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Claimed by David Gamero
[[File:Voyager Path czech version.jpg|400px|thumb|right| A diagram showing the paths of Voyager 1 and 2.]]
created by Varun Rajagopal
[[File:Spacex.jpg|600px|thumb|right|space x]]
 
Escape velocity is defined as the minimum velocity required for an object to escape the gravitational force of a large object.  The sum of an object's kinetic energy and its Gravitational potential energy is equal to zero. The gravitational potential energy is negative due to the fact that kinetic energy is always positive. The velocity of the object will be be zero at infinite distance from the centre of gravity. There is no net force on an object as it escapes and zero acceleration is perceived.


Edited by Engi Alabady, Fall 2022


Escape velocity is defined as the minimum velocity required for an object to escape the gravitational force of a large object.  The sum of an object's kinetic energy and its gravitational potential energy is equal to zero. The gravitational potential energy is negative due to the fact that kinetic energy is always positive. The velocity of the object will be zero at infinite distance from the center of gravity. There is no net force on an object as it escapes and zero acceleration is perceived.Escape velocity can also be thought of as the energy needed for a large body to escape the gravitational field WITHOUT impulse.


==The Main Idea==
==The Main Idea==


The formula for escape velocity at a certain distance from a body is calculated by the formula {{cite book|last=Khatri, Poudel, Gautam|first=M.K. , P.R. , A.K.|title=Principles of Physics|year=2010|publisher=Ayam Publication|location=Kathmandu|isbn=9789937903844|pages=170, 171}}
The formula for escape velocity at a given distance from a body is calculated by the formula
:<math>v_e = \sqrt{\frac{2GM}{r}},</math>
:<math>v_e = \sqrt{\frac{2GM}{r}},</math>


where ''G'' is the universal [[gravitational constant]] (''G''&nbsp;=&nbsp;6.67×10<sup>−11</sup>&nbsp;m<sup>3</sup>&nbsp;kg<sup>−1</sup>&nbsp;s<sup>−2</sup>), ''M'' is the mass of the large body to be escaped, and ''r'' the distance from the [[center of mass]] of the mass ''M'' to the object.<ref group="nb"> This equation assumes there is no atmospheric friction and is an ideal scenario with sending an object on a trajectory. In fact, the escape velocity stated here should actually be called escape speed due to the fact that the quantity to be calculated is completely independent of direction. Notice that the equation does not include the mass of the object escaping a large body as escape velocity is only dependent on gravitational force. We also assume that an object is escaping from a uniform body.  
where <math>G</math> is the universal [[gravitational constant]] (<math>G = 6.7\times 10^{-11} \text{N}\cdot\text{m}^2 / \text{kg}^2</math>), <math>M</math> is the mass of the large body to be escaped, and <math>r</math> the distance from the [[center of mass]] of the mass <math>M</math> to the object. This equation assumes there are no other forces acting on either body. As a side note, the escape velocity stated here could really be called escape speed due to the fact that the quantity is independent of direction. Notice that the equation does not include the mass of the orbiting body.  


===A Mathematical Model===
===A Mathematical Model===


When we model escape velocity or speed, we have to assume that an object must have a velocity an infinite distance away from a large body allowing us to find the very minimum speed to escape that large body a certain distance away. "Escape velocity" is the speed needed to go from some distance away from a large body to an infinite distance, ending at infinity with a final speed of zero. This dismisses any initial acceleration. This means that a modern spacecraft for example with propellers does not follow these assumptions.
When we model escape velocity, we consider the situation when an object's velocity takes it to a point an infinite distance away. The lowest possible escape velocity has a final speed of zero, and any speed higher results in a nonzero final speed. To derive the formula for the escape velocity, the energy principle is used, and we assume that the only two objects in our system are the orbiting body and the planet.  
 
