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相关概念视频

Relative Motion Analysis - Acceleration01:10

Relative Motion Analysis - Acceleration

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A slider-crank mechanism converts rotational motion from the crank into linear motion of the slider or vice versa. This mechanism consists of three main parts: the crank, the connecting rod, and the slider. The movement of the slider-crank is an example of general plane motion as the fluctuating angle between the crank and the connecting rod. Consider a segment AB where point A is at the end of the slider and point B is on the diametrically opposite end to point A, on a crack. The variance in...
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Relative Motion Analysis - Velocity01:24

Relative Motion Analysis - Velocity

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A stroke engine has a slider-crank mechanism that converts rotational motion from the crank into linear motion of the slider or vice versa. This mechanism consists of three main parts: the crank, the connecting rod, and the slider.
When an external force is exerted, it sets the crank into a rotational movement. This, in turn, instigates the motion of the connecting rod, leading to what is referred to as a general plane motion. This process involves two key points - point A on the connecting rod...
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Relating Angular And Linear Quantities - I01:09

Relating Angular And Linear Quantities - I

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If the rotational definitions are compared with the definitions of linear kinematic variables from motion along a straight line and motion in two and three dimensions, we can observe a mapping of the linear variables to the rotational ones.
When comparing the linear and rotational variables individually, the linear variable of position has physical units of meters, whereas the angular position variable has dimensionless units of radians, as it is the ratio of two lengths. The linear velocity...
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Linear Momentum in Control Volume01:13

Linear Momentum in Control Volume

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Newton's second law is applied to obtain the linear momentum in a control volume in a fluid system. According to this law, the rate of change of linear momentum is equal to the sum of external forces acting on the system. When a control volume matches the fluid system at a specific moment, the forces acting on both are identical. Reynolds transport theorem helps explain this by breaking down the system's linear momentum into two components: the rate of change of linear momentum within...
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Generation of Straight or Branched Actin Filaments01:14

Generation of Straight or Branched Actin Filaments

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The straight or branched structure formation of actin filaments is controlled by nucleating proteins such as the formins and Arp2/3 complex. Formin-mediated assembly results in straight filaments, whereas Arp2/3 protein complex-mediated assembly results in branched actin filaments.
Arp2/3 Complex
Arp2/3 complex is a seven-subunit complex consisting of two proteins similar to actin- Arp2 and Arp3, and five other subunits that help keep Arp2 and Arp3 inactive. When required, the complex is...
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Convergent Evolution01:54

Convergent Evolution

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Evolution shapes the features of organisms over time, ensuring that they are suited for the environments in which they live. Sometimes, selection pressure leads to the rise of similar but unrelated adaptations in organisms with no recent common ancestors, a process known as convergent evolution.
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Fabrication of Soft Pneumatic Network Actuators with Oblique Chambers
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在弹道舌头中融合进化的线性执行器

Yu Zeng1, Christopher V Anderson2, Stephen M Deban1

  • 1Department of Integrative Biology, University of South Florida, Tampa, FL 33620, USA.

Current biology : CB
|August 29, 2025
PubMed
概括

驼和无肺使用独特的滑动执行系统来快速投射舌头. 这种生物机械设计允许脊椎动物运动的极端加速和高效的能量转移.

科学领域:

  • 生物力学
  • 脊椎动物学
  • 进化生物学

背景情况:

  • 快速的动物运动需要有效的能量转移来克服惯性.
  • 脊椎动物的密集组织和有限的弹性储存对功率输出构成约束.
  • 脊椎动物的极端弹道性能值得注意.

研究的目的:

  • 研究驼和无肺舌头快速投射背后的生物机械机制.
  • 确定这些动物如何实现高速加速和投射速度.
  • 了解这种弹道机制的进化趋同.

主要方法:

  • 综合理论建模与实验结果.
  • 分析了黑猩猩和无肺的肌肉骨系统.
  • 量化加速,投射速度和能量转移动态.

主要成果:

  • 驼和无肺独立地开发出一种基于滑动的直线执行器,用于舌头的发射.
  • 这种系统利用软化的骨杆的肌肉挤压,将肌肉动作与骨运动脱.
  • 在广泛的车身尺寸中实现30-590G的加速度和2-5.5m/s的投射速度.
  • 证明了快速和空间紧的能量转移 (3-30毫秒超过1-35毫米),规避了肌肉力量-速度的权衡.
关键词:
弹道运动肌肉功率放大器骨架脊椎动物

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结论:

  • 生物机械模块化, 而不是特殊的材料, 是脊椎动物弹道创新的基础.
  • 滑动驱动器的设计可实现高效的能量传输,这对于生态多功能性和热强度至关重要.
  • 这些发现为使用混合软硬材料的快速执行器提供了生物灵感.