Physics 43 HW 3 Serway Chapter 39 & Knight Chapter 37

Physics 43 HW 3

Serway Chapter 39 & Knight Chapter 37

 

Serway

 

7

th

 

Edition

 

Chapter

 

39

 

Problems:

 

15,

 

18,

  

52,

 

57,

 

60,

 

65

 

 

15.   Review problem. An alien civilization occupies a brown dwarf, nearly stationary relative to the Sun,  several lightyears away. The extraterrestrials have come to love original broadcasts of I Love Lucy, on our  television channel 2, at carrier frequency 57.0 MHz. Their line of sight to us is in the plane of the Earth’s orbit.  Find the difference between the highest and lowest frequencies they receive due to the Earth’s orbital motion  around the Sun.  

 

P39.15 The orbital speed of the Earth is as described by

∑

F=m a:

2 2 S E E G m m m v r r =

(

11 2 2

)(

30

)

4 11 6.67 10 N m kg 1.99 10 kg 2.98 10 m s 1.496 10 m S G m v r − × ⋅ × = = = × × .

The maximum frequency received by the extraterrestrials is

(

) (

(

4

) (

) (

8

)

)

6 6 obs source _{4 8} 1 2.98 10 m s 3.00 10 m s 1 57.0 10 H z 57.005 66 10 H z 1 _{1 2.98 10 m s 3.00 10 m s} v c f f v c + × × + = = × = × − − × × .

The minimum frequency received is

(

6

) (

(

4

) (

) (

8

)

)

6 obs source _{4 8} 1 2.98 10 m s 3.00 10 m s 1 57.0 10 H z 56.994 34 10 H z 1 1 2.98 10 m s 3.00 10 m s v c f f v c − × × − = = × = × + + × × .

The difference, which lets them figure out the speed of our planet, is

(

)

6 4

57.005 66−56.994 34 ×10 H z= 1.13 10 H z× .  

 

18.  A physicist drives through a stop light. When he is pulled over, he tells the police officer that the Doppler  shift made the red light of wavelength 650 nm appear green to him, with a wavelength of 520 nm. The police  officer writes out a traffic citation for speeding. How fast was the physicist traveling, according to his own  testimony?  

P39.18 For the light as observed

obs source obs source 2 source obs 7 1 1 1 1 1 650 nm 1 1.25 1.562 1 520 nm 1 0.562 1 1.562 1.562 0.220 2.562 0.220 6.59 10 m s v c v c c c f f v c v c v c v c v c v c v v v c c c v c λ λ λ λ + + = = = − − + + = = = = − − + = − = = = = ×            

52. Ted and Mary are playing a game of catch in frame S’, which is moving at 0.600c with respect to frame S,  while Jim, at rest in frame S, watches the action. Ted throws the ball to Mary at 0.800c (according to Ted) and their  separation (measured in S’) is 1.80 × 1012 _{m. (a) According} 

to Mary, how fast is the ball moving? (b) According to  Mary, how long does it take the ball to reach her? (c)  According to Jim, how far apart are Ted and Mary, and  how fast is the ball moving? (d) According to Jim, how long  does it take the ball to reach Mary?  

 

   

P39.52 (a) Since Mary is in the same reference

frame, S′, as Ted, she measures the ball to have the same speed Ted observes, namely

0.800 x u′ = c . (b)

(

)

12 3 8 1.80 10 m 7.50 10 s 0.800 3.00 10 m s p x L t u × ′ Δ = = = × ′ _× (c)

(

)

(

)

2 2 12 12 2 2 0.600 1 1.80 10 m 1 1.44 10 m p c v L L c c = − = × − = ×

Since v=0.600c andu′ = −_x 0.800c, the velocity Jim measures for the ball is

(

) (

)

(

)(

)

2 0.800 0.600 0.385 1 0.800 0.600 1 x x x c c u v u c u v c ′+ − + = = = − + − ′ +

(d) Jim measures the ball and Mary to be initially separated by Mary’s motion at 0.600c and the ball’s motion at 0.385c nibble into this distance from both ends. The gap closes at the rate , so the ball and catcher meet after a time

12 1.44 10 m.× 0.600c+0.385c=0.985c

(

)

12 3 8 1.44 10 m 4.88 10 s 0.985 3.00 10 m s t × Δ = = × ×      

60. Imagine that the entire Sun collapses to a sphere of radius Rg such that the work required to remove a small 

mass m from the surface would be equal to its rest energy mc2_{. This radius is called the gravitational radius for the} 

Sun. Find Rg. (It is believed that the ultimate fate of very massive stars is to collapse beyond their gravitational 

radii into black holes.)   

