Physics for Scientists and Engineers, Technology Update (No access codes included)
Physics for Scientists and Engineers, Technology Update (No access codes included)
9th Edition
ISBN: 9781305116399
Author: Raymond A. Serway, John W. Jewett
Publisher: Cengage Learning
bartleby

Videos

Textbook Question
Book Icon
Chapter 39, Problem 39.65P

Review. A global positioning system (GPS) satellite moves in a circular orbit with period 11 h 58 min. (a) Determine the radius of its orbit. (b) Determine its speed. (c) The nonmilitary GPS signal is broadcast at a frequency of 1 575.42 MHz in the reference frame of the satellite. When it is received on the Earth’s surface by a GPS receiver (Fig. P38.41), what is the fractional change in this frequency due to time dilation as described by special relativity? (d) The gravitational “blueshift’’ of the frequency according to general relativity is a separate effect. It is called a blueshift to indicate a change to a higher frequency. The magnitude of that fractional change is given by

Δ f f = Δ U g m c 2

where Ug is the change in gravitational potential energy of an object–Earth system when the object of mass m is moved between the two points where the signal is observed. Calculate this fractional change in frequency due to the change in position of the satellite from the Earth’s surface to its orbital position. (e) What is the overall fractional change in frequency due to both time dilation and gravitational blueshift?

Figure P38.41

Chapter 39, Problem 39.65P, Review. A global positioning system (GPS) satellite moves in a circular orbit with period 11 h 58

(a)

Expert Solution
Check Mark
To determine
 The radius of the orbit of the GPS satellite.

Answer to Problem 39.65P

The radius of the orbit of the GPS satellite in which ir revolves around the earth is 2.67×107m .

Explanation of Solution

Given info: The time period of the satellite moving around earth in the circular orbit is 11h 58min .

The value of force of gravitational constant (G)  is 6.67×1011Nm2kg-2 .

The mass of earth is 5.98×1024kg .

Explanation:

From Newton’s second law, the nature of the force between the earth and satellite system is the gravitational force between the earth and the satellite and the centripetal force between them. Both the forces should be equal so that the satellite can revolve in an orbit.

The formula to calculate gravitational force is

Fg=GMemr2 (1)

Here,

Fg is the gravitational force.

m is the mass of satellite.

Me is the mass of earth

r is the distance between the earth and the satellite.

The speed of the satellite is

v=2πrT

Here,

T is the time period of the revolution of the satellite.

The time period of the satellite is,

T=11h 58min=11h +58min=11h(3600sec1h)+58min(60sec1min)=43080sec

The formula to calculate the centripetal force is

Fc=mv2r

Here,

Fc is the centripetal force

v is the velocity of the orbiting satellite

Substitute 2πrT for v in above equation.

Fc=m(2πrT)2r (2)

Equate equation (1) and (2)

Fg=FcGMemr2=m(2πrT)2rr=(GMeT24π2)13

Substitute 6.67×1011Nm2kg-2 for G , 5.98×1024kg for Me 43080sec for T in the above equation.

r=(GMeT24π2)13=[(6.67×1011Nm2kg-2)(5.98×1024kg)(43080sec)24π2]13=2.67×107m

Thus the radius of the orbit of the satellite is 2.67×107m .

Conclusion:

Therefore, the radius of the orbit of the GPS satellite in which ir revolves around the earth is 2.67×107m .

(b)

Expert Solution
Check Mark
To determine
The speed of the orbiting satellite.

Answer to Problem 39.65P

The speed of the satellite is 3.87×103m/s .

Explanation of Solution

Explanation

The formula to calculate the speed of the satellite revolving around the earth in a circular orbit is,

v=2πrT

Substitute 2.67×107m for r and 43080sec for T in the above equation.

v=2π(2.66×107m)43080s=3.87×103ms-1

Thus the speed of the satellite is 3.87×103ms-1 .

Conclusion:

Therefore, speed of the satellite revolving around the earth in a circular orbit is 3.87×103ms-1 .

(c)

Expert Solution
Check Mark
To determine
The fractional change in the frequency due the time dilation.

Answer to Problem 39.65P

The fractional change in the received signal frequency is (8.35×1011) .