In our system, the energy principle states that


:<math>(K + U_g)_i = (K + U_g)_f \,</math>
:<math>(K + U_g)_i = (K + U_g)_f \,</math>


''K''<sub>''ƒ''</sub> = 0 because final velocity is zero, and ''U''<sub></sub> = 0 because its final distance is expressed as infinity, therefore
When finding the minimum escape velocity, <math>K-f = 0 </math> because we take the final velocity to be zero, and <math>U_{gf} = 0 </math> because its final distance is expressed as infinity, therefore


:<math>\frac{1}{2}mv_e^2 + \frac{-GMm}{r} = 0 + 0</math>
:<math>(K + U_g)_i = \frac{1}{2}mv_e^2 + \frac{-GMm}{r} = 0</math>


<!-- extra space between two lines of "displayed" [[TeX]] that were crowding each other and impairing legibility -->
Solving for <math>v_e</math> yields:


:<math>v_e = \sqrt{\frac{2GM}{r}}</math>
:<math>v_e = \sqrt{\frac{2GM}{r}}</math>
Note that because both the kinetic and potential energy terms contain a common factor <math>m</math>, the final escape velocity is independent of the mass of the orbiting body.
'''Bound versus unbound systems'''
When an object is orbiting a massive body, it can be in one of two states: bound and unbound. If the object is in a bound state, we see an elliptical trajectory, in which the orbiting body never escapes the gravitational influence of the more massive body. In an unbound state, however, we observe a parabolic or hyperbolic trajectory, in which the object is able to escape the gravitational influence of the orbiting body and escape to infinity. The diagram to the left shows an unbound system, in which the sum of the kinetic and potential energy of the orbiting body is greater then 0. As distance goes to infinity in this system, gravitational potential energy approaches zero, but the object retains a positive kinetic energy, and therefore a positive velocity. The image on the right shows a bound system, in which the sum of the kinetic and potential energy is negative. In this system, kinetic energy reaches zero at a specific maximum distance, at which point the object begins to fall back towards the massive body, never to escape.
[[File:Ediagram_MSPaint_UnboundSystemWithExtraEnergy.png|500px|thumb|left|The energy diagram of an unbound system, in which the object has excess kinetic energy. The vertical axis represents energy, while the horizontal axis represents distance. At exactly the escape velocity, the sum of <math>K</math> and <math>U</math> is exactly 0.]]
[[File:EDiagram_MSPaint_BoundSystem.png|500px|thumb|right|The energy diagram of a bound system, in which the object has insufficient kinetic energy to escape. The vertical axis represents energy, while the horizontal axis represents distance. ]]
<br clear=all>


===A Computational Model===
===A Computational Model===


How do we visualize or predict using this topic. Consider embedding some vpython code here [https://trinket.io/glowscript/31d0f9ad9e Teach hands-on with GlowScript]
Here is simulation that can be used to experiment with different factors that affect escape velocity:https://phet.colorado.edu/en/simulation/gravity-and-orbits.
<div style="width:100%;height:500px">
 
In the following diagrams the differences highlight the energy needed to escape a gravitational field. When the total energy (kinetic plus gravitational) is equal to or greater than zero then the object can escape, this is called an unbound system (illustrated in left energy diagram). This comes from that there is at least enough kinetic energy to offset the negative potential energy, so the object ends at a distance of <math>r=\infty</math> with no gravitational potential energy, which means it has escaped and its initial velocity was equal to or greater than the escape velocity. On the other hand in the image on the right, kinetic energy reaches zero at a radius where potential energy is still negative, which means that the object has a velocity of zero but is still being pulled by gravity resulting in it getting dragged back in and never being able to escape. In this bound system the initial velocity was less than the escape velocity.
==Examples==
[[File:Ediagram_MSPaint_UnboundSystemWithExtraEnergy.png|500px|thumb|left|EnergyDiagramUnboundSystem]][[File:EDiagram_MSPaint_BoundSystem.png|500px|thumb|right|EnergyDiagramBoundSystem]]
 
===Simple===
 
'''Question 1'''
 
Compute the escape velocity for Earth if its mass is <math>5.98 \times 10^{24} \text{kg}</math> and its radius is <math>6.37 \times 10^{6} \text{m}</math>.
 
'''Solution 2'''
 
<math>
v_e = \sqrt{\frac{2GM}{r}} \\
= \sqrt{\frac{2(6.7\times 10^{-11} \text{N}\cdot\text{m}^2 / \text{kg}^2)(5.98\times 10^{24} \text{kg})}{(6.37\times 10^6 \text{m})}}\\
= 1.12 \times 10^4 \text{m/s}
</math>
 
</div>
 
'''Question 2'''
 
Determine the escape velocity of the moon if mass is 7.35 × 10^22 kg and the radius is 1.5 × 10^6 m.
 