P39.60 If the energy required to remove a mass m from the surface is equal to its rest energymc2,

then GMs _=mc2 g m R and

(

)(

)

(

)

11 2 2 30 2 ₈ 2 6.67 10 N m kg 1.99 10 kg 3.00 10 m s s g GM R = = c − × ⋅ × × 3 1.47 10 m 1.47 km g R = × =    

57. An alien spaceship traveling 0.600c toward the Earth launches a landing craft with an advance guard of  purchasing agents and physics teachers. The lander travels in the same direction with a speed of 0.800c relative to  the mother ship. As observed on the Earth, the spaceship is 0.200 ly from the Earth when the lander is launched.  (a) What speed do the Earth observers measure for the approaching lander? (b) What is the distance to the Earth  at the time of lander launch, as observed by the aliens? (c) How long does it take the lander to reach the Earth as  observed by the aliens on the mother ship? (d) If the lander has a mass of 4.00 × 105 _{kg, what is its kinetic energy} 

as observed in the Earth reference frame?  

P39.57 (a) Take the spaceship as the primed frame, moving toward the right atv= +0.600c.

Thenu_x′ = +0.800c, and

(

)

2

(

)(

)

0.800 0.600 0.946 1 0.800 0.600 1 x x x u v c c u c u v c ′ + + = = = + ′ + (b) L Lp γ = :

(

)

(

)

2 0.200 ly 1 0.600 0.160 ly L= − =

(c) The aliens observe the 0.160-ly distance closing because the probe nibbles into it from one end at 0.800c and the Earth reduces it at the other end at 0.600c.

Thus, time 0.160 ly 0.114 yr 0.800c 0.600c = = + (d) 2 2 2 1 1 1 K m u c ⎛ ⎞ ⎜ ⎟ = − ⎜ ₋ ⎟ ⎝ ⎠ c :

(

)

(

)(

)

2 5 8 2 1 1 4.00 10 kg 3.00 10 m s 1 0.946 K ⎛ ⎞ ⎜ ⎟ = − × × ⎜ ₋ ⎟ ⎝ ⎠ 22 7.50 10 J K= ×

65. Suppose our Sun is about to explode. In an effort to escape, we depart in a spacecraft at v = 0.800c and head  toward the star Tau Ceti, 12.0 ly away. When we reach the midpoint of our journey from the Earth, we see our  Sun explode and, unfortunately, at the same instant we see Tau Ceti explode as well. (a) In the spacecraft’s frame  of reference, should we conclude that the two explosions occurred simultaneously? If not, which occurred first?  (b) What If? In a frame of reference in which the Sun and Tau Ceti are at rest, did they explode simultaneously? If  not, which exploded first?  

P39.65 We choose to write down the answer to part (b) first.

(b) Consider a hermit who lives on an asteroid halfway between the Sun and Tau Ceti, stationary with respect to both. Just as our spaceship is passing him, he also sees the blast waves from both explosions. Judging both stars to be stationary, this observer concludes

that the tw o stars blew up simultaneously .

(a) We in the spaceship moving past the hermit do not calculate the explosions to be simultaneous. We measure the distance we have traveled from the Sun as

(

)

(

)

2 2 1 6.00 ly 1 0.800 3.60 ly p v L L c ⎛ ⎞ = −_{⎜ ⎟} = − = ⎝ ⎠

We see the Sun flying away from us at 0.800c while the light from the Sun approaches at 1.00c. Thus, the gap between the Sun and its blast wave has opened at 1.80c, and the time we

calculate to have elapsed since the Sun exploded is

3.60 ly

2.00 yr 1.80c =

We see Tau Ceti as moving toward us at 0.800c, while its light approaches at 1.00c, only 0.200c

faster. We measure the gap between that star and its blast wave as 3.60 ly and growing at 0.200c. We calculate that it must have been opening for

3.60 ly

18.0 yr 0.200c =

Knight

 

2

nd

  

Edition

 

Chapter

 

37

 

Exercises

 

&

 

Problems:

 

12,

 

13,

 

15,

 

54,

 

61,

 

72

 

 

37.12. You are standing at x = 9.0km.Lightning bolt 1 strikes at x = 0 km and lightning bolt 2 strikes at 12.0km. Both flashes reach your eye at the same time. Your assistant is standing at x = 3.0km. Does your assistant see the flashes at the same time? If not, which does she see first and what is the time difference between the two?

Model: You and your assistant are in the same reference frame. Light from the two lightning bolts travels toward you and your

assistant at 300 m/μs. You and your assistant have synchronized clocks. “flashes reach your eye” means that you see the lightning

strikes as simultaneous but since they are at different distances, you know that they struck at different times.

Visualize:

Solve: Bolt 1 is 9.0 km away, so it takes 30 μs for the light to reach you

(

9000 m 300 m/ s÷ μ

)

. Bolt 2 is 3.0 km away from you, so

it takes 10 μs to reach you. Since both flashes reach your eye at the same time, event 1 happened 20 μs before event 2. If event 1

happened at time t1= 0 then event 2 happened at time t2= 20 μs. For your assistant, it takes light from bolt 1 10 μs to reach her and

light from bolt 2 30 μs to reach her. She sees the flash from bolt 1 at t= 10 μs and the flash from bolt 2 at t= 50 μs. That is, your

assistant sees flash 2 40 μs after she sees flash 1.

