Forces - AP Physics C Electricity & Magnetism

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Question

With what minimum velocity must a rocket be launched from the surface of the moon in order to not fall back down due to the moon's gravity?

The mass of the moon is $7.210^{22}kg$ and its radius is .

$\small G=6.6710^{-11}\frac{m^2N}{kg^2}$

Answer

Relevant equations:

$E_{total}=K+U_g$

$K = \frac{1}{2}mv^2$

$U_g=\frac{-GMm}{r}$

For the rocket to escape the moon's gravity, its minimum total energy is zero. If the total energy is zero, the rocket will have zero final velocity when it is infinitely far from the moon. If total energy is less than zero, the rocket will fall back to the moon's surface. If total energy is greater than zero, the rocket will have some final velocity when it is infinitely far away.

For the minimum energy case as the rocket leaves the surface:

$0 = K + U_g = \frac{1}{2}mv_{esc}^2 - \frac{GMm}{r}$

Rearrange energy equation to isolate the velocity term.

$v_{esc}^2 = \frac{GMm}{\frac{1}{2}mr}$

$v_{esc}=\sqrt{\frac{2GM}{r}}$

Substitute in the given values to solve for the velocity.

$v_{esc}=\sqrt{\frac{2(6.6710^{-11}\frac{m^2N}{kg^2})(7.210^{22}kg)}{(1.8*10^6m)}}=2310\frac{m}{s}\approx 2.3\frac{km}{s}$

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Question

What is the gravitational force of the sun on a $\small 5.0kg$ book on the earth's surface if the sun's mass is $2.010^{30}kg$ and the earth-sun distance is $1.510^{11}m$ ?

$\small G=6.67*10^{-11}\frac{m^2N}{kg^2}$

Answer

Relevant equations:

$|F_g| = \frac{GMm}{r^2}$

Use the given values to solve for the force.

$|F_g| = \frac{(6.6710^{-11}\frac{m^2N}{kg^2})(2.010^{30}kg)(5kg)}{(1.510^{11}m)^2}=0.0296N\approx 3.010^{-2}N$

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Question

Two spheres of equal mass are isolated in space, and are separated by a distance . If that distance is doubled, by what factor does the gravitational force between the two spheres change?

Answer

Newton's law of universal gravitation states:

$F_g=\frac{Gm_1 m_2}{r^2}$

We can write two equations for the gravity experienced before and after the doubling:

$F_{g,1} =\frac{Gm_1 m_2}{d^2}$

$F_{g,2}=\frac{Gm_1 m_2}{(2d)^2}$

The equation for gravity after the doubling can be simplified:

$F_{g,2}=\frac{Gm_1 m_2}{4d^2}$

$F_{g,2}=\frac{1}{4}\frac{Gm_1 m_2}{d^2}$

Because the masses of the spheres remain the same, as does the universal gravitation constant, we can substitute the definition of Fg1 into that equation:

$F_{g,2} = \frac{1}{4}F_{g,1}$

The the gravitational force decreases by a factor of 4 when the distance between the two spheres is doubled.

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Question

Two spheres of equal mass are isolated in space. If the mass of one sphere is doubled, by what factor does the gravitational force experienced by the two spheres change?

Answer

Newton's law of universal gravitation states that:

$F_g=\frac{Gm_1m_2}{r^2}$

We can write two equations representing the force of gravity before and after the doubling of the mass:

$F_{g,1}=\frac{Gm_{a,1}m_{b,1}}{r^2}$

$F_{g,2}=\frac{Gm_{a,2}m_{b,2}}{r^2}$

The problem gives us $m_{a,2}=2m_{a,1}$ and we can assume that all other variables stay constant.

Substituting these defintions into the second equation:

$F_{g,2}=\frac{G(2m_{a,1})m_{b,1}}{r^2}$

This equation simplifies to:

$F_{g,2}=2 \frac{Gm_{a,1}m_{b,1}}{r^2}$

Substituting the definition of Fg1, we see:

$F_{g,2}=2F_{g,1}$

Thus the gravitational forces doubles when the mass of one object doubles.

