A 65.7 kg skateboarder is sliding down a 15 meter long incline. The incline is 7.50 meters tall. As he slides down he encounters 96.5 N of friction. How fast is the skateboarder moving at the bottom of the hill?

1 Answer
GiĆ³
Nov 23, 2015

I found v=10.1m/s
(by the way, check my maths!)

Explanation:

At the top of the incline he will have gravitational potential energy U=mgh=65.7*9.8*7.5=4828.9J that sliding down will be changed into:

Kinetic Energy: K=1/2mv^2

and

Heat due to friction equal to the "work" done by friction: W_f=f*d=96.5*15=1447.5J

So the Kinetic Energy "available" to move the skater at the bottom of the incline will be the initial potential energy minus the energy used to heat up the ramp:

K=U-W_f=4828.9-1447.5=3381.4J
or
1/2mv^2=3381.4J
v=sqrt(2*3381.4/65.7)

v=10.1m/s

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