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Plastic deformation of tubular crystals by dislocation glide

机译:脱位滑行的管状晶体的塑性变形

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Tubular crystals, two-dimensional lattices wrapped into cylindrical topologies, arise in many contexts, including botany and biofilaments, and in physical systems such as carbon nanotubes. The geometrical principles of botanical phyllotaxis, describing the spiral packings on cylinders commonly found in nature, have found application in all these systems. Several recent studies have examined defects in tubular crystals associated with crystalline packings that must accommodate a fixed tube radius. Here we study the mechanics of tubular crystals with variable tube radius, with dislocations interposed between regions of different phyllotactic packings. Unbinding and separation of dislocation pairs with equal and opposite Burgers vectors allow the growth of one phyllotactic domain at the expense of another. In particular, glide separation of dislocations offers a low-energy mode for plastic deformations of solid tubes in response to external stresses, reconfiguring the lattice step by step. Through theory and simulation, we examine how the tube’s radius and helicity affects, and is in turn altered by, the mechanics of dislocation glide. We also discuss how a sufficiently strong bending rigidity can alter or arrest the deformations of tubes with small radii.
机译:管状晶体,缠绕在圆柱形拓扑中的二维格子,在许多环境中出现,包括植物学和生物膜,以及碳纳米管等物理系统。植物植物的几何原理,描述了本质上常见于本质上的汽缸上的螺旋填料,在所有这些系统中都已发现应用。最近的几项研究已经检查了与结晶填料相关的管状晶体中的缺陷,该填料必须容纳固定管半径。在这里,我们研究了具有可变管半径的管状晶体的力学,插入位于不同神学填料区域之间的脱位。具有相等和相反的汉堡载体的错位和分离位错对,允许以牺牲另一个神话结构域的生长。特别地,脱位的滑动分离为固体管的塑性变形提供低能量模式,响应于外部应力,通过步骤重新配置晶格。通过理论和仿真,我们研究了管道的半径和螺旋状的影响,并且依次脱位滑行的机制而改变。我们还讨论如何具有足够强烈的弯曲刚度,可以改变或抑制具有小半径的管的变形。

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