"Special relativity"의 두 판 사이의 차이

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(피타고라스님이 이 페이지의 이름을 special and general relativity로 바꾸었습니다.)
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* [[Electromagnetics|Electromagnetism]]<br>
 
* [[Electromagnetics|Electromagnetism]]<br>
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<h5 style="line-height: 2em; margin: 0px;">Lorentz transformation and Maxwell's equation</h5>
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* http://en.wikipedia.org/wiki/Lorentz_transformation<br>
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*  one-dimensional example<br><math>E_{tt}-E_{zz}=0</math><br>
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<h5 style="line-height: 3.428em; margin: 0px; color: rgb(34, 61, 103); font-family: 'malgun gothic',dotum,gulim,sans-serif; font-size: 1.166em; background-position: 0px 100%;">articles</h5>
 
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* [http://www.fourmilab.ch/etexts/einstein/specrel/www/ On the electrodynamics of moving bodies]<br>
 
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** A. Einstein, 1905
 
* http://www.ams.org/mathscinet
 
* http://www.ams.org/mathscinet
 
* http://www.zentralblatt-math.org/zmath/en/
 
* http://www.zentralblatt-math.org/zmath/en/

2010년 4월 13일 (화) 09:12 판

four-vector 
  • can be transformed by Lorentz transoformation

 

 

review of Maxwell's equation

 

 

Lorentz transformation and Maxwell's equation

 

 

 

Vacuum field equation and gravitational field equation
  • gravitational potentail satisfies the following equation
    \(\nabla^2 \Phi = - 4 \pi G \rho\)

 

 

energy-momentum tensor
  • describe the densities and flows of energy and momentum

 

 

 

relativistic Vacuum field equation

 

 

 

relativistic matter field equation
  • Einstein field equation
    \(R_{\mu \nu} - {1 \over 2}g_{\mu \nu}\,R + g_{\mu \nu} \Lambda = {8 \pi G \over c^4} T_{\mu \nu}\)
    where \(\Lambda\) is the cosmological constant

 

 

history

 

 

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encyclopedia

 

 

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[[4909919|]]

 

 

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question and answers(Math Overflow)

 

 

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