Difference between revisions of "Forest UCM PnCP LinAirRes"
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==Example: falling object with linear air friction== | ==Example: falling object with linear air friction== | ||
− | Consider a ball falling under the influence of gravity and a frictional force that is proportion to its velocity | + | Consider a ball falling under the influence of gravity and a frictional force that is proportion to its velocity |
:<math>\sum \vec{F}_{ext} = mg -bv = m \frac{dv}{dt}</math> | :<math>\sum \vec{F}_{ext} = mg -bv = m \frac{dv}{dt}</math> | ||
let | let | ||
− | :<math>v_t = \frac{mg}{b}</math> | + | :<math>b=</math>coefficeint of air resistance |
+ | :<math>v_t = \frac{mg}{b} =</math> Terminal speed | ||
:<math> v_t -v = \frac{1}{b} \frac{dv}{dt}</math> | :<math> v_t -v = \frac{1}{b} \frac{dv}{dt}</math> | ||
:<math> b dt= \frac{dv}{v_t -v} </math> | :<math> b dt= \frac{dv}{v_t -v} </math> |
Revision as of 13:59, 31 August 2014
Linear Air Resistance
Horizontal motion
If
is unity then the velocity is exponentially approaching zero.- : negative sign indicates a retarding force and is a proportionality constant
- ;
The displacement is given by
Example: falling object with linear air friction
Consider a ball falling under the influence of gravity and a frictional force that is proportion to its velocity
let
- coefficeint of air resistance
- Terminal speed