Explanation of Solution

Explanation

Given info: The broadcast signal frequency of the GPS satellite is 1575.42MHz .

The formula to calculate the frequency of any signal is,

f=1T

Here,

f is the frequency of the signal.

T is the time period.

Differentiate the above equation.

df=dTT2df=1TdTTdf=fdTTdff=dTT (3)

Thus, the fractional change in the frequency is the equal to fractional change in the time period.

The formula to calculate the fractional increase in time period is,

dTT=(γ1) (4)

Here,

γ is the relativistic factor.

The formula to calculate the relativistic factor is,

γ=11v2c2

Here,

v is the velocity of the body.

c is the speed of light.

Substitute 11v2c2 for γ in equation (4).

dTT=(11v2c21)

Substitute (11v2c21) for dTT in equation (3).

dff=(11v2c21)=111v2c2=1(1v2c2)12

Take the Binomial expansion series expansion of the term (1v2c2)12 .

dff=1[1+12(vc)2]=12(vc)2

Substitute 3.87×103ms-1 for v from part (b) solution and 3.00×108ms-1 for c in the above equation.

dff=12(3.87×103ms-13.00×108ms-1)2=8.35×1011

Thus the fractional change in frequency is 8.35×1011 .

Conclusion:

Therefore, fractional change in the received frequency is 8.34×1011 .

(d)

Expert Solution
Check Mark
To determine
The magnitude of the fractional change in frequency in terms of due to gravitational blue shift.

Answer to Problem 39.65P

The fractional change in frequency due to the fractional blue shift is +5.29×1010 .

Explanation of Solution

Explanation

The formula to calculate the gravitational blue shift is,

Δff=ΔUgmc2 (5)

Here,

ΔUg is the gravitational potential energy.

The formula to calculate the gravitational potential energy between the earth’s surface and the satellite orbit is

ΔUg=GMem(rRe)

Here,

Re is the radius of earth.

Substitute 6.67×1011Nm2kg-2 for G , 5.98×1024kg for Me , 2.67×107m for r and 6.37×106m Re for in the above equation.

ΔUg=[(6.67×1011Nm2kg-2)(5.98×1024kg)(2.67×1076.37×106m)]m=(4.76×107Jkg-1)m

Substitute (4.76×107Jkg-1)m for ΔUg in equation (5).

Δff=(4.76×107Jkg-1)mmc2

Substitute 3×108ms-1 for c   in the above equation.

Δff=(4.76×107Jkg-1)mm(3×108ms-1)2=+5.29×1010

Thus the fractional change in frequency due to the gravitational blue shift is +5.29×1010 .

Conclusion:

Therefore, fractional change in frequency due to the gravitational blue shift is +5.29×1010 .

(e)

Expert Solution
Check Mark
To determine
The overall fractional change in the frequency due to both time dilation and gravitational blue shift.

Answer to Problem 39.65P

The overall fractional change in the frequency is +4.46×1010 .

Explanation of Solution

Explanation

The overall fractional change in the frequency is the sum of the both the fractional changes.

Thus the overall fractional change is the sum of the fractional change in the frequency due to the time dilation and fractional change in the frequency due to the gravitational blue shift.

The formula to calculate the overall fractional change is,

Physics for Scientists and Engineers, Technology Update (No access codes included), Chapter 39, Problem 39.65P Overall fractional change = =12(vc)2+ΔUgmc2

Substitute 8.34×1011 for 12(vc)2 and 5.29×1010 for ΔUgmc2 .in the above question

8.34×1011+5.29×1010=+4.46×1010

Conclusion:

Therefore, the overall fractional change in the frequency is +4.46×1010 .

Want to see more full solutions like this?

Subscribe now to access step-by-step solutions to millions of textbook problems written by subject matter experts!
Students have asked these similar questions
How long should it take the voices of astronauts on the Moon to reach the Earth? Assume that the only significant time is the transit time from the Earth to the Moon, at the speed of light. Suppose that the astronaut on the surface of the Moon, the receiver on the surface of the Earth, and the centers of the Earth and the Moon are aligned. The distance between the centers of the Earth and the Moon is 384×103km, the radius of the Earth is 6.38×103km, the radius of the Moon is 1.74×103km.
You encounter a moving walkway that is 75 mm long and has a speed of 1.9 m/sm/s relative to the ground.How long would it take you to cover the 75 mm length of the walkway if, once you get on the walkway, you turn around and start walking in the opposite direction with a speed of 1.4m/s relative to the walkway?
An out-of-control alien spacecraft is diving into a star at a speed of 1.0 x 108 m/s. At what speed, relative to the spacecraft, is the starlight approaching?

