in an old fashion amusement park ride, passengers stand inside a 5.0 m diameter

Question

in an old fashion amusement park ride, passengers stand inside a 5.0 m diameter hollow steel cylinder with their backs against the wall. the cylinder begins to rotate about a vertical axis. then the floor on which the passengers are standing suddenly drops away. if all goes well the passengers will stick to the side of the wall and not slide. clothing has a static coefficient of friction against steel in the range of .6 to 1.0 and a kinetic coefficient in the range of .4 to .7. A sign next to the exit reads "no children under 30kg" what is the minimum angular speed, in rpm, for which the ride is safe

Explanation / Answer

Diameter is 5m so R is 2.5 m. Since the person is laying against the wall and is in a cylinder we can assume that normal force is going toward the circle.

Normal force is going towards the circle / gravitational force is going dowm / and friction force is going opposite of gravitational force and perpendicular to the normal force.

Since we are looking for the minimal angular speed in which the passenger will not slide, we will use the smallest static friction coefficient (0.6).

Friction force is antiparallel to the gravitational force and the net force of the y-component is zero hence : Fs-FG = 0

Fs=FG

usFn=mg

Fn= mg/us

We also know that normal force is going towards the circle and the x-component has acceleration.

Fn= mw2r

mg/s = mw2r

w= 2.55 rad per sec

multiply omega with 60 then divide by 2 to get 24.4 RPM

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