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相关概念视频

Three-Dimensional Analysis of Strain01:29

Three-Dimensional Analysis of Strain

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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...
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It is essential to understand how structural members behave under plastic deformation when the bending stress exceeds the material's yield strength. This state of deformation permanently alters the shape of the member, in contrast to the linear elastic behavior observed before yielding. The strain at any point in the member is expressed in terms of maximum strain. Notably, the neutral axis, which coincides with the centroid during elastic bending, shifts away from the centroid under plastic...
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Stress-Strain Diagram - Ductile Materials01:24

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The stress-strain relationship in ductile materials such as structural steel or aluminium is intricate and progresses through several stages. When a specimen is loaded, it initially exhibits a linear length increase, depicted by a steep straight line on the stress-strain diagram. It indicates the material is elastically deforming and will return to its original shape once unloaded. However, when a critical stress value is reached, plastic deformation begins. This stage sees substantial...
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Strain quantifies the deformation of a material under force, typically measured as normal strain, which represents the change in length when compared with the original length. Electrical strain gauges are used for enhanced accuracy. These devices consist of a conductive wire mounted on a paper backing that adheres to the material's surface. These gauges operate on the piezoresistive effect, where the wire's electrical resistance changes in response to mechanical deformation. The strain...
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Normal strain under axial loading is an important concept in the field of mechanics of materials. Axial loading implies the application of a force along the axis of a material, like a column or bar. This force can either compress or stretch the material. In the context of axial loading, normal strain is the deformation experienced by the material in the direction of the loading force. It's calculated as the change in length divided by the original length of the material. This unitless ratio...
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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...
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操作中子衍射揭示了3D打印中受控应变进化的机制.

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概括

研究人员使用操作中子衍射来研究增材制造 (AM) 中的残余应力. 他们发现相位边界运动控制了应变,为设计AM元件提供了一种新的方式,以提高性能和耐用性.

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科学领域:

  • 材料科学 材料科学 材料科学
  • 制造业 工程 制造工程
  • 物理 物理学 物理

背景情况:

  • 剩余应力对制造品产生影响,特别是在增材制造 (AM) 中,由于复杂的热条件.
  • 传统的方法无法测量AM过程中的实时压力演变.
  • 了解压力发展对于提高组件可靠性和性能至关重要.

研究的目的:

  • 用操作中子衍射来描述AM期间的短暂相变化和晶格应变的演变.
  • 研究控制增材制造组件中的残余应力和应变分布的机制.
  • 建立一个新的路径来设计残余应激状态和AM部分的属性分布.

主要方法:

  • 在操作中使用中子衍射来实时监测AM期间的格子应变演变.
  • 红外热像和模拟数据与衍射测量相结合.
  • 作为AM的材料,使用了低温转换钢.

主要成果:

  • 运行中子衍射成功地在AM期间表征了短暂相变和格子应变.
  • 面中心立方体 (FCC) 和身体中心立方体 (BCC) 阶段边界的运动被确定为控制弹性和塑性应变分布的关键因素.
  • 确定了相变动态和残余应力发展之间的相关性.

结论:

  • 该研究为了解和控制增材制造中的残余应力提供了一种新的方法.
  • 对相位边界运动的洞察力为设计理想的残余应力状态提供了一条途径.
  • 这项研究使得AM组件的设计具有增强的疲劳寿命和更好的抗应力腐蚀裂的性能.