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

Videos

Question
Book Icon
Chapter 7, Problem 11Q

(a)

To determine

The mass of a hypothetical spherical asteroid with a diameter equal to 2 km and is composed of rocks with an average density of 2500 kg/m3.

(a)

Expert Solution
Check Mark

Answer to Problem 11Q

Solution:

The mass of asteroid is 1.047×1013 kg.

Explanation of Solution

Given data:

The diameter of the asteroid is 2 km.

The average density of the rock is 2500 kg/m3.

Formula used:

The mass of the asteroid can be calculated by the following expression:

m=ρV

Here, m represents the mass of the asteroid, ρ represents the density of the asteroid, and V represents the volume of the asteroid.

The expression for the volume of a sphere is:

V=43πr3

Here, r represents the radius.

Conversion formula from kilometer to the meter is:

1 km = 1000 m

Explanation:

Recall the expression for calculating the volume.

V=43πr3

Substitute 1 km for r and use the conversion formula.

V=43π(1 km×(1000 m1 km))3V=43π(1000 m)3

Recall the expression of mass.

m=ρV

Substitute 43π(1000 m)3 for V and 2500 kg/m3 for ρ.

m=ρV=ρ(43πr3)=(2500 kg/m3)(43π(1000 m)3)=1.047×1013 kg

Conclusion:

Thus, the mass of asteroid is 1.047×1013 kg.

(b)

To determine

The escape velocity to escape from the surface of an asteroid, if the diameter of the spherical asteroid is 2 km and is composed of rocks with an average density of 2500 kg/m3.

(b)

Expert Solution
Check Mark

Answer to Problem 11Q

Solution:

The escape velocity of the asteroid is 1.18 m/s.

Explanation of Solution

Given data:

The diameter of the asteroid is 2 km.

The average density of the rock is 2500 kg/m3.

Formula used:

The expression for escape speed required to escape from the surface is:

vescape=2GMR

Here, vescape represents the escape speed, G represents the universal gravitational constant, M represents the mass of the body, and R represents the radius of the body.

The expression for calculating the radius is:

r=(2)

Conversion formula from kilometer to the meter is:

1 km = 1000 m

Explanation:

Refer the sub-part (a) for the value of mass that is 1.047×1013 kg.

Consider the value of G as 6.67×1011Nm2/kg2.

Recall the expression for calculating the radius.

Radius=(Diameter 2)

Substitute 2 km for diameter and also use the conversion formula.

Radius=(2 km2)×(1000 m1 km)=1000 m

Recall the expression of escape velocity.

vescape=2GMR

Substitute 6.67×1011Nm2/kg2 for G, 1.047×1013 kg for M, and 1000 m for R.

vescape=2(6.67×1011 Nm2/kg2)(1.047×1013 kg)(1000 m)=13.966×101=1.18 m/s

Conclusion:

Thus, the velocity to escape this asteroid is given as 1.18 m/s.

(c)

To determine

The situation of an astronaut, if he decided to go for a jog with the speed 3m/s on an asteroid. If the diameter of the spherical asteroid is 2 km and is composed of rocks, with an average density of 2500 kg/m3.

(c)

Expert Solution
Check Mark

Answer to Problem 11Q

Solution:

He would eventually leave the planet and float in the space.

Explanation of Solution

Introduction:

If a body attains a speed greater than the escape velocity for that surface, then it would leave the surface and acquire its position in space.

Explanation:

From sub-part (a), the value of escape speed for an asteroid is, 1.8 m/s.

The astronaut started jogging on the asteroid with the speed 3 m/s and this speed is greater than the escape velocity for the asteroid surface. So, the astronaut would eventually escape from the asteroid surface.

Conclusion:

Since the jog speed of the astronaut is greater than the escape velocity of the asteroid, he will eventually leave the planet and float in the space.

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
A 0.872 km diameter asteroid will make a crater about 10 km in diameter. Let the asteroid have a density of 3000 kg/m3 and impact the surface at 22 km/sec. Assuming a spherical asteroid, what is the kinetic energy (in joule) of the asteroid? Convert the answer to megatons of TNT, where 1 megaton is about 4 × 1015 joule. For comparison, the most energetic weapon in the human arsenal is about 100 megatons.
The dwarf planet Haumea has a mass 0.0007 times that of the Earth and a diameter on average 0.11 times that of the Earth.  What is the escape velocity of Haumea (in m/s)? (type in the numerical answer and unit, e.g. 10m/s.)
Jupiter's moon Io has active volcanoes (in fact, it is the most volcanically active body in the solar system) that eject material as high as 500 kmkm (or even higher) above the surface. Io has a mass of 8.93×10^22kg and a radius of 1821 km. How high would this material go on earth if it were ejected with the same speed as on Io? (RE = 6370 km, m_E=5.96×10^24kg) Express your answer with the appropriate units.
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
SEE MORE QUESTIONS
Recommended textbooks for you
Text book image
College Physics
Physics
ISBN:9781305952300
Author:Raymond A. Serway, Chris Vuille
Publisher:Cengage Learning
Text book image
University Physics (14th Edition)
Physics
ISBN:9780133969290
Author:Hugh D. Young, Roger A. Freedman
Publisher:PEARSON
Text book image
Introduction To Quantum Mechanics
Physics
ISBN:9781107189638
Author:Griffiths, David J., Schroeter, Darrell F.
Publisher:Cambridge University Press
Text book image
Physics for Scientists and Engineers
Physics
ISBN:9781337553278
Author:Raymond A. Serway, John W. Jewett
Publisher:Cengage Learning
Text book image
Lecture- Tutorials for Introductory Astronomy
Physics
ISBN:9780321820464
Author:Edward E. Prather, Tim P. Slater, Jeff P. Adams, Gina Brissenden
Publisher:Addison-Wesley
Text book image
College Physics: A Strategic Approach (4th Editio...
Physics
ISBN:9780134609034
Author:Randall D. Knight (Professor Emeritus), Brian Jones, Stuart Field
Publisher:PEARSON
Kepler's Three Laws Explained; Author: PhysicsHigh;https://www.youtube.com/watch?v=kyR6EO_RMKE;License: Standard YouTube License, CC-BY