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Anisotropic behaviors of helically corrugated cylindrical shells: Homogenized in-plane stiffness

机译:螺旋瓦楞圆柱壳的各向异性行为:均质在平面刚度

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摘要

Thin-walled corrugated structures have been widely used in engineering applications for centuries, because corrugation enables engineers to tailor directional dependent properties despite the structures being made of isotropic materials. However, the vast majority of research has paid attention to corrugated plates and relatively scarce studies are on corrugated shells. This paper, therefore, aims to investigate elastic behaviors of thin cylindrical shells that possess sinusoidal corrugating patterns in the helical direction. Elastic responses of undulated shells under three types of deformation, namely, axial elongation, axial torsion, and radial expansion are thoroughly investigated by using the finite-element method (FEM) via ABAQUS™. The effective stiffness of the corrugated cylinders is determined by a homogenization technique in a representative unit cell element. A variety of FEM models are created according to four groups of dimensionless parameters, i.e. radius-to-thickness ratio, radius-to-corrugating depth ratio, helical angle and the number of waveform (thread) in a cylinder cross section. The results show that the degree of anisotropy induced by the corrugated shells is different from that of a fiber-reinforced composite material, significantly sensitive to their configurations, and can be extraordinarily higher than the perfect round shell made of the same parent material. Unorthodox coupling quantities of torsional-axial, torsional-radial, and axial-radial coupling deformations are encountered at some specific geometries. Anisotropy design space in the form of spherical maps is given as a guideline to effectively design or select a proper helically corrugated cylindrical shell with the desired stiffness properties.
机译:薄壁波纹结构已被广泛用于工程应用中,因为蓬勃发展使工程师能够根据各向同性材料制成,尽管是由各向同性材料制成的结构,使工程师能够定制定向依赖性。然而,绝大多数研究都注重瓦楞板,瓦楞纸壳上的相对稀缺的研究。因此,本文旨在研究具有在螺旋方向上具有正弦波曲面的薄圆柱壳的弹性行为。通过ABAQUS TM使用有限元方法(FEM),通过ABAQUS TM彻底研究了三种变形,即轴向伸长,轴向扭转和径向膨胀下波状壳的弹性响应。波纹状圆柱体的有效刚度由代表性单元电池元件中的均化技术确定。根据四组无量纲参数,即气缸横截面中的半径到厚度比,半径到厚度比,半径与波纹深度比,螺旋角度和波形数(螺纹)的数量,形成了各种有限元模型。结果表明,波纹壳引起的各向异性程度与纤维增强复合材料的各向异性不同,对其构造显着敏感,并且可以高于由相同母体材料制成的完美圆壳。在某些特定几何形状中遇到扭转轴向,扭转径向和轴向径向耦合变形的非正常耦合量。球形地图形式的各向异性设计空间作为有效地设计或选择具有所需刚度特性的适当螺旋波纹圆柱壳的指导。

著录项

  • 来源
    《Thin-Walled Structures》 |2021年第3期|107378.1-107378.14|共14页
  • 作者

    Khurukijwanich C.; Aimmanee S.;

  • 作者单位

    Advanced Materials and Structures Laboratory (AMASS) Center for Lightweight Materials Design and Manufacturing Department of Mechanical Engineering Faculty of Engineering King Mongkut's University of Technology Thonburi 126 Prachauthid Rd. Bangmod Thung Khru Bangkok 10140 Thailand;

    Advanced Materials and Structures Laboratory (AMASS) Center for Lightweight Materials Design and Manufacturing Department of Mechanical Engineering Faculty of Engineering King Mongkut's University of Technology Thonburi 126 Prachauthid Rd. Bangmod Thung Khru Bangkok 10140 Thailand;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Anisotropic design space; Helically corrugated shells; Homogenized in-plane stiffness;

    机译:各向异性设计空间;螺旋瓦楞壳;均质的面内刚度;

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