Chapter 39 Solutions

Physics for Scientists and Engineers, Technology Update (No access codes included)

Ch. 39 - A spacecraft zooms past the Earth with a constant...Ch. 39 - As a car heads down a highway traveling at a speed...Ch. 39 - A spacecraft built in the shape of a sphere moves...Ch. 39 - An astronaut is traveling in a spacecraft in outer...Ch. 39 - You measure the volume of a cube at rest to be V0....Ch. 39 - Two identical clocks are set side by side and...Ch. 39 - Prob. 39.8OQCh. 39 - Which of the following statements are fundamental...Ch. 39 - A distant astronomical object (a quasar) is moving...Ch. 39 - In several cases, a nearby star has been found to...Ch. 39 - Prob. 39.2CQCh. 39 - A train is approaching yon at very high speed as...Ch. 39 - List three ways our day-to-day lives would change...Ch. 39 - Prob. 39.5CQCh. 39 - Prob. 39.6CQCh. 39 - Prob. 39.7CQCh. 39 - Prob. 39.8CQCh. 39 - Give a physical argument that shows it is...Ch. 39 - Prob. 39.10CQCh. 39 - Prob. 39.11CQCh. 39 - (i) An object is plated at a position p f from a...Ch. 39 - With regard to reference frames, how does general...Ch. 39 - Two identical clocks are in the same house, one...Ch. 39 - The truck in Figure P39.1 is moving at a speed of...Ch. 39 - In a laboratory frame of reference, an observer...Ch. 39 - The speed of the Earth in its orbit is 29.8 km/s....Ch. 39 - Prob. 39.4PCh. 39 - Prob. 39.5PCh. 39 - A meterstick moving at 0.900c relative to the...Ch. 39 - Prob. 39.7PCh. 39 - A muon formed high in the Earths atmosphere is...Ch. 39 - How fast must a meterstick be moving if its length...Ch. 39 - An astronaut is traveling in a space vehicle...Ch. 39 - A physicist drives through a stop light. When he...Ch. 39 - A fellow astronaut passes by you in a spacecraft...Ch. 39 - A deep-space vehicle moves away from the Earth...Ch. 39 - For what value of does = 1.010 0? Observe that...Ch. 39 - A supertrain with a proper length of 100 m travels...Ch. 39 - The average lifetime of a pi meson in its own...Ch. 39 - An astronomer on the Earth observes a meteoroid in...Ch. 39 - A cube of steel has a volume of 1.00 cm3 and mass...Ch. 39 - A spacecraft with a proper length of 300 m passes...Ch. 39 - A spacecraft with a proper length of Lp passes by...Ch. 39 - A light source recedes from an observer with a...Ch. 39 - Review. In 1963, astronaut Gordon Cooper orbited...Ch. 39 - Police radar detects the speed of a car (Fig....Ch. 39 - The identical twins Speedo and Goslo join a...Ch. 39 - An atomic clock moves at 1 000 km/h for 1.00 h as...Ch. 39 - Prob. 39.26PCh. 39 - A red light flashes at position xR = 3.00 m and...Ch. 39 - Shannon observes two light pulses to be emitted...Ch. 39 - A moving rod is observed to have a length of =...Ch. 39 - A rod moving with a speed v along the horizontal...Ch. 39 - Keilah, in reference frame S, measures two events...Ch. 39 - Figure P38.21 shows a jet of material (at the...Ch. 39 - An enemy spacecraft moves away from the Earth at a...Ch. 39 - A spacecraft is launched from the surface of the...Ch. 39 - Prob. 39.35PCh. 39 - Calculate the momentum of an electron moving with...Ch. 39 - Prob. 39.37PCh. 39 - Prob. 39.38PCh. 39 - Prob. 39.39PCh. 39 - Prob. 39.40PCh. 39 - Prob. 39.41PCh. 39 - Prob. 39.42PCh. 39 - An unstable particle at rest spontaneously breaks...Ch. 39 - Prob. 39.44PCh. 39 - Prob. 39.45PCh. 39 - Protons