized irregular bending deformation because of the orthotropic properties and made the bending stress transferability a highly linear response.
单根纤维素纳米纤维的弹性响应对于生物组织的高级分析及其在复杂功能材料中的应用非常重要。然而,纤维素纳米纤维(CNF)的扭曲结构所产生的机械响应仍未得到探索。在这项研究中,通过对具有已知 CNF 尺寸参数和性能的非常规超长扭曲杆模型进行拉伸和弯曲测试,应用有限元模拟来描述由扭转结构产生的变形响应。两种结构元素(轮廓扭曲和曲线坐标)的拮抗作用导致不规则的变形响应,但只有很小的波动。在拉伸载荷下,轮廓扭曲会产生旋转位移,但曲线坐标会抑制旋转位移。在弯曲应力下,由于各向异性特性,轮廓扭曲最小化了不规则的弯曲变形,使弯曲应力传递成为高度线性的响应。