'''Solution 2'''
 
<math>
v_e = \sqrt{\frac{2GM}{r}} \\
= \sqrt{\frac{2(6.7\times 10^{-11} \text{N}\cdot\text{m}^2 / \text{kg}^2)(7.35\times 10^{22} \text{kg})}{(1.5\times 10^6 \text{m})}}\\
= 7.59 \times 10^5 \text{m/s}
</math>
 
</div>
</div>
==Examples==


[[File:prob.jpg|600px|thumb|center|example]]
===Middling===
 
'''Question 1'''
 
If the escape velocity of a planet with the same mass as Earth is greater than the escape velocity of Earth, is the planet larger or smaller than Earth?
 
'''Solution 1'''
 
Given the formula: <math> v_e = \sqrt{\frac{2GM}{r}} </math>
 
And rearranging for radius: <math> r = \frac{2GM}{v^2_e} </math>
 
We can see that since the denominator of the faction is larger with a constant numerator, then the radius must be smaller. Therefore, the planet is smaller than Earth.
 
'''Question 2'''
 
The potential energy of a 3kg mass on Earth is -34J. What will be its escape velocity?
 
'''Solution 2'''
 
The escape velocity is the minimum velocity required to escape the gravitational field of a planet, so the object must have kinetic energy greater than or equal to its potential energy.
 
34 = 1/2 * m * v^2
v^2 = (2*34)/3
v = 4.76 m/s
 
===Difficult===
 
'''Question 1'''
 
The radius of Jupiter is <math>71.5\times 10^6 \text{m}</math>, and its mass is <math>1900\times 10^{24} \text{kg}</math>. What is the escape speed of an object launched straight up from just above the atmosphere of Jupiter?


===Escaping Jupiter's Atmosphere===
'''Solution 1'''
The radius of Jupiter is 71500e3 m, and its mass is 1900e24 kg. What is the escape speed of an object launched straight up from just above the atmosphere of Jupiter?


<div style="">
<div style="">
Line 47: Line 114:


\Delta E = 0\\
\Delta E = 0\\
\\
v_i = ?\\
v_i = ?\\
v_f = 0 m/s\\
v_f = 0 \text{m/s}\\
r_i = 71500e3 m\\
r_i = 71.5\times 10^6 \text{m}\\
r_f = \infty\\
r_f = \infty\\
m = mObject\\
m = m_{Object}\\
M = mJupiter (1900e24 kg)\\
M = m_{Jupiter} = 1900\times 10^{24} \text{kg} \\


</math>
</math>
Line 62: Line 128:


\Delta E =  W  +  Q\\
\Delta E =  W  +  Q\\
\Delta E = (0) + (0)\\
\Delta E = 0 + 0 = 0\\
\Delta E = 0\\
\Delta K + \Delta U = 0\\
(\Delta K + \Delta U) = 0\\
\frac{1}{2}m(v_f^2-v_i^2) + (\frac{-GMm}{r_f} - \frac{-GMm}{r_i}) = 0\\
\frac{1}{2}m(v_f^2-v_i^2) + (\frac{-GMm}{r_f} - \frac{-GMm}{r_i}) = 0\\
\frac{1}{2}m((0)-v_i^2) + ((0) - \frac{-GMm}{r_i}) = 0\\
\frac{1}{2}m(0-v_i^2) + (0 - \frac{-GMm}{r_i}) = 0\\
\frac{-1}{2}mv_i^2 + \frac{GMm}{r_i} = 0\\
-\frac{1}{2}mv_i^2 + \frac{GMm}{r_i} = 0\\
\frac{GMm}{r_i} = \frac{1}{2}mv_i^2\\
\frac{GMm}{r_i} = \frac{1}{2}mv_i^2\\
\frac{GM}{r_i} = \frac{1}{2}v_i^2\\
\frac{GM}{r_i} = \frac{1}{2}v_i^2\\
v_i = \sqrt{\frac{2GM}{r_i}}\\
v_i = \sqrt{\frac{2GM}{r_i}}\\
     = \sqrt{\frac{2(6.7e-11)(1900e24)}{(71500e3)}}\\
     = \sqrt{\frac{2(6.7\times 10^{-11} \text{N}\cdot\text{m}^2 / \text{kg}^2)(1900\times 10^{24} \text{kg})}{(71.5\times 10^6 \text{m})}}\\
     = 59672.767m/s
     = 5.97 \times 10^4 \text{m/s}
</math>
 
'''Question 2'''
 
Jupiter has 318 times the mass of the Earth, and its radius is 11.2 times that of the Earth. Calculate the escape velocity of a body from Jupiter’s surface assuming that the escape velocity from Earth’s surface is 11.2 Km/s.
 
