If a $1 k g$ $1 kg$ object moving at $7 \frac{m}{s}$ $7 m/s$ slows down to a halt after moving $140 m$ $140 m$ , what is the coefficient of kinetic friction of the surface that the object was moving over?

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If a $1 k g$ $1 kg$ object moving at $7 \frac{m}{s}$ $7 m/s$ slows down to a halt after moving $140 m$ $140 m$ , what is the coefficient of kinetic friction of the surface that the object was moving over?

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Answer 1 · 2015-12-19T14:29:27

I found approx $0.02$ $0.02$

Explanation:

We can start by using:
$v_{f}^{2} = v_{i}^{2} + 2 a d$ $color(red)(v_f^2=v_i^2+2ad)$
to get:
$0 = 7^{2} + 2 a \cdot 140$ $0=7^2+2a*140$
so that:
$a = - \frac{49}{280} = - 0.175 \frac{m}{s^{2}}$ $a=-49/280=-0.175m/s^2$
We then use Newton´s Second Law $SigmavecF=mveca$ along the $x$ direction only and with only kinetic friction $f_k$ acting to stop the object:
$-f_k=ma$
$-mu_k*N=ma$
where the normal reaction is $N="weight"=mg$
so:
$-mu_k*1*9.8=1*(-0.175)$
so:
$mu_k=0.175/9.8=0.0178~~0.02$

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If a $1 k g$ $1 kg$ object moving at $7 \frac{m}{s}$ $7 m/s$ slows down to a halt after moving $140 m$ $140 m$ , what is the coefficient of kinetic friction of the surface that the object was moving over?

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If a 1 kg1kg1 kg object moving at 7 m/s7ms7 m/s slows down to a halt after moving 140 m140m140 m, what is the coefficient of kinetic friction of the surface that the object was moving over?

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If a $1 k g$ $1 kg$ object moving at $7 \frac{m}{s}$ $7 m/s$ slows down to a halt after moving $140 m$ $140 m$ , what is the coefficient of kinetic friction of the surface that the object was moving over?