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相关概念视频

Deformations in a Symmetric Member in Bending01:18

Deformations in a Symmetric Member in Bending

161
When analyzing the deformation of a symmetric prismatic member subjected to bending by equal and opposite couples, it becomes clear that as the member bends, the originally straight lines on its wider faces curve into circular arcs, with a constant radius centered at a point known as Point C. This phenomenon helps to understand the stress and strain distribution within the member more clearly.
When the member is segmented into tiny cubic elements, it is observed that the primary stress...
161
Three-Dimensional Analysis of Strain01:29

Three-Dimensional Analysis of Strain

201
Three-dimensional strain analysis is crucial for understanding how materials deform under stress, particularly in elastic, homogeneous materials. This method employs principal stress axes to simplify complex stress states into more understandable forms. Subjected to stress, a small cubic element within a material either expands or contracts along these axes, transforming into a rectangular parallelepiped. This transformation effectively illustrates the material's deformation. The principal...
201
Plastic Deformations of Members with a Single Plane of Symmetry01:21

Plastic Deformations of Members with a Single Plane of Symmetry

86
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...
86
Plastic Deformation in Circular Shafts01:20

Plastic Deformation in Circular Shafts

178
When materials are subjected to forces that surpass their yield strength, they undergo a process known as plastic deformation. This results in a permanent alteration or strain in their structure. This concept can be specifically applied to circular shafts, where the deformation leads to a change in its shape. The precise evaluation of this plastic deformation requires understanding the stress distribution within the circular shaft, which is achieved by calculating the maximum shearing stress in...
178
Deformation of Member under Multiple Loadings01:11

Deformation of Member under Multiple Loadings

151
When a rod is made of different materials or has various cross-sections, it must be divided into parts that meet the necessary conditions for determining the deformation. These parts are each characterized by their internal force, cross-sectional area, length, and modulus of elasticity. These parameters are then used to compute the deformation of the entire rod.
In the case of a member with a variable cross-section, the strain is not constant but depends on the position. The deformation of an...
151
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

241
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.
241

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相关实验视频

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Biaxial Mechanical Characterizations of Atrioventricular Heart Valves
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细胞变形标志沿着角-基底轴:一个3D连续力学外模型.

Jairo M Rojas, Mayisha Z Nakib, Vivian W Tang

    ArXiv
    |February 20, 2025
    PubMed
    概括

    细胞组织的机械模型根据细胞周围线预测组织的刚性. 然而,实验表明,刚性组织具有长周长的细胞,这表明3D机制对组织完整性至关重要.

    科学领域:

    • 细胞力学 细胞力学
    • 生物物理学的生物物理.
    • 组织工程是组织工程.

    背景情况:

    • 二维 (2D) 模型将组织力学与细胞周围联系起来.
    • 现有的模型无法解释MDCK上皮细胞的实验数据.

    研究的目的:

    • 调查2D模型与实验数据之间的差异.
    • 开发一个3D机械模型,用于交汇的上皮组织.
    • 了解基机械在组织刚性的作用.

    主要方法:

    • 开发了细胞作为弹性圆柱形外的连续力学模型.
    • 嵌入了细胞封闭和actomyosin收缩性的边界条件.
    • 使用解卷显微镜分析细胞形状在顶-基底方向.

    主要成果:

    • 3D模型预测了细胞横截面沿着顶-基底轴.
    • 实验数据证实了细胞形状在基方向上的系统变化.
    • 通过3D效应解释的2D模型和刚性组织实验之间的差异.

    结论:

    • 三维力学,包括顶基底变形和基底膜应力纤维,对于组织机械状态至关重要.

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  • 皮质组织比以前认为的更能抵抗刚性丧失.
  • 开发的模型提供了详细的细胞下变形见解.