What Angle Causes an Ice Cube to Detach from a Spherical Bowl?

AI Thread Summary
An ice cube placed on an overturned spherical bowl will detach when the normal force becomes zero. The potential energy at the height of rcos(o) converts to kinetic energy as it slides down. The relationship between gravitational force and centripetal acceleration leads to the equation g = v^2/r. The calculations suggest that the angle of separation could be around 60 degrees, but there is confusion regarding the role of theta in the equations. Clarification is needed on the correct application of the equations to determine the exact angle of separation.
aimslin22
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1. An ice cube is placed on top of an overturned spherical bowl of radius r. (a half circle with a radius r). If the cube slides down from rest at the top of the bowl, at what angle(o) does it separate from the bowl? (hint: what happens to normal force when it leaves the bowl?)



Homework Equations



KE=1/2mv^2

PE=mgh

F=ma

The Attempt at a Solution



When the normal force leaves the bowl, it doesn't exist anymore.

At when the ice cube is about leave, the height is rcos(o), so PE = mgrcos(o)

When the ice cue is about to hit the ground, all the PE is Ke, so:

1/2mv^2 = mgrcos(o)
1/2v^2 = grcos(o)

the x distance the ice cube slides before separates is rsin(o)

Um...so I'm not too sure how I'm suppose do, so far I have found random information, but I don't know what to do know.
 
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aimslin22 said:
1. An ice cube is placed on top of an overturned spherical bowl of radius r. (a half circle with a radius r). If the cube slides down from rest at the top of the bowl, at what angle(o) does it separate from the bowl? (hint: what happens to normal force when it leaves the bowl?)

When the normal force leaves the bowl, it doesn't exist anymore.

At when the ice cube is about leave, the height is rcos(o), so PE = mgrcos(o)

When the ice cue is about to hit the ground, all the PE is Ke, so:

1/2mv^2 = mgrcos(o)
1/2v^2 = grcos(o)

the x distance the ice cube slides before separates is rsin(o)

Um...so I'm not too sure how I'm suppose do, so far I have found random information, but I don't know what to do know.

Hi aimslin22! :smile:

I'd have sad that your equations were right, if there wasn't some extra stuff that isn't relevant.

Yes, the ice cube loses contact when the normal force is zero, so you have to use F = ma (with the gravitational force and the centripetal acceleration)
 
so would it be
mg = mv^2/r
g = v^2/r

1/2v^2 = v^2/r*rcos(o)
1/2 = cos (o)
o = 60 degrees?
 
aimslin22 said:
so would it be
mg = mv^2/r
g = v^2/r

No … what happened to theta? :confused:
 

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