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相关概念视频

Torque Free Motion01:15

Torque Free Motion

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The torque-free motion refers to the movement of a rigid body in space when no external torques are acting upon it. This type of motion can be observed in environments where there are no external forces or frictions, like in outer space. For example, a rotation of Mars in space is a torque-free motion. Mars is an axisymmetric object, meaning it has an axis of symmetry along which it rotates, designated as the z-axis. The rotating frame of reference is defined such that the center of mass of...
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Deformation in a Circular Shaft01:10

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One of the distinctive characteristics of circular shafts is their ability to maintain their cross-sectional integrity under torsion. In other words, each cross-section continues to exist as a flat, unaltered entity, simply rotating like a solid, rigid slab. To understand the distribution of shearing stress within such a shaft, consider a cylindrical section inside this circular shaft. This section has a length of L and a radius of R, with one end fixed. The radius of the cylindrical section is...
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In mechanical engineering, a three-dimensional force system is a system of forces acting in three dimensions, with forces applied along the x, y, and z coordinate axes. The three-dimensional force system is an important concept in mechanical engineering, as it allows engineers to understand and analyze the behavior of objects and structures in three dimensions. By understanding the forces acting on a system, engineers can design more efficient and effective mechanical systems that can withstand...
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The most common application of magnetic force on current-carrying wires is in electric motors. These consist of loops of wire, which are placed between the magnets with a magnetic field. When current flows through the loops, the magnetic field applies torque, which causes the shaft to rotate, thus converting electrical energy to mechanical energy.
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A rigid body's rotation around a fixed axis makes every point within it trace a circular path around a specific line or point. The term given to this type of spinning is defined by the angular position, symbolized by the angle θ. This angle is gauged from a static reference line to the revolving object. From this angular position, any variation is referred to as angular displacement, denoted by dθ. The extent of this displacement can be calculated in degrees, radians, or...
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Updated: Jun 3, 2025

Direct Force Measurements of Subcellular Mechanics in Confinement using Optical Tweezers
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时间变化的3D光学扭矩通过单个光束.

Yi-Jing Wu1, Jing-Han Zhuang1, Pan-Pan Yu1

  • 1Department of Optics and Optical Engineering, University of Science and Technology of China, Hefei, China.

Nature communications
|January 11, 2025
PubMed
概括

研究人员通过操纵旋转角动量 (SAM) 转移实现了对微粒3D光学扭矩的完全控制. 这使得任何轴周围的动态3D旋转成为可能,从而推进光学针应用.

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科学领域:

  • 光学和光子学 在光学和光子学.
  • 微粒子操纵 微粒子操纵
  • 轻物质相互作用 轻物质相互作用

背景情况:

  • 光中的旋转角动量 (SAM) 影响光-物质相互作用,使微物体旋转的光学扭矩成为可能.
  • 使用光学扭矩在任意轴周围实现受控的3D旋转仍然是一个重大挑战.

研究的目的:

  • 为了证明对被困微粒的3D光学扭矩的完全控制.
  • 为了实现微粒在任意轴周围的动态3D旋转.

主要方法:

  • 在聚焦场的3DSAM向量和事件极化螺旋体之间构建一个理论联系.
  • 为动态3DSAM操纵和时间变化的矢量SAM传输提出一个单光束配置.
  • 通过模拟验证3D光学扭矩控制在双断微粒.

主要成果:

  • 在任意轴周围展示了光学捕获粒子的动态3D旋转.
  • 通过定制矢量SAM传输,成功控制了3D光学扭矩.
  • 验证了对微粒3D光学扭矩控制的模拟结果.

结论:

  • 该研究成功地展示了动态3D光学扭矩操纵和任意轴粒子旋转.
  • 这一突破预计将增强光学子的功能和应用.
  • 铺平了先进的微粒子操纵的道路,使用量身定制的光特性.