Difficult Planetary motion problem

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Hockeystar
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Homework Statement



Planet X rotates in the same manner as the earth, around an axis through its north and south poles, and is perfectly spherical. An astronaut who weighs 950.0 N on the Earth weighs 917.0 N at the north pole of Planet X and only 860.0 N at its equator. The distance from the north pole to the equator is 1.883×104 km , measured along the surface of Planet X. How long is the day on Planet X?



Homework Equations



A lot

The Attempt at a Solution



First we solve the radius of Planet:

circumfrence = 0.5pi(r)
r=11987550m

Next we solve m: 950N/9.8 m/s2 = 96.9kg

Then the tricky tricky part. Should I assume the loss of weight is equal to the centripetal force? In that case I have

mgnorth pole - mgequator = m4pi2r2/T2
T= 9.82e7s

However my answer is incorrect. Is my theory sound? Did I make a calculation error?
 
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Hockeystar said:
mgnorth pole - mgequator = m4pi2r2/T2
Look at your units. The left hand side has units of mass*acceleration or mass*length/time2. The units on the right hand side are mass*length2/time2. Once you get into the habit of checking units, it takes but a few seconds to double check that you have consistent units. When you don't have consistent units, as is the case here, you *know* you have made an error somewhere.
 
Thanks for the help guys :-)