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相关概念视频

Elastic Strain Energy for Shearing Stresses01:20

Elastic Strain Energy for Shearing Stresses

192
As discussed in previous lessons, strain energy in a material is the energy stored when it is elastically deformed, a concept crucial in materials science and mechanical engineering. This energy results from the internal work done against the cohesive forces within the material. When a material undergoes shearing stress and corresponding shearing strain, the strain energy density, which is the energy stored per unit volume, is calculated. Within the elastic limit, where the stress is...
192
Relation between Poisson's ratio, Modulus of Elasticity and Modulus of Rigidity01:15

Relation between Poisson's ratio, Modulus of Elasticity and Modulus of Rigidity

270
Deformation occurs in axial and transverse directions when an axial load is applied to a slender bar. This deformation impacts the cubic element within the bar, transforming it into either a rectangular parallelepiped or a rhombus, contingent on its orientation. This transformation process induces shearing strain. Axial loading elicits both shearing and normal strains. Applying an axial load instigates equal normal and shearing stresses on elements oriented at a 45° angle to the load axis.
270
Plastic Behavior01:21

Plastic Behavior

198
A material's elastic behavior is characterized by the disappearance of stress once the load is removed, allowing the material to return to its original state. However, when stress surpasses the yield point, yielding commences, marking the onset of plastic deformation or permanent set. This change from elastic to plastic behavior is influenced by the peak stress value and the duration before the load is removed. An intriguing observation occurs when a specimen is loaded, unloaded, and...
198
Elastic Strain Energy for Normal Stresses01:22

Elastic Strain Energy for Normal Stresses

169
Strain energy quantifies the energy stored within a material due to deformation under loading conditions, a fundamental concept in materials science and engineering. The strain energy can be modeled when a material is subjected to axial loading with uniformly distributed stress. In this scenario, the stress experienced by the material is the internal force divided by the cross-sectional area, and the strain induced is directly proportional to this stress through the modulus of elasticity.
If...
169
Members Made of Elastoplastic Material01:19

Members Made of Elastoplastic Material

99
The behavior of elastoplastic materials under bending stresses, particularly in structural members with rectangular cross-sections, is crucial for predicting material responses and understanding failure modes. Initially, when a bending moment is applied, the stress distribution across the section follows Hooke's Law and is linear and elastic. This distribution means the stress increases from the neutral axis to the maximum at the outer fibers, up to the elastic limit.
As the bending moment...
99
Circular Shafts - Elastoplastic Materials01:24

Circular Shafts - Elastoplastic Materials

103
The study of solid circular shafts under stress shows that within the elastic limit, stress increases directly to the distance from the shaft's center. This relationship holds until the shaft reaches a critical point of stress, beyond which it begins to yield, marking the transition from elastic to plastic deformation. At this crucial juncture, the maximum torque the shaft can endure without permanent deformation is determined, signifying the limit of its elastic behavior.
As torque on the...
103

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Magnetically Induced Rotating Rayleigh-Taylor Instability
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在软粘弹性固体中雷利-泰勒不稳定性

Malcolm Slutzky1, Jonghyun Hwang2, Howard A Stone2

  • 1Department of Physics, Princeton University, Princeton, New Jersey 08544, United States.

Langmuir : the ACS journal of surfaces and colloids
|December 19, 2023
PubMed
概括

我们研究了粘弹性固体中的雷利-泰勒不稳定性,观察了独特的表面图案. 这些发现为设计软机器和可调节纹理提供了洞察力.

科学领域:

  • 材料科学 材料科学 材料科学
  • 物理 物理学 物理
  • 类风病学 类风病学 类风病学

背景情况:

  • 雷利-泰勒不稳定性是发生在流体接口的基本现象.
  • 之前的研究主要集中在弹性或流体系统上,使粘性弹性固体的探索较少.
  • 了解软材料的不稳定性对于高级应用至关重要.

研究的目的:

  • 实验性地描述粘弹性固体中由重力驱动的雷利-泰勒不稳定性.
  • 将观察到的不稳定性模式与弹性系统中的不稳定性模式进行比较.
  • 确定影响表面变形的因素.

主要方法:

  • 在粘弹性凝中观察引力驱动的不稳定性的实验设置.
  • 线性稳定性分析以建模和支持实验观测.
  • 凝几何学的系统变化,粘弹性特性和表面张力.

主要成果:

  • 在粘弹性固体中观察到明显的周期性表面模式,与弹性不稳定性不同.
  • 确定了控制稳态变形模式的关键参数:凝几何,复杂剪模和表面张力.
  • 通过线性稳定性分析验证了实验结果.

结论:

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  • 与弹性材料相比,粘弹性固体表现出独特的雷利-泰勒不稳定性模式.
  • 该研究提供了关于图案形成的定量数据,这对于材料设计至关重要.
  • 这些发现适用于可调整表面纹理,软机器和3D结构的开发.