in an accelerator at the Fermi National...Ch. 39 - A proton moves at 0.950c. Calculate its (a) rest...Ch. 39 - (a) Find the kinetic energy of a 78.0-kg...Ch. 39 - A proton in a high-energy accelerator moves with a...Ch. 39 - Prob. 39.50PCh. 39 - The total energy of a proton is twice its rest...Ch. 39 - Prob. 39.52PCh. 39 - When 1.00 g of hydrogen combines with 8.00 g of...Ch. 39 - In a nuclear power plain, the fuel rods last 3 yr...Ch. 39 - The power output of the Sun is 3.85 1026 W. By...Ch. 39 - Prob. 39.56PCh. 39 - Prob. 39.57PCh. 39 - Prob. 39.58PCh. 39 - The rest energy of an electron is 0.511 MeV. The...Ch. 39 - Prob. 39.60PCh. 39 - A pion at rest (m = 273me) decays to a muon (m =...Ch. 39 - An unstable particle with mass m = 3.34 1027 kg...Ch. 39 - Prob. 39.63PCh. 39 - Prob. 39.64PCh. 39 - Review. A global positioning system (GPS)...Ch. 39 - Prob. 39.66APCh. 39 - The net nuclear fusion reaction inside the Sun can...Ch. 39 - Prob. 39.68APCh. 39 - A Doppler weather radar station broadcasts a pulse...Ch. 39 - An object having mass 900 kg and traveling at...Ch. 39 - An astronaut wishes to visit the Andromeda galaxy,...Ch. 39 - A physics professor on the Earth gives an exam to...Ch. 39 - An interstellar space probe is launched from...Ch. 39 - Prob. 39.74APCh. 39 - Prob. 39.75APCh. 39 - An object disintegrates into two fragments. One...Ch. 39 - The cosmic rays of highest energy are protons that...Ch. 39 - Spacecraft I. containing students taking a physics...Ch. 39 - Review. Around the core of a nuclear reactor...Ch. 39 - The motion of a transparent medium influences the...Ch. 39 - Prob. 39.81APCh. 39 - Prob. 39.82APCh. 39 - An alien spaceship traveling at 0.600c toward the...Ch. 39 - Prob. 39.84APCh. 39 - Prob. 39.85APCh. 39 - An observer in a coasting spacecraft moves toward...Ch. 39 - Prob. 39.87APCh. 39 - A particle with electric charge q moves along a...Ch. 39 - Prob. 39.89CPCh. 39 - Suppose our Sun is about to explode. In an effort...Ch. 39 - Owen and Dina are at rest in frame S. which is...
Knowledge Booster
Background pattern image
Physics
Learn more about
Need a deep-dive on the concept behind this application? Look no further. Learn more about this topic, physics and related others by exploring similar questions and additional content below.
Similar questions
Recommended textbooks for you
Text book image
Modern Physics
Physics
ISBN:9781111794378
Author:Raymond A. Serway, Clement J. Moses, Curt A. Moyer
Publisher:Cengage Learning
Text book image
Physics for Scientists and Engineers, Technology ...
Physics
ISBN:9781305116399
Author:Raymond A. Serway, John W. Jewett
Publisher:Cengage Learning
Text book image
Physics for Scientists and Engineers: Foundations...
Physics
ISBN:9781133939146
Author:Katz, Debora M.
Publisher:Cengage Learning
Text book image
Principles of Physics: A Calculus-Based Text
Physics
ISBN:9781133104261
Author:Raymond A. Serway, John W. Jewett
Publisher:Cengage Learning
Text book image
College Physics
Physics
ISBN:9781305952300
Author:Raymond A. Serway, Chris Vuille
Publisher:Cengage Learning
Text book image
College Physics
Physics
ISBN:9781285737027
Author:Raymond A. Serway, Chris Vuille
Publisher:Cengage Learning
Time Dilation - Einstein's Theory Of Relativity Explained!; Author: Science ABC;https://www.youtube.com/watch?v=yuD34tEpRFw;License: Standard YouTube License, CC-BY