If a $2 kg$ object moving at $5 m/s$ slows down to a halt after moving $100 m$ , what is the friction coefficient of the surface that the object was moving over?

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If a $2 kg$ object moving at $5 m/s$ slows down to a halt after moving $100 m$ , what is the friction coefficient of the surface that the object was moving over?

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Answer 1 · 2018-01-24T14:39:52

$0.0125$

Explanation:

Here,if constant retardation occurring due to frictional force is a then we can use the equation $v^2=u^2-2as$ (all symbols are bearing their conventional meaning) where, $v=0$ , $u=5m/s$ and $s=100$

So, $a = 0.125 m/s^2$

So,here amount of force acting against the motion of the object is $m×a$ or $(2×0.125) N$

And this will be equal to the amount of frictional force acting at their interface i.e $mu×N$ = $mu×mg$ (where, $mu$ = coefficient of frictional force)

So,we can write,

$mu×2×10 = 2 × 0.125$ or $mu$ = $0.0125$

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If a $2 kg$ object moving at $5 m/s$ slows down to a halt after moving $100 m$ , what is the friction coefficient of the surface that the object was moving over?

1 Answer

Explanation:

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Science

Math

Humanities

... and beyond

If a 2 kg2 kg object moving at 5 m/s5 m/s slows down to a halt after moving 100 m100 m, what is the friction coefficient of the surface that the object was moving over?

1 Answer

Explanation:

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If a $2 kg$ object moving at $5 m/s$ slows down to a halt after moving $100 m$ , what is the friction coefficient of the surface that the object was moving over?