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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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Torque On A Current Loop In A Magnetic Field01:13

Torque On A Current Loop In A Magnetic Field

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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.
Consider a rectangular current-carrying loop containing N turns of wire, placed in a uniform magnetic field. The net force on a current-carrying loop...
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Relation Between Moment of a Force and Angular Momentum01:21

Relation Between Moment of a Force and Angular Momentum

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In the realm of spinning tops, the application of force at a distance from the center produces torque, a pivotal factor that alters the angular momentum of the top, thereby inducing its rotation. The concept of moment, akin to linear force in rotation, quantifies how a force acting upon an object initiates rotational motion. Angular momentum serves as the rotational counterpart to linear momentum, representing an object's inherent tendency to persist in its rotational state.
The temporal...
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Angular Momentum: Single Particle01:10

Angular Momentum: Single Particle

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Angular momentum is directed perpendicular to the plane of the rotation, and its magnitude depends on the choice of the origin. The perpendicular vector joining the linear momentum vector of an object to the origin is called the “lever arm.” If the lever arm and linear momentum are collinear, then the magnitude of the angular momentum is zero. Therefore, in this case, the object rotates about the origin such that it lies on the rim of the circumference defined by the lever arm...
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Conservation of Angular Momentum01:09

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A system's total angular momentum remains constant if the net external torque acting on the system is zero. Considering a system that consists of n tiny particles, the angular momentum of any tiny particle may change, but the system's total angular momentum would remain constant. The principle of conservation of angular momentum only considers the net external torque acting on the system. While there are internal forces exerted by different particles within the system that also produce...
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Angle of Twist: Problem Solving

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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...
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相关实验视频

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Magnetic Tweezers for the Measurement of Twist and Torque
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从磁自旋角动量的横向光学扭矩.

Jiquan Wen1, Fengling He1, Lv Feng1

  • 1School of Automation, Guangxi University of Science and Technology, Liuzhou, Guangxi 545006, China.

Nanophotonics (Berlin, Germany)
|December 16, 2024
PubMed
概括

这项研究表明,球形粒子的横向光学扭矩主要来自磁自转角运动量. 令人惊的是,这甚至适用于非磁性粒子,这违背了光学力学中的预期.

关键词:
磁性反应的磁性反应磁力旋转角运动量 磁力旋转角运动量这是一种光学操纵.横向的光学扭矩

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相关实验视频

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科学领域:

  • 光学是什么?光学是什么?光学是什么?
  • 纳米光子学 纳米光子学
  • 光学机械学 光学机械学

背景情况:

  • 光学力和扭矩对于操纵微/纳米粒子至关重要.
  • 电磁反应之间的相互作用决定了光下的粒子行为.
  • 一般的理解表明,介电粒子的电响应占主导地位,特别是在雷利极限.

研究的目的:

  • 为了研究球形粒子上的横向光学扭矩的起源.
  • 导出适用于任意大小的粒子的横向光学扭矩的分析表达式.
  • 挑战对介电粒子中光学力的传统理解.

主要方法:

  • 全波电磁模拟. 全波电磁模拟.
  • 对横向光学扭矩的分析表达式的推导.
  • 分析来自不同物理机制的光学扭矩贡献.

主要成果:

  • 一个横向的光学扭矩被证明在同otropic球形粒子上,垂直于波传播.
  • 横向光学扭矩完全归因于旋转角动量的磁性组成部分.
  • 对于非磁性介电粒子,即使在亚波长模式中,磁性响应也是横向光学扭矩的主要来源.

结论:

  • 磁反应在光学扭矩中起着关键的,往往被低估的作用,即使对于非磁性介电粒子.
  • 这一发现需要重新评估光学操纵中的光物质相互作用,特别是关于旋转角动量转移.
  • 由此衍生出的分析表达式为理解各种粒子大小的横向光学扭矩提供了多功能工具.