Difference between revisions of "Maxwell's Equations"

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{|align=center
 
{|align=center
|Gauss' Law:|Gauss' Law for Magnetism:
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|Gauss' Law:
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|Gauss' Law for Magnetism:
 
|-
 
|-
 
|<math>\boldsymbol{\nabla \cdot E} = 0 </math>  
 
|<math>\boldsymbol{\nabla \cdot E} = 0 </math>  
 
|<math>\boldsymbol{\nabla \cdot B} = 0</math>  
 
|<math>\boldsymbol{\nabla \cdot B} = 0</math>  
 
|-
 
|-
|Faradays's Law:|Ampere's Law:
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|Faradays's Law:
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|Ampere's Law:
 
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|-
 
|<math>\boldsymbol{\nabla \times E} + \frac{\partial \boldsymbol{B}}{\partial t}= 0</math>  
 
|<math>\boldsymbol{\nabla \times E} + \frac{\partial \boldsymbol{B}}{\partial t}= 0</math>  

Revision as of 15:44, 21 March 2007

In Free Space

These are the Maxwell's Equations we will be using to solve for regions "I" and "II" in our approximation of the Michelson interferometer.

Gauss' Law: Gauss' Law for Magnetism:
Faradays's Law: Ampere's Law:

In the presence of charges and dielectric media

Need to add possibly derivation of wave equation and definitely Maxwell's equation in presence. Need also to introduce D and H and relate them to E and B.

Gauss' Law:

Gauss' Law for Magnetism:

Faradays's Law:

Ampere's Law:


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