If an object is moving at $50 \frac{m}{s}$ $50 m/s$ over a surface with a kinetic friction coefficient of $u_{k} = \frac{8}{g}$ $u_k=8 /g$ , how far will the object continue to move?

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If an object is moving at $50 \frac{m}{s}$ $50 m/s$ over a surface with a kinetic friction coefficient of $u_{k} = \frac{8}{g}$ $u_k=8 /g$ , how far will the object continue to move?

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Answer 1 · 2015-12-11T10:04:22

I found $156 m$ $156m$

Explanation:

Considering that the only force acting on the object will be kinetic friction $f_{k}$ $f_k$ , it will produce an opposite acceleration slowing down the object.
From Newton's Second Law (horizontally):

$- f_{k} = m a$ $-f_k=ma$

and so:
$a = - \frac{f_{k}}{m}$ $a=-f_k/m$

Friction will be: $f_{k} = u_{k} N$ $f_k=u_kN$
where, in this case, the normal reaction, $N$ $N$ , will be equal to the weight $W = m g$ $W=mg$ ;
so:
$a=-(u_kcancel(m)g)/cancel(m)=-8/g*g=-8m/s^2$
With this acceleration you can use:
$color(red)(v_f^2=v_i^2+2ad)$
with $v_f=0$ (the object stops)
so you get:
$0^2=50^2-(2*8*d)$
$d=2500/(16)=156m$

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If an object is moving at $50 \frac{m}{s}$ $50 m/s$ over a surface with a kinetic friction coefficient of $u_{k} = \frac{8}{g}$ $u_k=8 /g$ , how far will the object continue to move?

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Explanation:

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If an object is moving at 50 m/s50ms50 m/s over a surface with a kinetic friction coefficient of u_k=8 /guk=8gu_k=8 /g, how far will the object continue to move?

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Explanation:

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If an object is moving at $50 \frac{m}{s}$ $50 m/s$ over a surface with a kinetic friction coefficient of $u_{k} = \frac{8}{g}$ $u_k=8 /g$ , how far will the object continue to move?