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Radiation: Applications01:17

Radiation: Applications

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The average temperature of Earth is the subject of much current discussion. Earth is in radiative contact with both the Sun and dark space; it receives almost all its energy from the radiation of the Sun and reflects some of it into outer space. Dark space is very cold, about 3 K, so Earth radiates energy into it. For instance, heat transfer occurs from soil and grasses, the rate of which can be so rapid that frost can occur on clear summer evenings, even in warm latitudes.
The average...
1.7K
Electromagnetic Fields01:30

Electromagnetic Fields

2.7K
Electric fields generated by static charges, often referred to as electrostatic fields, are characteristically different from electric fields created by time-varying magnetic fields. While the former is a conservative field, implying that no net work is done on a test charge if it goes around in a complete loop in the field, the latter is, by definition, not a conservative field; net work is done, and it is proportional to the rate of change of magnetic flux.
However, the observation of...
2.7K
Generating Electromagnetic Radiations01:10

Generating Electromagnetic Radiations

6.7K
The German physicist Heinrich Hertz (1857–1894) was the first to generate and detect certain types of electromagnetic waves in the laboratory. Starting in 1887, he performed a series of experiments that confirmed the existence of electromagnetic waves and verified that they travel at the speed of light. Hertz used an alternating-current RLC (resistor-inductor-capacitor) circuit that resonated at a known frequency and connected it to a loop of wire. High voltages induced across the gap in...
6.7K
Intensity Of Electromagnetic Waves01:22

Intensity Of Electromagnetic Waves

5.7K
The energy transport per unit area per unit time, or the Poynting vector, gives the energy flux of an electromagnetic wave at any specific time. For a plane electromagnetic wave with E0 and B0 as the peak electric and magnetic fields and traveling along the x-axis, the time-varying energy flux can be given by the following equation:
5.7K
Induced Electric Fields: Applications01:27

Induced Electric Fields: Applications

2.5K
An important distinction exists between the electric field induced by a changing magnetic field and the electrostatic field produced by a fixed charge distribution. Specifically, the induced electric field is nonconservative because it does not work in moving a charge over a closed path. In contrast, the electrostatic field is conservative and does no net work over a closed path. Hence, electric potential can be associated with the electrostatic field but not the induced field. The following...
2.5K
Radiation Pressure: Problem Solving01:09

Radiation Pressure: Problem Solving

777
The radiation pressure applied by an electromagnetic wave on a perfectly absorbing surface equals the energy density of the wave. The wave's momentum also gets transferred to the surface when an electromagnetic wave is entirely absorbed by it. The rate at which momentum is transmitted to an absorbing surface perpendicular to the propagation direction equals the force on the surface.
The average value of the rate of momentum transfer divided by the absorbing area represents the average force...
777

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相关实验视频

Updated: Jan 11, 2026

Effective Analysis of Human Exposure Conditions with Body-worn Dosimeters in the 2.4 GHz Band
06:43

Effective Analysis of Human Exposure Conditions with Body-worn Dosimeters in the 2.4 GHz Band

Published on: May 2, 2018

7.4K

通过基于Voronoi的地图可视化射频电磁场暴露.

Enrique Arribas1,2, Raquel Ramirez-Vazquez3,4, Isabel Escobar1,2

  • 1Department of Physics, Faculty of Computer Science Engineering, University of Castilla-La Mancha, Avda. de España s/n, University Campus, 02071, Albacete, Spain.

Environmental science and pollution research international
|November 14, 2025
PubMed
概括

这项研究简化了使用沃罗诺伊图的城市的射频电磁场暴露测量. 该方法有效地可视化电场水平,显示整个城市仍在安全范围内.

关键词:
个人曝光仪个人曝光仪无线电频率电磁场的电磁场.泰塞拉法 (Tessellation) 是一种特塞拉法.沃罗诺伊图或蒂森的多边形.

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Topographical Estimation of Visual Population Receptive Fields by fMRI
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High-Throughput Analysis of Optical Mapping Data Using ElectroMap

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相关实验视频

Last Updated: Jan 11, 2026

Effective Analysis of Human Exposure Conditions with Body-worn Dosimeters in the 2.4 GHz Band
06:43

Effective Analysis of Human Exposure Conditions with Body-worn Dosimeters in the 2.4 GHz Band

Published on: May 2, 2018

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Topographical Estimation of Visual Population Receptive Fields by fMRI
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Topographical Estimation of Visual Population Receptive Fields by fMRI

Published on: February 3, 2015

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High-Throughput Analysis of Optical Mapping Data Using ElectroMap
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Published on: June 4, 2019

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科学领域:

  • 环境科学 环境科学
  • 电磁学 电磁学 电磁学 电磁学
  • 城市规划 城市规划

背景情况:

  • 在城市地区测量射频电磁场 (RF-EMF) 是复杂的.
  • 公共卫生和城市规划需要有效的可视化方法.

研究的目的:

  • 为了简化和可视化在中型城市的射频电磁场暴露测量.
  • 用沃罗诺伊图来评估城市RF-EMF水平.

主要方法:

  • 利用沃罗诺伊图来将城市根据测量点的近距离划分为单元.
  • 将测量的RMS电场值分配给每个Voronoi单元格以进行空间表示.
  • 采用了色调板来可视化整个城市的电场强度.

主要成果:

  • 沃罗诺伊图表方法提供了RF-EMF分布的清晰可视化.
  • 主要电场水平为1.9V/m RMS,远低于ICNIRP61.4V/m的指南.
  • 测量的最高值为11.4V/m,整个城市被发现处于推的安全限度内.

结论:

  • 沃罗诺伊图表是一个有用和有趣的工具,用于在城市环境中呈现RF-EMF暴露数据.
  • 该方法提供空间场变化的离散可视化,尽管它没有捕捉细胞内变化.
  • 该研究证实,分析城市的射频电磁场水平符合既定安全准则.