PHYSICS 1250 PACKAGE >CI<
PHYSICS 1250 PACKAGE >CI<
9th Edition
ISBN: 9781305000988
Author: SERWAY
Publisher: CENGAGE LEARNING (CUSTOM)
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Chapter 13, Problem 13.79CP

The oldest artificial satellite still in orbit is Vanguard I, launched March 3, 1958. It mass is 1.60 kg. Neglecting atmospheric drag, the satellite would still be in its initial orbit, with a minimum distance from the center of Earth of 7.02 Mm and a speed at this perigee point of 8.23 km/s. For this orbit, find (a) the total energy of the satellite–Earth system and (b) the magnitude of the angular momentum of the satellite. (c) At apogee, find the satellite’s speed and its distance from the center of the Earth. (d) Find the semimajor axis of its orbit. (e) Determine its period.

(a)

Expert Solution
Check Mark
To determine

The total energy of the satellite earth system.

Answer to Problem 13.79CP

The total energy of the satellite earth system is 36.764×106J .

Explanation of Solution

Given info: Mass of the satellite is 1.60kg , radius of satellite is 7.02Mm and the speed is 8.23km/s .

Write the expression for total energy of the satellite earth system.

Ei=12mv2GMmr

Here,

m is the mass of satellite.

v is the velocity.

G is the universal gravitational constant.

M is the mass of earth.

r is the radius of satellite.

Substitute 1.60kg for m , 8.23km/s for v , r for 7.02Mm , 6.67×1011Nm2/kg2 for G and 5.92×1024kg for M .

Ei=12(1.60kg)(8.23km/s×103m1km)2(6.67×1011Nm2/kg2)(5.92×1024kg)(1.60kg)7.02Mm=36.764×106J

Conclusion:

Therefore, the total energy of the satellite earth system is 36.764×106J .

(b)

Expert Solution
Check Mark
To determine

The magnitude of angular momentum of the satellite.

Answer to Problem 13.79CP

The magnitude of angular momentum of the satellite is 9.24×1010kgm2/s .

Explanation of Solution

Given info: Mass of the satellite is 1.60kg , radius of satellite is 7.02Mm and the speed is 8.23km/s .

Write the expression for angular momentum.

L=mvr

Here,

r is the radius of satellite.

m is the mass of satellite.

v is the velocity.

Substitute 1.60kg for m , 8.23km/s for v , r for 7.02Mm .

L=1.60kg×8.23km/s×103m1km×7.02Mm×106m1Mm=9.24×1010kgm2/s

Conclusion:

Therefore, the magnitude of angular momentum of the satellite is 9.24×1010kgm2/s .

(c)

Expert Solution
Check Mark
To determine

The satellite’s speed and it’s distanced from the centre of the earth at apogee.

Answer to Problem 13.79CP

The satellite’s speed is 5.58×103m/s and it’s distanced from the centre of the earth is 1.04×107m at apogee.

Explanation of Solution

Given info: Mass of the satellite is 1.60kg , radius of satellite is 7.02Mm and the speed is 8.23km/s .

Write the expression for total energy at apogee.

Ei=12mva2GMmra (1)

Here,

va is the speed at apogee.

ra is it’s distanced from the centre of the earth at apogee.

Write the expression for angular momentum at apogee.

L=mvara

Rearrange the expression for distanced from the centre of the earth at apogee.

PHYSICS 1250 PACKAGE >CI<, Chapter 13, Problem 13.79CP ra=Lmva (2)

Substitute Lmva for ra in equation (1).

Ei=12mva2GMm(Lmva)Ei=12mva2GMm2vaL

Rearrange the above equation to get a quadratic equation of va .

(12m)va2(GMm2L)vaEi=0

Substitute 1.60kg for m , 6.67×1011Nm2/kg2 for G and 5.92×1024kg for M , 36.764×106J for Ei and 9.24×1010kgm2/s for L .

(12×1.60kg)va2(6.673×1011Nm2/kg2×5.98×1024kg×(1.60kg)29.24×1010kgm2/s)va(36.764×106J)=00.8va2(11.055×103)va+36.764×106J=0

Find the smaller roots of the above equation.

va=11.055×103±(11.055×103)24×0.8×36.764×1062×0.8=5573.54m/s5.58×103m/s

Substitute 5.58×103m/s for va , 9.24×1010kgm2/s for L and 1.60kg for m in equation (2).

ra=9.24×1010kgm2/s1.60kg×5.58×103m/s=1.0349×107m1.04×107m

Conclusion:

Therefore, the satellite’s speed is 5.58×103m/s and it’s distanced from the centre of the earth is 1.04×107m .

(d)

Expert Solution
Check Mark
To determine

The semi major axis of its orbit.

Answer to Problem 13.79CP

The semi major axis of its orbit is 8.69×106m .

Explanation of Solution

Given info: Mass of the satellite is 1.60kg , radius of satellite is 7.02Mm and the speed is 8.23km/s .

Write the expression for length of major axis.

a=r+r2

Substitute 7.02×106m for r and 10.04×106m for r .

a=7.02×106m+10.04×106m2=8.69×106m

Conclusion:

Therefore, the semi major axis of its orbit is 8.69×106m .

(e)

Expert Solution
Check Mark
To determine

The period of the satellite.

Answer to Problem 13.79CP

The period of the satellite is 8060s .

Explanation of Solution

Given info: Mass of the satellite is 1.60kg , radius of satellite is 7.02Mm and the speed is 8.23km/s .

Write the expression for time period.

T=2πa3GM

Substitute 6.67×1011Nm2/kg2 for G , 8.69×106m for a and 5.92×1024kg for M .

T=2π(8.69×106m)36.67×1011Nm2/kg2×5.92×1024kg=8060s(1min60s)=134.3min134min

Conclusion:

Therefore, the period of the satellite is 134min .

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Chapter 13 Solutions

PHYSICS 1250 PACKAGE >CI<

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