'''Solution 2'''
 
<math>
 
v_e = \sqrt{\frac{2GM_e}{r_e}}= 11.2 km/s
</math>
 
<math>
 
v_j = \sqrt{\frac{2GM_j}{r_j}}
</math>
 
<math>
M_j = 318M_e \text{ and } R_j = 11.2R_e
</math>
 
Therefore,
 
<math>
v_j = \sqrt{\frac{2G(318M_r)}{11.2R_e}} = 59.7 km/s
</math>
</math>


</div>


Question 3:
Compute the “escape” velocity for Earth if its mass is 5.98 x 1024 kg,
its radius is 6.37 x 106
m, and G = 6.67 x 10-11 N-m2
/Kg2
. The
abbreviation “N” represents Newton, a unit of force in the metric
system. Using these constraints, the answers will be in m/s.
1.2523265x10
4 ≈ 1.12x10
The escape velocity for Earth is approximately 1.12 x 104
m/s.
==Connectedness==
==Connectedness==
In space, a rocket will not actually be able to travel an infinite distance once it escapes the gravitational pull of Earth, but rather must escape the gravitational pull of the Sun, the planets in our solar system, and every other larger body. The calculation of escape velocity assumes many conditions and cannot be completely applied to real life. However, if a spacecraft does not overcome the gravitational force of Earth, it will not be able to escape Earth and would likely fall back to Earth with disaster as there are many other conditions of leaving the atmosphere. This equation shows the conservation of energy which is a very important principle that is universal for all physics and science.


In real life, escape velocity is not as easy to calculate as in the above examples. The primary complicating factor is the fact that there are more than two bodies in the universe, so in systems with multiple massive attracting bodies, escape velocity can become more complicated. One example is the escape velocity of an object from Earth: an object that achieves the escape velocity of Earth could theoretically escape Earth's influence, but it would remain in orbit around the sun unless its speed were much greater. The concept of escape velocity is widely used in orbital mechanics and rocketry and is critical for the planning of space missions.
==History==
Escape velocity stems from the concept of gravity, which was pioneered by Sir Issac Newton. Escape velocity became more important as people looked towards putting objects and people in space. Luna 1, launched in 1959 by the Soviets, was the first man-made object to surpass escape velocity from Earth.


==See Also==
===Further Reading===
https://www.nasa.gov/audience/foreducators/k-4/features/F_Escape_Velocity.html
http://www.qrg.northwestern.edu/projects/vss/docs/space-environment/2-whats-escape-velocity.html
https://www.sciencedirect.com/topics/engineering/escape-velocity.


===External links===
===External links===
Line 88: Line 204:


==References==
==References==
“A Brief History of Space Exploration.” The Aerospace Corporation, The Aerospace Corporation, 1 June 2018, aerospace.org/article/brief-history-space-exploration.
"Escape Velocity | Physics." Encyclopedia Britannica Online. Encyclopedia Britannica, n.d. Web. 05 Dec. 2015.  
"Escape Velocity | Physics." Encyclopedia Britannica Online. Encyclopedia Britannica, n.d. Web. 05 Dec. 2015.  
[http://www.britannica.com/science/escape-velocity]
[http://www.britannica.com/science/escape-velocity]
"Escape Velocity." Wikipedia. Wikimedia Foundation, n.d. Web. 05 Dec. 2015.
[https://en.wikipedia.org/wiki/Escape_velocity]
“Escape Velocity Formula - with Solved Examples.” Physicscatalyst's Blog, 4 Nov. 2022, https://physicscatalyst.com/article/escape-velocity-formula/#.Y41KpuzMKrc.


