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User:Fiskars007 - Wikipedia, the free encyclopedia

User:Fiskars007

From Wikipedia, the free encyclopedia

Some Random Garbage Follows. These aren't the droids you're looking for.

Fiskars007
Wikipedia:Babel
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Contents

[edit] Final prom drive playlist

'Prom Drive 1' -- 29.6 minutes

  • Reel Big Fish - Ban The Tube Top (3:11)
  • Kawada Mami - JOINT (4:02)
  • R.E.M. - What's The Frequency, Kenneth? (4:00)
  • Boston - Peace of Mind (5:05)
  • The All-American Rejects - Dirty Little Secret (3:17)
  • Reel Big Fish - Take On Me (3:02)
  • Reel Big Fish - Party Down (4:09)
  • Kawada Mami - Get my way! (2:57)

'Prom Drive 2' - 27.7 minutes

  • Caramell - Caramelldansen (Speedycake Remix) (2:57)
  • Fountains of Wayne - Stacy's Mom (3:18)
  • Journey - Don't Stop Believin' (4:10)
  • Ayumi Hamasaki - evolution (Time is Pop) (4:59)
  • Queen - Bohemian Rhapsody (5:59)
  • Rick Astley - Never Gonna Give You Up (3:35)
  • Weird Al Yankovic - White & Nerdy (2:50)

[edit] Prom drive playlist Suggestion, courtesy ICM

  • Caramelldansen (Speedycake Remix) (2:56)
  • Journey - Don't Stop Believing (4:10)
  • Queen - Bohemian Rhapsody (5:51)
  • Ayumi Hamasaki - Evolution (Time is Pop Remix) (4:58)
  • Fountains of Wayne - Stacy's Mom (3:18)
  • Weird Al - White and Nerdy (2:49)

[edit] Physics Statics Test equations

2. C=\frac{ke_{0}A}{d}

4. \frac{Kq^{2}}{2l\sin (\theta )}=mg\tan (\theta )

9a. W=qEd=\frac{1}{2}mv^{2}

10. \begin{align}
  & F_{1}=\frac{Kq_{1}q_{2}}{r^{2}}=\frac{K(2)(1)}{r^{2}} \\ 
 & F_{2}=\frac{Kq_{1}q_{2}}{r^{2}}=\frac{K(.5)(.5)}{r^{2}} \\ 
\end{align}

Explanation for 10: Touching the charges grounds them (like you touching a doorknob after walking through a carpet on a dry day -- shock time!), so their charges are equal after the...touching. Charge is conserved, so each charge is now 1/2. In this way, F1 is 8 times greater than F2, so the answer is E.

[edit] Physics equations

[edit] Range of a Case 1 Projectile (Artemis)

r=V_{0\text{x}}\times \sqrt{\frac{2h}{g}}

[edit] Derivation of previous

\begin{align}
 & r=V_{0}t \\ 
 & h=V_{0\text{y}}+{\scriptstyle{}^{1}\!\!\diagup\!\!{}_{2}\;}gt^{2} \\ 
 & V_{0\text{y}}=0 \\ 
 & h={\scriptstyle{}^{1}\!\!\diagup\!\!{}_{2}\;}gt^{2} \\ 
 & t^{2}=\frac{2h}{g} \\ 
 & t=\sqrt{\frac{2h}{g}} \\ 
 & r=V_{0\text{x}}\times \sqrt{\frac{2h}{g}} \\ 
\end{align}

[edit] Banked Turn

\theta =\tan ^{-1}\left( \frac{v^{2}}{rg} \right)

v_{\max }=\sqrt{rg\left( \frac{\tan \theta +\mu _{s}}{1-\mu _{s}\tan \theta } \right)}

[edit] Vertical Rotation

T_{\text{bottom}}=\frac{mv^{2}}{r}+mg

T_{\text{top}}=\frac{mv^{2}}{r}-mg

F_{mg}+T=\frac{mv_{\text{min}}^{2}}{r}

F_{mg}=\frac{mv_{\text{min}}^{2}}{r}

rg=v_{\text{min}}^{2}


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