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相关概念视频

Calculation of Electric Flux01:25

Calculation of Electric Flux

1.8K
Consider the electric field of an oppositely charged, parallel-plate system and an imaginary box between those plates. Let the bottom face of the box be ABCD, and the top face be FGHK. The electric field between the plates is uniform and points from the positive plate toward the negative plate. The calculation of this field's flux through the box's various faces shows that the net flux through the box is zero. Why does the flux cancel out here?
1.8K
Electric Flux01:15

Electric Flux

7.7K
The concept of flux describes how much of something goes through a given area. More formally, it is the dot product of a vector field within an area. For a better understanding, consider an open rectangular surface with a small area that is placed in a uniform electric field. The larger the area, the more field lines go through it and, hence, the greater the flux; similarly, the stronger the electric field (represented by a greater density of lines), the greater the flux. On the other hand, if...
7.7K
Focusing of Light in the Eye01:16

Focusing of Light in the Eye

2.7K
Light rays enter the eye through the cornea, a transparent dome-shaped tissue that is the eye's outermost layer. The cornea bends or refracts, light rays traveling to the pupil. The shape of the cornea determines how much of the light is bent and whether the image will be focused correctly on the retina at the back of the eye. Once the light has passed through both refraction layers, it converges into a single focal point onto a small area. This is where photoreceptors start transforming...
2.7K
Gauss's Law: Problem-Solving01:10

Gauss's Law: Problem-Solving

1.7K
Gauss's law helps determine electric fields even though the law is not directly about electric fields but electric flux. In situations with certain symmetries (spherical, cylindrical, or planar) in the charge distribution, the electric field can be deduced based on the knowledge of the electric flux. In these systems, we can find a Gaussian surface S over which the electric field has a constant magnitude. Furthermore, suppose the electric field is parallel (or antiparallel) to the area...
1.7K
Magnetic Flux01:18

Magnetic Flux

3.5K
The magnetic flux measures the number of magnetic field lines passing through a given surface area. The SI unit for magnetic flux is the weber (Wb). Magnetic flux is a scalar quantity. It depends on three factors: the strength of the magnetic field B, the area through which the field lines pass, and the relative orientation of the field with the surface area.
Suppose a surface is divided into elements of area dA. For each element, the component of the magnetic field that is normal to the...
3.5K
Plane Electromagnetic Waves II01:29

Plane Electromagnetic Waves II

3.0K
Consider a plane wavefront traveling in position x-direction with a constant speed. This wavefront can be utilized to obtain the relationship between electric and magnetic fields with the help of Faraday's law.
3.0K

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相关实验视频

Updated: Jun 24, 2025

Born Normalization for Fluorescence Optical Projection Tomography for Whole Heart Imaging
16:44

Born Normalization for Fluorescence Optical Projection Tomography for Whole Heart Imaging

Published on: June 2, 2009

10.4K

聚焦场中的非线性射线跟踪,第二部分. 追踪流动:一个教程教程

Qin Yu, Bryan M Hennelly

    Journal of the Optical Society of America. A, Optics, image science, and vision
    |June 10, 2024
    PubMed
    概括

    这项研究引入了非线性射线跟踪,以遵循3D波场中的流量线. 该方法通过复杂的波场数据追踪射线,揭示了Laguerre-Gaussian光束中的螺旋图案.

    科学领域:

    • 光学和光子学 在光学和光子学.
    • 计算电磁学 计算机电磁学
    • 波浪传播 波浪传播

    背景情况:

    • 在三维 (3D) 波场中追踪流量线对于理解波传播至关重要.
    • 以前的方法在复杂的波场分析中可能缺乏效率或准确性.
    • 偏轴近似通常用于聚焦激光模式,如横向电 (TE) 00和横向电 (TE) 01.

    研究的目的:

    • 开发和应用一种在3D复杂波场内追踪流量线的方法.
    • 展示"非线性射线跟踪"技术用于分析波场行为.
    • 为了研究聚焦激光模式的流量跟踪,包括拉盖尔-高斯束.

    主要方法:

    • 从先前的研究中利用算法来生成复杂波场样本的3D网格.
    • 使用3D波场样本的插值来确定任意射线位置的相导数.
    • 逐渐传播射线,通过根据连续平面之间的相导数引导它们.

    主要成果:

    • 通过3D点云成功追踪了流动,该点云代表了没有偏差的聚焦波场.
    • 证明了从体积内的任意点启动射线追踪的能力.
    • 在聚焦的拉盖尔-高斯束中观察到独特的螺旋行为和不同曲率的射线.

    更多相关视频

    Determining 3D Flow Fields via Multi-camera Light Field Imaging
    14:25

    Determining 3D Flow Fields via Multi-camera Light Field Imaging

    Published on: March 6, 2013

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    A Protocol for Real-time 3D Single Particle Tracking
    10:16

    A Protocol for Real-time 3D Single Particle Tracking

    Published on: January 3, 2018

    14.9K

    相关实验视频

    Last Updated: Jun 24, 2025

    Born Normalization for Fluorescence Optical Projection Tomography for Whole Heart Imaging
    16:44

    Born Normalization for Fluorescence Optical Projection Tomography for Whole Heart Imaging

    Published on: June 2, 2009

    10.4K
    Determining 3D Flow Fields via Multi-camera Light Field Imaging
    14:25

    Determining 3D Flow Fields via Multi-camera Light Field Imaging

    Published on: March 6, 2013

    16.6K
    A Protocol for Real-time 3D Single Particle Tracking
    10:16

    A Protocol for Real-time 3D Single Particle Tracking

    Published on: January 3, 2018

    14.9K

    结论:

    • 开发的流量跟踪或非线性射线跟踪方法有效地将波场行为在3D中可视化.
    • 该技术能够处理复杂的束结构,如拉盖尔-高斯模式.
    • 这项工作为在后续研究中调查透镜偏差奠定了基础.