A coin is placed 11.0 cm from the axis of a rotating turntable of variable speed. When the speed of the turntable is slowly increased, the coin remains fixed on the turntable until a rate of 31 rpm is reached, at which point the coin slides off. What is the coefficient of static friction between the coin and the turntable?

Question

bobpursley · Answer

forcefriction=mg*mu centripetalforce= mw^2r w= 31*2PIr/60 in rad/sec set them equal, solve for mu.

Anonymous · Answer

i got 3.64 but that is wrong because it is too large

bobpursley · Answer

I didn't get that, I get on the order of .1 Check your work, or post it here.

Anonymous · Answer

mu*9.8=(((30/60)(2pi11))^2)/11 mu=11.8