Problem 4-62 Centripetal acceleration - Part 6 - B
An astronaut in training is spinning around in a device that rotates at 30 revolutions per minute. (a) If the astronaut is \(7.5\; m\) from the centre of the device, what is the magnitude of the centripetal acceleration? (b) Express the answer in terms of "\(g,\)" the magnitude of the acceleration due to gravity.
[Ans. (a) \(74\; m/s^2\) (b) \(7.6\; g\)]
Accumulated Solution
\(\text{The expression for centripetal acceleration is:} \; ac = v^2/r \\ \text {The speed} \; v = d/t\; \text{where}\; d = 47.1\; m\; \text {and} \; t = 2 \;s \\ \text{Therefore} \; v =23.6\; m/s \\ \text{and} \; a = v^2/r = 74\; m/s^2= 7.6\;g\)
Correct!
Expressed in \(g’s, \;a = 74\; (m/s^2) \times (1/9.8) (g/m/s^2) = 7.6\; g\)
You have completed this problem.