Math  /  Word Problems

QuestionIf Earth spins faster, find the period TT for centripetal acceleration a=9.8m/s2a = 9.8 \, \mathrm{m/s}^{2} using a=4π2rT2a = \frac{4\pi^{2}r}{T^{2}}. Use r=6.38×106r = 6.38 \times 10^{6} m. Output TT in minutes.

Studdy Solution
Calculate the period in minutes.
min=5056.5s60=84.275min_{\mathrm{min}} = \frac{5056.5\, \mathrm{s}}{60} =84.275\, \mathrm{min}
So, if the Earth were spinning such that the centripetal acceleration is equal to 9.m/s29. \, \mathrm{m/s}^{2}, the period of one full rotation of the Earth would be approximately84.275 minutes.

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