The Class Notes: Difference between revisions

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<math>R \equiv Reluctance\ \frac{\mathcal{F}}{\phi} = \frac{Ni}{\phi} </math>
<math>R \equiv Reluctance\ \frac{\mathcal{F}}{\phi} = \frac{Ni}{\phi} </math>


<math> \vec B = \mu \vec H\ Assumes Linearity </math>
<math> \vec B = \mu \vec H\ Assumes\ Linearity </math>


<math> mathcal{R} \frac{l}{\muA}</math>
<math> \mathcal{R} \frac{l}{\muA}</math>

Revision as of 14:28, 25 January 2010

4 jan 2010

Thebegining.JPG

Picture drawn by Kirk Betz based on drawing by Dr. Frohnes, lecture Jan. 4, 2010

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Magnetic Circuits

jan 6 2010

Magnetic cir.JPG

Picture drawn by Kirk Betz based on drawing by Dr. Frohnes, lecture Jan. 6, 2010

Magnetic Equations

Failed to parse (unknown function "\muA"): {\displaystyle \mathcal{R} \frac{l}{\muA}}