If a $\frac{1}{2} k g$ $1/2 kg$ object moving at $\frac{1}{4} \frac{m}{s}$ $1/4 m/s$ slows to a halt after moving $\frac{1}{8} m$ $1/8 m$ , what is the coefficient of kinetic friction of the surface that the object was moving over?

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If a $\frac{1}{2} k g$ $1/2 kg$ object moving at $\frac{1}{4} \frac{m}{s}$ $1/4 m/s$ slows to a halt after moving $\frac{1}{8} m$ $1/8 m$ , what is the coefficient of kinetic friction of the surface that the object was moving over?

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Answer 1 · 2016-02-09T16:31:49

$k ≅ 0, 408$ $k~=0,408$

Explanation:

$k : coefficient of friction$ $k : "coefficient of friction"$
$V^{2} = V_{i}^{2} - 2 \cdot a \cdot x$ $V^2=V_i^2-2*a*x$
$V = 0 if object stops.$ $V=0 " if object stops."$
$0=(1/4)^2-cancel(2)*a*1/cancel(8)$
$1/16=a/4$
$a=4 m/s^2 " acceleration"$
$k*N=m*a$
$"N: normal force contacting surface"$
$N=m*g$
$k*cancel(m)*g=cancel(m)*a$
$k=a/g$
$k=4/(9,81)$
$k~=0,408$

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If a $\frac{1}{2} k g$ $1/2 kg$ object moving at $\frac{1}{4} \frac{m}{s}$ $1/4 m/s$ slows to a halt after moving $\frac{1}{8} m$ $1/8 m$ , what is the coefficient of kinetic friction of the surface that the object was moving over?

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If a $\frac{1}{2} k g$ $1/2 kg$ object moving at $\frac{1}{4} \frac{m}{s}$ $1/4 m/s$ slows to a halt after moving $\frac{1}{8} m$ $1/8 m$ , what is the coefficient of kinetic friction of the surface that the object was moving over?