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相关概念视频

Plastic Deformations01:19

Plastic Deformations

537
Plastic deformation represents a fundamental concept in materials science, which explains the irreversible change in the shape of a material when it experiences stress beyond its elastic capability. This phenomenon is important in structural engineering, especially in designing and analyzing cantilever beams—structures that are securely fixed at one end and bear loads at the opposite end. When these beams are subjected to loads within their elastic range, they will return to their...
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Plastic Deformations01:14

Plastic Deformations

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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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Polymer Classification: Crystallinity01:21

Polymer Classification: Crystallinity

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Unlike ionic or small covalent molecules, polymers do not form crystalline solids due to the diffusion limitations of their long-chain structures. However, polymers contain microscopic crystalline domains separated by amorphous domains.
Crystalline domains are the regions where polymer chains are aligned in an orderly manner and held together in proximity by intermolecular forces. For example, chains in the crystalline domains of polyethylene and nylon are bound together by van der Waals...
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Plastic Behavior01:21

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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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Plasticity00:58

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Plasticity is the property where an object loses its elasticity and undergoes irreversible deformation, even after the deformation forces are eliminated. If a material deforms irreversibly without increasing stress or load, then this is called ideal plasticity. For example, when a force is applied to an aluminum rod, it changes its shape, but it does not return to its original shape once the force is removed. Plastic deformation or ductility is thus a permanent deformation or change in the...
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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...
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在纳米钻石中,无形化诱导的塑料变形.

Jiaqi Zhang1,2, Chunmeng Liu1, Xing Li1

  • 1Henan Key Laboratory of Diamond Materials and Devices, Key Laboratory of Materials Physics, Ministry of Education, and School of Physics, Zhengzhou University, Zhengzhou, China.

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纳米钻石通过无形化表现出超大可塑性,使得90%以上的应变没有断裂. 这种纳米尺度现象取决于尺寸,只发生在小于13纳米的钻石中.

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科学领域:

  • 材料科学 材料科学 材料科学
  • 纳米技术 纳米技术
  • 机械工程 机械工程

背景情况:

  • 钻石的sp3共价键提供了特殊的硬度和导热性.
  • 钻石的内在脆性限制了其变形和加工能力.

研究的目的:

  • 为了研究纳米钻石的超大可塑性.
  • 了解控制纳米钻石在压力下行为的变形机制.

主要方法:

  • 使用定制设计的现场传输电子显微镜 (TEM) 机械支架.
  • 在TEM中对纳米钻石样本施加机械应力.

主要成果:

  • 在纳米钻石中观察到无形化介导的超大可塑性,容纳超过90%的压缩应变.
  • 变形机制涉及无形碳网的形成,促进谷物旋转和滑动.
  • 确定了一个尺寸依赖的过渡:在13nm以下观察到超大可塑性,而更大的钻石则变形易碎.

结论:

  • 形态化是实现纳米钻石极端可塑性的关键机制.
  • 取决于尺寸的行为对于理解纳米钻石的机械性能至关重要.
  • 发现为基于纳米钻石的制造,应变工程和先进设备应用提供了开放的机会.