At how many revolutions per minute the ride should spin in order for the rider to feel a centripetal acceleration of about 1.5 times Earth’s gravitational acceleration?

A flying-saucer shaped fairground ride is rotating in a horizontal plane. If the rider’s circular path has a radius of 8 m
R = 8m

1 Answer
A08
Feb 21, 2017

~~13 per minute.

Explanation:

For circular motion the magnitude of the centripetal force on an object of mass m moving along a path with radius r with tangential velocity v is

F=ma_{c}=\frac {mv^{2}}{r} ......(1)
where a_c is the centripetal acceleration.

The angular velocity omega of the object about the center of the circle is related to the tangential velocity by the expression

v = romega and
omega=2pif
where f is frequency in number of cycles per second.

So that
a_c=v^2/r=romega^2 ......(2)
=>a_c=r(2pif)^2
=>4pi^2f^2r=a_c.....(3)

We are required to find f per minute for a given centripetal acceleration which is 1.5xxg.
Solving (3) for f per minute and inserting given values we get
f=sqrt(a_c/(4pi^2r))xx60
f=sqrt((1.5xx9.81)/(4pi^2xx8))xx60~~13

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