If a $5 k g$ $5 kg$ object moving at $2 \frac{m}{s}$ $2 m/s$ slows to a halt after moving $50 m$ $50 m$ , what is the coefficient of kinetic friction of the surface that the object was moving over?

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If a $5 k g$ $5 kg$ object moving at $2 \frac{m}{s}$ $2 m/s$ slows to a halt after moving $50 m$ $50 m$ , what is the coefficient of kinetic friction of the surface that the object was moving over?

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Answer 1 · 2015-12-14T22:04:32

$μ_{k} = 0, 004$ $mu_k=0,004$

Explanation:

If frictional force is the only retarding force then it is the resultant force and so by Newton's 2nd Law of Motion (assuming motion along a flat surface in 1 direction)
$\sum F = m a$ $sumF=ma$
$therefore -f_k=ma$
$therefore -mu_kN=ma$
$therefore -mu_kmg=ma$

$therefore mu_k=-a/g$

We compute the acceleration $a$ from the equations of motion for uniform acceleration in 1 direction as follows :

$v^2=u^2+2ax$

$therefore a=(v^2-u^2)/(2xxx)=-4/100=-0,04m//s^2$

Substituting back for $mu_k$ , we get

$mu_k=0,04/9,8=0,004$

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If a $5 k g$ $5 kg$ object moving at $2 \frac{m}{s}$ $2 m/s$ slows to a halt after moving $50 m$ $50 m$ , what is the coefficient of kinetic friction of the surface that the object was moving over?

1 Answer

Explanation:

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If a 5 kg5kg5 kg object moving at 2 m/s2ms2 m/s slows to a halt after moving 50 m50m50 m, what is the coefficient of kinetic friction of the surface that the object was moving over?

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Explanation:

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If a $5 k g$ $5 kg$ object moving at $2 \frac{m}{s}$ $2 m/s$ slows to a halt after moving $50 m$ $50 m$ , what is the coefficient of kinetic friction of the surface that the object was moving over?