Asked by Oddbjørn
Hi I have a question in Physics
A block with mass 50kg is held on a slope. Ù friction coefficient = 0.35 between the plane and the block ..
Planets angle v with the horizontal is 25 degrees. How far will the block slide down the plane in 5 seconds after it is released (in meters)?
Thanks for the answer
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A block with mass 50kg is held on a slope. Ù friction coefficient = 0.35 between the plane and the block ..
Planets angle v with the horizontal is 25 degrees. How far will the block slide down the plane in 5 seconds after it is released (in meters)?
Thanks for the answer
Lytt til
Les fonetisk
Ordbok - Vis detaljert ordbokresultat
Answers
Answered by
Damon
Var sa god
FORCE COMPONENT DOWN SLOPE = M G SIN 25
NORMAL FORCE ON BLOCK = M G COS 25
FRICTION FORCE UP SLOPE = mu M G cos 25
F = Net force down slope = M G sin 25 - mu M G cos 25
Calculate that F
then
a = F/M
d = 0 + 0 t + (1/2) a t^2
FORCE COMPONENT DOWN SLOPE = M G SIN 25
NORMAL FORCE ON BLOCK = M G COS 25
FRICTION FORCE UP SLOPE = mu M G cos 25
F = Net force down slope = M G sin 25 - mu M G cos 25
Calculate that F
then
a = F/M
d = 0 + 0 t + (1/2) a t^2
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