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Angle of Twist: Problem Solving01:13

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An electric motor applies a torque of 700 N·m to an aluminum shaft, triggering a stable rotation. Two pulleys, B and C, are subjected to torques of 300 N·m and 400 N·m, respectively. The modulus of rigidity is provided as 25 GPa. With the knowledge of the length and diameter of each segment, the twist angle between the two pulleys can be computed. First, a section cut is made between pulleys B and C, and the cut cross-section is analyzed using a free-body diagram. Given that the torque...
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Consider a cylindrical shaft with a length denoted by L and a consistent cross-sectional radius referred to as r. This shaft undergoes a torque at the free end. The highest shearing strain within the shaft is directly proportional to the twist angle and the radial distance from the shaft axis. When the shaft behaves elastically, this shearing strain can be articulated using variables such as the applied torque, radial distance, the polar moment of inertia, and the modulus of rigidity. By...
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Thin-walled members with non-symmetrical cross-sections are vital to engineering structures, offering material efficiency and structural integrity. However, unsymmetrical loading on these members leads to complex stress distributions, resulting in simultaneous bending and twisting can cause deformation or structural failure. The interaction between bending and twisting requires detailed analysis to ensure structural resilience.
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相关实验视频

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Method to Measure Tone of Axial and Proximal Muscle
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适应性扭曲的元材料

Mattia Utzeri1, Maria L Gatto1, Edoardo Mancini2

  • 1Department of Industrial Engineering and Mathematical Sciences, Polytechnic University of Marche, Ancona, 60121, Italy.

Advanced materials (Deerfield Beach, Fla.)
|October 22, 2025
PubMed
概括

研究人员开发了扭曲的超材料,以适应性防撞. 这些架构格子提供可调节的力位移路径,增强保护系统的能量吸收.

关键词:
科塞拉特的连续力学.适应性防撞能力 适应性防撞能力添加剂制造 添加剂制造 添加剂制造扭曲的胃腺瘤 扭曲的胃腺瘤扭曲元材料的方法

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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:

  • 下一代保护系统需要适应冲击严重性的材料.
  • 现有的材料往往具有固定的反应,限制了保护的有效性.
  • 适应性材料为量身定制的冲击反应提供多种力位移途径.

研究的目的:

  • 引入扭曲的元材料作为一种新型的适应式架构格子.
  • 研究这些结构的机械和适应性防撞能力.
  • 展示其设计和应用的多尺度预测框架.

主要方法:

  • 利用微极弹性来建模扭曲的元材料的机制.
  • 采用了一种结合Cosserat连续力学,有限元模型和实验验证的多尺度预测框架.
  • 附加制造和测试在准静态和动态压缩下扭转状结构,具有不同的扭矩约束.

主要成果:

  • 扭曲的超材料表现出几何诱导的扭转执行和非线性反应.
  • 受到约束的旋转导致高轴刚度 (4.8 GPa),崩应力 (21 MPa) 和特定能量吸收 (15.36 J/g).
  • 自由扭转和过度旋转的条件将性能降低高达33%,证明了适应性能量吸收.

结论:

  • 扭曲的元材料提供可调节的机械反应,以适应性防撞.
  • 开发的多尺度框架准确地预测性能,并指导设计.
  • 这些材料对汽车,航空航天和国防应用中的先进保护系统有很大的希望.