Question #143688
Tara pushes a 10.5 kg block of ice 11.0 m across the floor with a force of 235 N. What is the ice block’s velocity the moment she stops pushing it?
1
Expert's answer
2020-11-23T05:29:13-0500

The acceleration given to the block is (according to Newton's second law):


a=Fma = \dfrac{F}{m}

where m=10.5kgm = 10.5kg is the mass of the block and F=235NF = 235N is the exerted force.

Assuming block started from rest, the distance travelled by it in time tt is:


x=at22x = \dfrac{at^2}{2}

As far as x=11mx = 11m, this time will be:


t=2xa=2xmFt = \sqrt{\dfrac{2x}{a}} = \sqrt{\dfrac{2xm}{F}}

The speed gained in this time is:


v=at=Fm2xmF=2xFmv=21110.52350.99m/sv = at = \dfrac{F}{m}\sqrt{\dfrac{2xm}{F}} = \sqrt{\dfrac{2xF}{m}}\\ v = \sqrt{\dfrac{2\cdot 11\cdot 10.5}{235}} \approx 0.99 m/s

Answer. 0.99 m/s.


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