EMEC - Greg: Difference between revisions

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|-
|-
| <math>\oint \overrightarrow{J} \overrightarrow{dS} = I</math>  
| <math>\oint \overrightarrow{J} \overrightarrow{dS} = I</math>  
| <math>\int \overrightarrow{B} \overrightarrow{dS} = \overbrace{\Phi}^{phi} </math>
| <math>\int \overrightarrow{B} \overrightarrow{dS} = \Phi </math>
|Magnetic flux
|Magnetic flux, Phi
|-
|-
| <math> R = \frac{V}{I}</math>  
| <math> R = \frac{V}{I}</math>  
| <math> \overbrace{R}^{reluctance} = \frac{F}{\Phi} = \frac{N i}{\Phi}</math>
| <math> \mathfrak{R} = \frac{F}{\Phi} = \frac{N i}{\Phi}</math>
|Reluctance
|-
|-
| <math> I = \frac{V}{R} = G V </math> or <math>\overrightarrow{J} = \sigma \overrightarrow{E}</math>  
| <math> I = \frac{V}{R} = G V </math> or <math>\overrightarrow{J} = \sigma \overrightarrow{E}</math>  

Revision as of 12:30, 7 January 2010

Definitions

Symbol Units Name
E→ VM Electric Field Intensity
D→ CM2 Electric Flux Density
H→ AM Magnetic Field Intensity
B→ T=WM2 Magnetic Flux Density

Analogies between Electric & Magnetic Circuits

Electric Magnetic Notes
V=∫E→dl→ F→=∫H→dl→
∑nVn=0=∮E→dl→ ∮H→dl→=Ni=∑nHl+Ni=0 Kirchoff's voltage law
∑nIn=0=∮SJ→dS→ ∮B→dS→=0 Kirchoff's current law, The B-field has to go around in a loop
∮J→dS→=I ∫B→dS→=Φ Magnetic flux, Phi
R=VI ℜ=FΦ=NiΦ Reluctance
I=VR=GV or J→=σE→ B→=μH Assumes linearity - exceptions: Hysterisis loop, etc