Physics: Principles with Applications
Physics: Principles with Applications
6th Edition
ISBN: 9780130606204
Author: Douglas C. Giancoli
Publisher: Prentice Hall
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Chapter 5, Problem 61P

(a)

To determine

The mass of the Jupiter using the given IO.

(a)

Expert Solution
Check Mark

Answer to Problem 61P

Solution:

The mass of Jupiter was found using the given data I0 , MJ=1.90×1027kg .

Explanation of Solution

Given:

  R=422×103kmT1=1.77Earthdays

Formula Used:

FromKepler’s third law of planetary motion:

  MJ=4π2R3G.T2

Where, R -Mean distance from Jupiter, T -periodof revolution.

  G=6.67×1011Nm2/kg2 (G is gravitational constant)

  T=(1.77 days)(86400sdays)

Calculation:

  MJ=4×π2×(422×106)36.67×10-11×(1.77×86400)2kg

  MJ=1.90×1027kg

Conclusion:The mass of Jupiter was found using the given data I0 , MJ=1.90×1027kg .

(b)

To determine

The mass of the Jupiter using the data of other three moons i.e. Europa, Ganymede and Calisto and find if all the resultants are consistent.

(b)

Expert Solution
Check Mark

Answer to Problem 61P

Solution:

The mass of Jupiter was found using the given data MJ=1.90×1027kg and the results are consistent with each other.

Explanation of Solution

Given:

Period of Europa, T= 3.55 Earth days

Period of Ganymede, T= 7.16 Earth days

Period of Callisto, T=16.7 Earth days

Mean Distance of Europa from Jupiter =671×103km

Mean Distance of Ganymede from Jupiter =1070×103km

Mean Distance of Callisto from Jupiter =1883×103km

Formula Used:

FromKepler’sthird law of planetary motion:

  MJ=4π2R3G.T2

Where, R -Radius of Jupiter T -period

  G=6.67×1011Nm2/kg2 (G is gravitational constant)

Calculation:

By using the moon Europa data is

  MJ=4×π2×(671×106)36.67×10-11×(3.55×86400)2kg

  MJ=1.90×1027kg .

By using the data for the moon Ganymede

  MJ=4×π2×(1070×106)36.67×10-11×(7.16×86400)2kg

  MJ=1.89×1027kg .

By using the data for the moon Calisto

  MJ=4×π2×(1883×106)36.67×10-11×(16.7×86400)2kg

  MJ=1.89×1027kg

Conclusion:The mass of Jupiter that was found using the given data was consistent.

Chapter 5 Solutions

Physics: Principles with Applications

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