37.13. You are standing at x = 9.0km.Lightning bolt 1 strikes at x = 0 km and lightning bolt 2 strikes at 12.0km. You see the flash from bolt 2 at t= 10 μs and the flash from bolt 1 at t = 50μs. Your assistant is standing at x = 3.0km. Does your assistant see the flashes as simultaneous? If not, which does she see first and what is the time difference between the two?

Model: You and your assistant are in the same reference frame. Light from the two lightning bolts travels toward you and your

assistant at 300 m/μs. You and your assistant have synchronized clocks.

Visualize: same as above

Solve: Bolt 1 hits 9.0 km away, so the light takes 30 µs to reach you (9000 m ÷ 300 m/μs). You see this flash at t =

50 μs, so the lightning hit at t1= 20 μs. Light from bolt 2, which hits 3.0 km away, takes 10 μs to reach you. You see it at 10 μs, so

the lightning hit at t2= 0 μs. The strikes are not simultaneous. Bolt 2 hits first, 20 μs before bolt 1. Your assistant is in your inertial

reference frame, so your assistant agrees that bolt 2 hits first, 20 μs before bolt 1.

Assess: A simple calculation would show that your assistant sees the flashes at the same time. When the flashes are seen is not the

same as when the events happened.

37.15. Model: Your personal rocket craft is an inertial frame moving at 0.9c relative to stars A and B.

Solve: In your frame, star A is moving away from you and star B is moving toward you. When you are exactly halfway between

them, both the stars explode simultaneously. The flashes from the two stars travel toward you with speed c. Because (i) you are at

rest in your frame, (ii) the explosions are equally distant, and (iii) the light speed is c, independent of the fact that the stars are

37.54. Model: Let the earth be frame S and the rocket be frame S´. S´ moves with speed v relative to S.

Solve: (a) The round-trip distance is 860 ly. If the rocket takes time ∆t to make the round trip, as measured on earth, its speed (as

a fraction of c) is

860 ly 860 yr

v

c= c tΔ = Δt

where we used c = 1 ly/yr (1 light year per year). The astronaut’s elapsed time ∆t´ is the proper time, so ∆τ= 20 yr. The time

dilation equation is 2 2 2 2 20 yr 1 (860 yr/ ) ( 20 yr/ ) 1 ( / ) 1 (860 yr/ ) t t v c t t τ Δ Δ = = ⇒ − Δ = Δ − − Δ

Solving for ∆t gives ∆t= 860.2325 y, and thus

860 y 0.99973 0.99973 860.2325 y v v c c= = ⇒ =

(b) The rocket starts with rest energy Ei=mc2 and accelerates to have energy Ef=γpmc2. Thus the energy needed to accelerate the

rocket is

∆E=Ef – E1= (γp – 1)mc2

This is just the kinetic energy K gained by the rocket. We know the rocket’s speed, so

8 2 22 2 1 1 (20,000 kg)(3.0 10 m/s) 7.6 10 J 1 (0.99973) E ⎛⎜ ⎞⎟ Δ =_⎜ − _⎟ × = × − ⎝ ⎠

(c) The total energy used by the United States in 2000 was ≈1.0 × 1020 J. To accelerate the rocket would require roughly 760 times

the total energy used by the United States.

37.61. Model: Let S be the ground’s reference frame and S′ the muon’s reference frame. S′ travels with a speed of v relative to

S.

Solve: (a) The half-life of a muon at rest is 1.5 μs. That is, the half-life in the muon’s rest frame S′ is 1.5 μs. So, Δt′= Δτ =

1.5 μs. The half-life of 7.5 μs, when muons have been accelerated to very high speed, means that Δt= 7.5 μs. Thus

( )

2 2 2 2 2 1.5 s 7.5 s 1 0.20 1 1 t v v c v c τ μ μ Δ Δ = = = ⇒ − = − − c ⇒ v= 0.98c

(b) The muon’s total energy is

(

)

(

)(

)

2 2 2 31 8 p _{2 2} 1 1 207 9.11 10 kg 3.0 10 m/s 8.5 10 J 0.20 1 E mc mc v c γ ⎛ ⎞ − − = = =_{⎜ ⎟} × × = × ⎝ ⎠ − 11

37.72. Model: Mass and energy are equivalent and given by Equation 37.43.

Solve: (a) The sun radiates energy for 3.154 × 107 s per year. The amount of energy radiated per year is

(3.8 × 1026 _{J/s)(3.154 × 10}7 _{s) = 1.198 × 10}34 _J/y

Since E0=mc2, the amount of mass lost is

(

)

34 17 17 0 2 2 ₈ 1.198 10 J 1.33 10 kg 1.3 10 kg 3.0 10 m/s E m c × = = = × ≈ × ×

(b) Since the mass of the sun is 2.0 × 1030 kg, the sun loses 6.7×10−12% of its mass every year.

(c) The lifetime of the sun can be estimated to be

30 13 17 2.0 10 kg 1.5 10 years 1.33 10 kg/y T= × = × ×

The sun will not really last this long in its current state because fusion only takes place in the core and it will become a red giant when the core hydrogen is all fused.