Giancoli, Douglas C. "Physics for Scientists and Engineers with Modern Physics." Google Books. Google, n.d. Web. 05 Dec. 2015.  
Giancoli, Douglas C. "Physics for Scientists and Engineers with Modern Physics." Google Books. Google, n.d. Web. 05 Dec. 2015.  
[https://books.google.com/books?id=xz-UEdtRmzkC&pg=PA199&dq=escape+velocity+gravitational+potential+energy&hl=en&sa=X&ved=0CC0Q6AEwA2oVChMI8_PO4_PBxwIVBJmICh3T6gGl#v=onepage&q=escape%20velocity%20gravitational%20potential%20energy&f=false]
[https://books.google.com/books?id=xz-UEdtRmzkC&pg=PA199&dq=escape+velocity+gravitational+potential+energy&hl=en&sa=X&ved=0CC0Q6AEwA2oVChMI8_PO4_PBxwIVBJmICh3T6gGl#v=onepage&q=escape%20velocity%20gravitational%20potential%20energy&f=false]


"Escape Velocity." Wikipedia. Wikimedia Foundation, n.d. Web. 05 Dec. 2015.
“Gravity And Orbits.” PhET, University of Colorado Boulder, 5 Aug. 2019, phet.colorado.edu/en/simulation/gravity-and-orbits.
[https://en.wikipedia.org/wiki/Escape_velocity]
 
“Luna 1.” Wikipedia, Wikimedia Foundation, 15 Nov. 2022, https://en.wikipedia.org/wiki/Luna_1.


Velocity, Escape, and ©200. ESCAPE VELOCITY EXAMPLES (n.d.): n. pag. 13 June 2003. Web. 5 Dec. 2015.
Velocity, Escape, and ©200. ESCAPE VELOCITY EXAMPLES (n.d.): n. pag. 13 June 2003. Web. 5 Dec. 2015.
[http://www.beaconlearningcenter.com/documents/1483_01.pdf]
[http://www.beaconlearningcenter.com/documents/1483_01.pdf]
[[Category:Energy]]

Latest revision as of 23:02, 4 December 2022

A diagram showing the paths of Voyager 1 and 2.

Edited by Engi Alabady, Fall 2022

Escape velocity is defined as the minimum velocity required for an object to escape the gravitational force of a large object. The sum of an object's kinetic energy and its gravitational potential energy is equal to zero. The gravitational potential energy is negative due to the fact that kinetic energy is always positive. The velocity of the object will be zero at infinite distance from the center of gravity. There is no net force on an object as it escapes and zero acceleration is perceived.Escape velocity can also be thought of as the energy needed for a large body to escape the gravitational field WITHOUT impulse.

The Main Idea

The formula for escape velocity at a given distance from a body is calculated by the formula

[math]\displaystyle{ v_e = \sqrt{\frac{2GM}{r}}, }[/math]

where [math]\displaystyle{ G }[/math] is the universal gravitational constant ([math]\displaystyle{ G = 6.7\times 10^{-11} \text{N}\cdot\text{m}^2 / \text{kg}^2 }[/math]), [math]\displaystyle{ M }[/math] is the mass of the large body to be escaped, and [math]\displaystyle{ r }[/math] the distance from the center of mass of the mass [math]\displaystyle{ M }[/math] to the object. This equation assumes there are no other forces acting on either body. As a side note, the escape velocity stated here could really be called escape speed due to the fact that the quantity is independent of direction. Notice that the equation does not include the mass of the orbiting body.

A Mathematical Model

When we model escape velocity, we consider the situation when an object's velocity takes it to a point an infinite distance away. The lowest possible escape velocity has a final speed of zero, and any speed higher results in a nonzero final speed. To derive the formula for the escape velocity, the energy principle is used, and we assume that the only two objects in our system are the orbiting body and the planet.

In our system, the energy principle states that

[math]\displaystyle{ (K + U_g)_i = (K + U_g)_f \, }[/math]

When finding the minimum escape velocity, [math]\displaystyle{ K-f = 0 }[/math] because we take the final velocity to be zero, and [math]\displaystyle{ U_{gf} = 0 }[/math] because its final distance is expressed as infinity, therefore

[math]\displaystyle{ (K + U_g)_i = \frac{1}{2}mv_e^2 + \frac{-GMm}{r} = 0 }[/math]

Solving for [math]\displaystyle{ v_e }[/math] yields:

[math]\displaystyle{ v_e = \sqrt{\frac{2GM}{r}} }[/math]

Note that because both the kinetic and potential energy terms contain a common factor [math]\displaystyle{ m }[/math], the final escape velocity is independent of the mass of the orbiting body.

