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相关概念视频

Electric Field of a Non Uniformly Charged Sphere01:22

Electric Field of a Non Uniformly Charged Sphere

1.5K
Gauss's law states that the electric flux through any closed surface equals the net charge enclosed within the surface. This law is beneficial for determining the expressions for the electric field for a particular charge distribution if the electric flux is known.
Consider a non-uniformly charged sphere, for which the density of charge depends only on the distance from a point in space and not on the direction. Such a sphere has a spherically symmetrical charge distribution. Here, the electric...
1.5K
Gauss's Law: Spherical Symmetry01:26

Gauss's Law: Spherical Symmetry

7.4K
A charge distribution has spherical symmetry if the density of charge depends only on the distance from a point in space and not on the direction. In other words, if the system is rotated, it doesn't look different. For instance, if a sphere of radius R is uniformly charged with charge density ρ0, then the distribution has spherical symmetry. On the other hand, if a sphere of radius R is charged so that the top half of the sphere has a uniform charge density ρ1 and the bottom half...
7.4K
Coulomb's Law01:30

Coulomb's Law

9.0K
Experiments with electric charges have shown that if two objects each have an electric charge, they exert an electric force on each other. The magnitude of the force is linearly proportional to the net charge on each object and inversely proportional to the square of the distance between them. The direction of the force vector is along the imaginary line joining the two objects and is dictated by the signs of the charges involved.
Newton's third law applies to the Coulomb force — the...
9.0K
Electric Dipoles and Dipole Moment01:30

Electric Dipoles and Dipole Moment

5.1K
Consider two charges of equal magnitude but opposite signs. If they cannot be separated by an external electric field, the system is called a permanent dipole. For example, the water molecule is a dipole, making it a good solvent.
Theoretically, studying electric dipoles leads to understanding why the resultant electric forces around us are weak. Since electric forces are strong, remnant net charges are rare. Hence, the interaction between dipoles helps us understand electrical interactions in...
5.1K
Torque On A Current Loop In A Magnetic Field01:13

Torque On A Current Loop In A Magnetic Field

3.9K
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...
3.9K
Induced Electric Dipoles01:28

Induced Electric Dipoles

4.2K
A permanent electric dipole orients itself along an external electric field. This rotation can be quantified by defining the potential energy because the external torque does work in rotating it. Then, the potential energy is minimum at the parallel configuration and maximum at the antiparallel configuration. While the former is a stable equilibrium, the latter is an unstable equilibrium.
Since the absolute value of potential energy holds no physical meaning, its zero value can be chosen as per...
4.2K

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相关实验视频

Updated: Jun 15, 2025

Experimental Methods of Dust Charging and Mobilization on Surfaces with Exposure to Ultraviolet Radiation or Plasmas
07:54

Experimental Methods of Dust Charging and Mobilization on Surfaces with Exposure to Ultraviolet Radiation or Plasmas

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关于静电电荷的球体的扭矩使它们更有吸引力.

Michael R Swift1, Mike I Smith1

  • 1School of Physics and Astronomy, University of Nottingham, Nottingham NG7 2RD, UK. mike.i.smith@nottingham.ac.uk.

Soft matter
|August 22, 2024
PubMed
概括

震动绝缘颗粒会产生不均的表面电荷,影响它们的相互作用. 考虑全电荷分布对于准确预测颗粒系统中的力和扭矩至关重要.

科学领域:

  • 物理,特别是颗粒物理和静电学.

背景情况:

  • 粒子间相互作用控制颗粒系统的行为 (流动,凝聚力,碎片化).
  • 静电力在低重力和自由落体中是显著的,影响自然和工业过程.

研究的目的:

  • 为了研究振动对均的球形粒子表面电荷分布的影响.
  • 为了确定测量的二极子时刻和扭矩之间的关系.
  • 开发一个模型来预测考虑全电荷分布的力和扭矩.

主要方法:

  • 实验性地震动同质的球形粒子.
  • 测量粒子双极时刻和扭矩.
  • 开发一个理论模型来分析电荷分布效应.

主要成果:

  • 震动导致粒子表面电荷分布不均.
  • 双极时刻和扭矩有很强的相关性.
  • 为了准确的扭矩和力预测,需要一个包含全表面电荷分布的模型.

结论:

  • 这项研究揭示了由非均的电荷分布引起的显著而被忽视的扭矩.
  • 这种扭矩可以通过重定位来放大有吸引力的粒子间力.
  • 精确的颗粒系统建模需要考虑复杂的静电相互作用.

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