If an object is moving at $6 \frac{m}{s}$ $6 m/s$ over a surface with a kinetic friction coefficient of $u_{k} = \frac{20}{g}$ $u_k=20 /g$ , how far will the object continue to move?

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If an object is moving at $6 \frac{m}{s}$ $6 m/s$ over a surface with a kinetic friction coefficient of $u_{k} = \frac{20}{g}$ $u_k=20 /g$ , how far will the object continue to move?

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Answer 1 · 2015-12-17T14:58:28

I found $0.9 m$ $0.9m$

Explanation:

Your object will move under the acton of Friction that wll produe a negative acceleration and eentually stop it.

To find this acceleration we can use Newton's Second law:

$SigmavecF=m veca$

where the only force will be friction (in the opposite direction to the movement so it will need to enter Newton's Law with a minus sign) given as:

$f_k=u_kN$

where:

$N=$ normal reaction $=$ Weight $=mg$ in this case of horizontal movement.

So you have:

$-f_k=ma$
$-u_kN=ma$
$-u_kmg=ma$
$-20/cancel(g)cancel(m)cancel(g)=cancel(m)a$
so that $a=-20m/s^2$
we now use the relationship:
$v_f^2=v_i^2+2ad$
where $v_f=0$ (stops)
$0=6^2-2*d*20$
$d=36/40=0.9m$

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If an object is moving at $6 \frac{m}{s}$ $6 m/s$ over a surface with a kinetic friction coefficient of $u_{k} = \frac{20}{g}$ $u_k=20 /g$ , how far will the object continue to move?

1 Answer

Explanation:

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Explanation:

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If an object is moving at $6 \frac{m}{s}$ $6 m/s$ over a surface with a kinetic friction coefficient of $u_{k} = \frac{20}{g}$ $u_k=20 /g$ , how far will the object continue to move?