A coin is placed 32 cm from the center of a horizontal turntable, initially at rest. The turntable then begins to rotate. When the speed of the coin is 110 cm/s (rotating at a constant rate), the coin just begins to slip. The acceleration of gravity is 980 cm/s^2 . What is the coefficient of static friction between the coin and the turntable?

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usmanbiu usmanbiu · Answer 1 · 2019-12-19T15:33:59+01:00

Answer:

0.39

Explanation:

distance from the center (r) = 32 cm = 0.32 m

speed of the coin (v) = 110 cm/s = 1.1 m/s

acceleration due to gravity (g) = 980 m/s^{2} = 9.8 m/s^{2}

find the coefficient of static friction (k) between the coin and the turn table

frictional force = kmg

before the table begins to move, the frictional force balances the centripetal force ([tex]\frac{mv^{2} }{r}[/tex])

therefore

frictional force = centripetal force

kmg = [tex]\frac{mv^{2} }{r}[/tex]

kg = [tex]\frac{v^{2} }{r}[/tex]

k = [tex]\frac{v^{2} }{r}[/tex] ÷ g

k = [tex]\frac{1.1^{2} }{0.32}[/tex] ÷ 9.8 = 0.39