Bound versus unbound systems

When an object is orbiting a massive body, it can be in one of two states: bound and unbound. If the object is in a bound state, we see an elliptical trajectory, in which the orbiting body never escapes the gravitational influence of the more massive body. In an unbound state, however, we observe a parabolic or hyperbolic trajectory, in which the object is able to escape the gravitational influence of the orbiting body and escape to infinity. The diagram to the left shows an unbound system, in which the sum of the kinetic and potential energy of the orbiting body is greater then 0. As distance goes to infinity in this system, gravitational potential energy approaches zero, but the object retains a positive kinetic energy, and therefore a positive velocity. The image on the right shows a bound system, in which the sum of the kinetic and potential energy is negative. In this system, kinetic energy reaches zero at a specific maximum distance, at which point the object begins to fall back towards the massive body, never to escape.

The energy diagram of an unbound system, in which the object has excess kinetic energy. The vertical axis represents energy, while the horizontal axis represents distance. At exactly the escape velocity, the sum of [math]\displaystyle{ K }[/math] and [math]\displaystyle{ U }[/math] is exactly 0.
The energy diagram of a bound system, in which the object has insufficient kinetic energy to escape. The vertical axis represents energy, while the horizontal axis represents distance.


A Computational Model

Here is simulation that can be used to experiment with different factors that affect escape velocity:https://phet.colorado.edu/en/simulation/gravity-and-orbits.

Examples

Simple

Question 1

Compute the escape velocity for Earth if its mass is [math]\displaystyle{ 5.98 \times 10^{24} \text{kg} }[/math] and its radius is [math]\displaystyle{ 6.37 \times 10^{6} \text{m} }[/math].

Solution 2

[math]\displaystyle{ v_e = \sqrt{\frac{2GM}{r}} \\ = \sqrt{\frac{2(6.7\times 10^{-11} \text{N}\cdot\text{m}^2 / \text{kg}^2)(5.98\times 10^{24} \text{kg})}{(6.37\times 10^6 \text{m})}}\\ = 1.12 \times 10^4 \text{m/s} }[/math]

Question 2

Determine the escape velocity of the moon if mass is 7.35 × 10^22 kg and the radius is 1.5 × 10^6 m.

Solution 2

[math]\displaystyle{ v_e = \sqrt{\frac{2GM}{r}} \\ = \sqrt{\frac{2(6.7\times 10^{-11} \text{N}\cdot\text{m}^2 / \text{kg}^2)(7.35\times 10^{22} \text{kg})}{(1.5\times 10^6 \text{m})}}\\ = 7.59 \times 10^5 \text{m/s} }[/math]

Middling

Question 1

If the escape velocity of a planet with the same mass as Earth is greater than the escape velocity of Earth, is the planet larger or smaller than Earth?

Solution 1

Given the formula: [math]\displaystyle{ v_e = \sqrt{\frac{2GM}{r}} }[/math]

And rearranging for radius: [math]\displaystyle{ r = \frac{2GM}{v^2_e} }[/math]

We can see that since the denominator of the faction is larger with a constant numerator, then the radius must be smaller. Therefore, the planet is smaller than Earth.

Question 2

The potential energy of a 3kg mass on Earth is -34J. What will be its escape velocity?

Solution 2

The escape velocity is the minimum velocity required to escape the gravitational field of a planet, so the object must have kinetic energy greater than or equal to its potential energy.

34 = 1/2 * m * v^2 v^2 = (2*34)/3 v = 4.76 m/s

Difficult

Question 1

The radius of Jupiter is [math]\displaystyle{ 71.5\times 10^6 \text{m} }[/math], and its mass is [math]\displaystyle{ 1900\times 10^{24} \text{kg} }[/math]. What is the escape speed of an object launched straight up from just above the atmosphere of Jupiter?

Solution 1

System = Jupiter + object [math]\displaystyle{ \Delta E = 0\\ v_i = ?\\ v_f = 0 \text{m/s}\\ r_i = 71.5\times 10^6 \text{m}\\ r_f = \infty\\ m = m_{Object}\\ M = m_{Jupiter} = 1900\times 10^{24} \text{kg} \\ }[/math]

Starting from the Energy Principle:

