Universe: Stars And Galaxies
Universe: Stars And Galaxies
6th Edition
ISBN: 9781319115098
Author: Roger Freedman, Robert Geller, William J. Kaufmann
Publisher: W. H. Freeman
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Chapter 4, Problem 54Q
To determine

The data given is in agreement with Newton’s form of Kepler’s third law.

Expert Solution & Answer
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Answer to Problem 54Q

It is found that the data for all the three satellites are in agreement with Newton’s form of Kepler’s third law

Explanation of Solution

Given:

P2=4π2a3G(m1+m2)

The universal constant of gravitation ,G=6.67×1011m3kg-1s-2

Formula used:

The Kepler’s 3rd Law, written in Newton’s form gives

P2=4π2a3G(m1+m2)

Calculation:

The Kepler’s 3rd Law, written in Newton’s form gives

P2=4π2a3G(m1+m2)m1+m2=4π2a3GP2P=(3.551days)(86400s1day)=3.068×105s

The mass of the Jupiter is 1.90×1027kg and the value of m1+m2 is equal to Jupiter’s mass

Therefore, the given data is correct.

Europa:

To calculate the total mass

m1+m2=4π2a3GP2

Converting the sidereal P from days to seconds, we get

P=(3.551days)(86400s1day)=3.068×105s

We know that,

a=6.709×108m,G=6.67×1011Nm2/kg2&P=3.068×105s

Therefore,

m1+m2=4π2 (6.709× 10 8 m)3(6.67× 10 11Nm2/kg2) (3.068× 10 5 s)2m1+m2=(5.916×1011) (1.070× 10 9 )3 (6.18× 10 5 )2kgm1+m2=1.90×1027kg

Ganymede:

Total Mass,

m1+m2=4π2a3GP2

P=(7.155days)(86400s1day)=6.18×105s

Substituting the values,

a=1.070×108m,G=6.67×1011&P=6.18×105s

m1+m2= 2 (1 .070×10 8 m)3(6 .67×10 -11 Nm2 /kg2)(6 .18×105 s)2m1+m2=(5.916×1011) (1 .070×10 9 )3 (6 .18×10 5 )2kgm1+m2=1.90×1027kg

Calisto:

Total mass,

m1+m2=4π2a3GP2

P=(16.689days)(86400s1day)=1.44×106s

Substituting,

a=1.883×109m,G=6.67×1011Nm2/kg2&P=1.44×106s

m1+m2= 2 (1 .883×10 9 m)3(6 .67×10 -11 Nm2 /kg2)(1 .44×106 s)2m1+m2=(5.916×1011) (1 .070×10 9 )3 (1 .44×10 6 )2kgm1+m2=1.90×1027kg

Conclusion:

Thus, it is proved that the data is in agreement with Newton’s form of Kepler’s third law.

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