Universe
Universe
11th Edition
ISBN: 9781319039448
Author: Robert Geller, Roger Freedman, William J. Kaufmann
Publisher: W. H. Freeman
bartleby

Concept explainers

Question
Book Icon
Chapter 16, Problem 9Q

(a)

To determine

The time for which the sun must shine in order to release energy produced by the mass-energy conversion of a carbon atom with mass 2×1026 kg. The sun’s luminosity is 3.90×1026 W.

(a)

Expert Solution
Check Mark

Answer to Problem 9Q

Solution:

4.6×1036 s

Explanation of Solution

Given data:

The sun’s luminosity is 3.90×1026 W, and the mass of carbon atom is 2×1026 kg.

Formula used:

Time taken in seconds is given as:

t=EL

Here, E is the energy released due to mass-energy equivalence in joule and L is the luminosity in joule per second.

Einstein’s mass-energy conversion:

E=mc2

Where, E is the energy release from the mass of m and c is speed of light.

Explanation:

Calculating the energy released mass-energy conversion of a carbon atom:

E=mc2

Replace 2×1026 kg for m and 3×108m/s2 for c in the above equation:

E=(2×1026kg)(3×108m/s2)2=1.8×109J

Recalling the expression for time:

t=EL

Substituting 1.8×109 J for E and 3.90×1026 W for L in the above expression:

t=1.8×109 J3.90×1026 Jsecond =4.6×1036 seconds

Conclusion:

The sun must shine 4.6×1036 s to produce the energy produced by a carbon atom with mass 2×1026 kg.

(b)

To determine

The time for which the sun must shine in order to release energy produced by the mass-energy conversion of 1 kg substance. The sun’s luminosity is 3.90×1026 W.

(b)

Expert Solution
Check Mark

Answer to Problem 9Q

Solution:

2.3×1010 s

Explanation of Solution

Given data:

The sun’s luminosity is 3.90×1026 W, and the mass of the substance is 1 kg.

Formula used:

Time taken in seconds is given as:

t=EL

Here, E is the energy released due to mass-energy equivalence in joule and L is the luminosity in joule per second.

Einstein’s mass-energy conversion:

E=mc2

Where, E is the energy release from the mass of m and c is speed of light.

Explanation:

Calculating the energy released mass-energy conversion of a carbon atom:

E=mc2

Replace 1 kg for m and 3×108m/s2 for c in the above equation:

E=(1kg)(3×108m/s2)2=9×1016J

Recalling the expression for the time:

t=EL

Substituting 9.1×1016 J for E and 3.90×1026 W for L in the above expression:

t=9.1×1016 J 3.90×1026 Jsecond =2.3×1010 seconds

Conclusion:

The sun must shine for 2.3×1010 seconds to produce the energy produced by a substance with mass 1 kg.

(c)

To determine

The time for which the sun must shine in order to release energy, produced by the mass-energy conversion of Earth with mass 6×1024 kg. The sun’s luminosity is 3.90×1026 W.

(c)

Expert Solution
Check Mark

Answer to Problem 9Q

Solution:

1.4×1015 seconds

Explanation of Solution

Given data:

The sun’s luminosity is 3.90×1026 W, and the mass of Earth is 6×1024 kg.

Formula used:

Time taken in seconds is given as:

t=EL

Here, E is the energy released due to mass-energy equivalence in joule and L is the luminosity in joule per second.

Einstein’s mass-energy conversion:

E=mc2

Where, E is the energy release from the mass of m and c is speed of light.

Explanation:

Calculating the energy released mass-energy conversion of a carbon atom:

E=mc2

Replace 6×1024 kg for m and 3×108m/s2 for c in the above equation:

E=(6×1024 kg)(3×108m/s2)2=5.4×1041J

Recalling the expression for time:

t=EL

Substituting 5.4×1041 J for E and 3.90×1026 W for L in the above expression:

t=5.4×1041 J3.90×1026 Jsecond =1.4×1015 seconds

Conclusion:

The sun must shine for 1.4×1015 seconds to produce the energy produced by a substance with mass 6×1024 kg.

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
Assume that Hydrogen comprises 79% of the Sun's mass. How much mass is this? 1.57e+30 kg Only about 11% of the initial Hydrogen in the Sun is in the core where it is hot enough to burn. What was the total mass of the inital H in the core of the Sun? Hint: Use the answer above and the percent in the core to determine the total mass. Using the results from above, how much total energy is available to the Sun via nuclear fusion over its lifetime? (HINT: only 0.71% of the total mass of the available H in the core is converted into energy) Hint: E = m c^2
The Sun is estimated to have about 5.00 billion years left in it’s “normal” (main sequence) lifetime. Assume the average “burn” rate that you computed in question #1, what % of the Sun’s current mass will have been converted at the end of it’s estimated 5.00 billion years of additional life? Actually, the Sun will lose more mass due to the solar wind, CMEs, the neutrio flux etc. the answer to number one was 3.683x10^14
1 Solar constant, Sun, and the 10 pc distance! The luminosity of Sun is + 4- 1026 W - 4- 1033ergs-1, The Sun is located at a distance of m from the Earth. The Earth receives a radiant flux (above its atmosphere) of F = 1365W m- 2, also known as the solar constant. What would have been the Solar contact if the Sun was at a distance of 10 pc ? 1AU 1 1.5-+ 1011
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
Astronomy
Physics
ISBN:9781938168284
Author:Andrew Fraknoi; David Morrison; Sidney C. Wolff
Publisher:OpenStax
Text book image
Foundations of Astronomy (MindTap Course List)
Physics
ISBN:9781337399920
Author:Michael A. Seeds, Dana Backman
Publisher:Cengage Learning
Text book image
Stars and Galaxies (MindTap Course List)
Physics
ISBN:9781337399944
Author:Michael A. Seeds
Publisher:Cengage Learning
Text book image
The Solar System
Physics
ISBN:9781337672252
Author:The Solar System
Publisher:Cengage
Text book image
The Solar System
Physics
ISBN:9781305804562
Author:Seeds
Publisher:Cengage
Text book image
Stars and Galaxies
Physics
ISBN:9781305120785
Author:Michael A. Seeds, Dana Backman
Publisher:Cengage Learning