[math]\displaystyle{ \Delta E = W + Q\\ \Delta E = 0 + 0 = 0\\ \Delta K + \Delta U = 0\\ \frac{1}{2}m(v_f^2-v_i^2) + (\frac{-GMm}{r_f} - \frac{-GMm}{r_i}) = 0\\ \frac{1}{2}m(0-v_i^2) + (0 - \frac{-GMm}{r_i}) = 0\\ -\frac{1}{2}mv_i^2 + \frac{GMm}{r_i} = 0\\ \frac{GMm}{r_i} = \frac{1}{2}mv_i^2\\ \frac{GM}{r_i} = \frac{1}{2}v_i^2\\ v_i = \sqrt{\frac{2GM}{r_i}}\\ = \sqrt{\frac{2(6.7\times 10^{-11} \text{N}\cdot\text{m}^2 / \text{kg}^2)(1900\times 10^{24} \text{kg})}{(71.5\times 10^6 \text{m})}}\\ = 5.97 \times 10^4 \text{m/s} }[/math]

Question 2

Jupiter has 318 times the mass of the Earth, and its radius is 11.2 times that of the Earth. Calculate the escape velocity of a body from Jupiter’s surface assuming that the escape velocity from Earth’s surface is 11.2 Km/s.

Solution 2

[math]\displaystyle{ v_e = \sqrt{\frac{2GM_e}{r_e}}= 11.2 km/s }[/math]

[math]\displaystyle{ v_j = \sqrt{\frac{2GM_j}{r_j}} }[/math]

[math]\displaystyle{ M_j = 318M_e \text{ and } R_j = 11.2R_e }[/math]

Therefore,

[math]\displaystyle{ v_j = \sqrt{\frac{2G(318M_r)}{11.2R_e}} = 59.7 km/s }[/math]


Question 3:

Compute the “escape” velocity for Earth if its mass is 5.98 x 1024 kg, its radius is 6.37 x 106

m, and G = 6.67 x 10-11 N-m2

/Kg2 . The abbreviation “N” represents Newton, a unit of force in the metric system. Using these constraints, the answers will be in m/s.

1.2523265x10 4 ≈ 1.12x10 The escape velocity for Earth is approximately 1.12 x 104

m/s. 

Connectedness

In real life, escape velocity is not as easy to calculate as in the above examples. The primary complicating factor is the fact that there are more than two bodies in the universe, so in systems with multiple massive attracting bodies, escape velocity can become more complicated. One example is the escape velocity of an object from Earth: an object that achieves the escape velocity of Earth could theoretically escape Earth's influence, but it would remain in orbit around the sun unless its speed were much greater. The concept of escape velocity is widely used in orbital mechanics and rocketry and is critical for the planning of space missions.

History

Escape velocity stems from the concept of gravity, which was pioneered by Sir Issac Newton. Escape velocity became more important as people looked towards putting objects and people in space. Luna 1, launched in 1959 by the Soviets, was the first man-made object to surpass escape velocity from Earth.

See Also

Further Reading

https://www.nasa.gov/audience/foreducators/k-4/features/F_Escape_Velocity.html

http://www.qrg.northwestern.edu/projects/vss/docs/space-environment/2-whats-escape-velocity.html

https://www.sciencedirect.com/topics/engineering/escape-velocity.

External links

http://www.scientificamerican.com/article/bring-science-home-reaction-time/

https://www.youtube.com/watch?v=7w56rwAtUZU

References

“A Brief History of Space Exploration.” The Aerospace Corporation, The Aerospace Corporation, 1 June 2018, aerospace.org/article/brief-history-space-exploration.

"Escape Velocity | Physics." Encyclopedia Britannica Online. Encyclopedia Britannica, n.d. Web. 05 Dec. 2015. [1]

"Escape Velocity." Wikipedia. Wikimedia Foundation, n.d. Web. 05 Dec. 2015. [2]

“Escape Velocity Formula - with Solved Examples.” Physicscatalyst's Blog, 4 Nov. 2022, https://physicscatalyst.com/article/escape-velocity-formula/#.Y41KpuzMKrc.

Giancoli, Douglas C. "Physics for Scientists and Engineers with Modern Physics." Google Books. Google, n.d. Web. 05 Dec. 2015. [3]

“Gravity And Orbits.” PhET, University of Colorado Boulder, 5 Aug. 2019, phet.colorado.edu/en/simulation/gravity-and-orbits.

“Luna 1.” Wikipedia, Wikimedia Foundation, 15 Nov. 2022, https://en.wikipedia.org/wiki/Luna_1.

Velocity, Escape, and ©200. ESCAPE VELOCITY EXAMPLES (n.d.): n. pag. 13 June 2003. Web. 5 Dec. 2015. [4]