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相关概念视频

Unsymmetric Bending01:18

Unsymmetric Bending

276
Unsymmetrical bending occurs when the bending moment applied to a structural member does not align with its principal axis. This misalignment leads to complex stress distributions and deflection patterns that differ from those in symmetrical bending, and are essential for designing structures to withstand different loading conditions. In unsymmetrical bending, the neutral axis—where stress is zero—does not necessarily align with the geometric axes of the cross-section. The...
276
Plastic Deformations of Members with a Single Plane of Symmetry01:21

Plastic Deformations of Members with a Single Plane of Symmetry

84
When a structural member undergoes plastic deformation due to bending, it is crucial to understand the position of the neutral axis and the stress distribution. This member, characterized by a single plane of symmetry, exhibits a uniform stress distribution, with negative stress above the neutral axis and positive stress below. Notably, the neutral axis does not align with the centroid of the cross-section. This misalignment is typical in cases where the cross-section is not rectangular or...
84
Bending of Members Made of Several Materials01:08

Bending of Members Made of Several Materials

131
In analyzing a structural member composed of two different materials with identical cross-sectional areas, it is crucial to understand how their distinct elastic properties affect the member's response under load. The analysis involves assessing stress and strain distributions using the transformed section concept, which accounts for variations in material properties.
Hooke's Law determines stress in each material, stating that stress is proportional to strain but varies due to each...
131
Bending of Material: Problem Solving01:09

Bending of Material: Problem Solving

166
In this lesson, determine the ratio of the maximum bending moments applied to two metal pipes, given that both pipes can withstand a maximum stress of 100 MPa. Both pipes have an outer radius of 1.8 cm. Pipe A has an inner radius of 1.5 cm, and Pipe B has an inner radius of 1 cm. The ratio of the maximum bending moment applied to two metallic pipes, each with a different inner and outer radius, is determined by considering their dimensions. The inner radius of the first pipe is 1.5 cm, and for...
166
Singularity Functions for Bending Moment01:18

Singularity Functions for Bending Moment

183
Singularity functions simplify the representation of bending moments in beams subjected to discontinuous loading, allowing the use of a single mathematical expression. For a supported beam AB, with uniform loading from its midpoint M to the right side end B, the approach involves conceptual 'cuts' at specific points to determine the bending moment in each segment. By cutting the beam at a point between A and M, the bending moment for the segment before reaching midpoint M is represented...
183
Unsymmetric Bending - Angle of Neutral Axis01:15

Unsymmetric Bending - Angle of Neutral Axis

242
Unsymmetrical bending occurs when a structural member is subjected to bending moments in a plane that does not align with the member's principal axes. This scenario typically arises in beams and other structural components when loads are applied at non-ideal angles, introducing complexities in stress analysis.
When a bending moment is applied at an angle θ concerning the vertical axis of a symmetrical member, it can be resolved into components along the member's principal...
242

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Origami Inspired Self-assembly of Patterned and Reconfigurable Particles
12:33

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可重新编程的曲线直线原木:多形态性和体积调整性.

Morad Mirzajanzadeh1, Damiano Pasini1

  • 1Department of Mechanical Engineering, McGill University, Montreal, Canada.

Science advances
|April 23, 2025
PubMed
概括

这项研究引入了适应性结构材料的可重编程原始体,具有可视化的纹. 它可以在固定的尺寸中实现可调整的刚性,克服现有的原始设计的局限性.

科学领域:

  • 材料科学 材料科学 材料科学
  • 机械工程 机械工程
  • 超材料是指一种超材料.

背景情况:

  • 现有的原木结构提供有限的变形性和刚性调整性.
  • 目前的3D原木格子主要通过尺寸变化来调整刚度,从而导致突然的属性转移.

研究的目的:

  • 开发一种可重编程的原木系统,具有增强的可变形性和可连续调节的刚性.
  • 为了克服现有的原始画的局限性,用于需要适应性结构材料的应用.

主要方法:

  • 在原创设计中整合曲线和直线可视化的纹.
  • 应用曲线原木理论,微分几何学和实验验证.
  • 为折叠图案制定几何力学和量化机械性能.

主要成果:

  • 实现可逆重塑性,使其具有多重承载形状和刚性.
  • 在固定的尺寸上生成3D曲线板格子,具有可连续调节的弹性模块 (两个数量级).
  • 展示了一种用于精确控制元材料硬度的新方法.

结论:

  • 开发的可重编程原始体作为多功能元材料的多功能平台.

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  • 为航空航天,生物力学和软机器人技术提供适应性和弹性材料解决方案.
  • 推进了具有可调节性质的先进结构材料的设计原则.