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Question

You are riding in an elevator that is accelerating upwards at , when you note that a block suspended vertically from a spring scale gives a reading of .

What does the spring scale read when the elevator is descending at constant speed?

Answer

When the elevator accelerates upward, we know that an object would appear heavier. The normal force is the sum of all the forces added up, and in this case it is . We know that the normal force has two components, a component from gravity, and a component from the acceleration of the elevator. Using this equation, we can determine the mass of the block, which doesn't change:

is acceleration due to gravity and is the acceleration of the elevator.

When substituting in the values, we get

Solving for , we get

Since the elevator is descending at constant speed, no additional force is applied, therefore the force that the spring scale reads is only due to gravity, which is calculated by:

$3.097 \cdot 9.8 = 30.35:N$

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Question

The mass and radius of a planet’s moon are $5.35\times10^{22} :kg$ and respectively.

With what minimum speed would a bullet have to be fired horizontally near the surface of this moon in order for it to never hit the ground?

(Note: You can treat the moon as a smooth sphere, and assume there’s no atmosphere.)

Answer

To do this problem we have to realize that the force of gravity acting on the bullet is equal to the centripetal force. The equations for gravitational force and centripetal force are as follows:

$F_g = \frac{GmM}{r^2}, F_c = \frac{mv^2}{r}$

If we set the two equations equal to each other, the small (mass of the bullet) will cancel out and will disappear from the right side of the equation.

$\frac{GM}{r}= v^2 \rightarrow v=\sqrt{\frac{GM}{r}}$

is the universal gravitational constant $6.67384 \times10^{-11}: m^3 kg^{-1} s^{-2}$

is given to be $5.35\times10^{22} kg$ and to be $1740:km \rightarrow 1,740,000:m$ .

If we plug everything in, we get

or

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Question

With what minimum velocity must a rocket be launched from the surface of the moon in order to not fall back down due to the moon's gravity?

The mass of the moon is $7.210^{22}kg$ and its radius is .

$\small G=6.6710^{-11}\frac{m^2N}{kg^2}$

Answer

Relevant equations:

$E_{total}=K+U_g$

$K = \frac{1}{2}mv^2$

$U_g=\frac{-GMm}{r}$

For the rocket to escape the moon's gravity, its minimum total energy is zero. If the total energy is zero, the rocket will have zero final velocity when it is infinitely far from the moon. If total energy is less than zero, the rocket will fall back to the moon's surface. If total energy is greater than zero, the rocket will have some final velocity when it is infinitely far away.

For the minimum energy case as the rocket leaves the surface:

$0 = K + U_g = \frac{1}{2}mv_{esc}^2 - \frac{GMm}{r}$

Rearrange energy equation to isolate the velocity term.

$v_{esc}^2 = \frac{GMm}{\frac{1}{2}mr}$

$v_{esc}=\sqrt{\frac{2GM}{r}}$

Substitute in the given values to solve for the velocity.

$v_{esc}=\sqrt{\frac{2(6.6710^{-11}\frac{m^2N}{kg^2})(7.210^{22}kg)}{(1.8*10^6m)}}=2310\frac{m}{s}\approx 2.3\frac{km}{s}$

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Question

What is the gravitational force of the sun on a $\small 5.0kg$ book on the earth's surface if the sun's mass is $2.010^{30}kg$ and the earth-sun distance is $1.510^{11}m$ ?

$\small G=6.67*10^{-11}\frac{m^2N}{kg^2}$

Answer

Relevant equations:

$|F_g| = \frac{GMm}{r^2}$

Use the given values to solve for the force.

$|F_g| = \frac{(6.6710^{-11}\frac{m^2N}{kg^2})(2.010^{30}kg)(5kg)}{(1.510^{11}m)^2}=0.0296N\approx 3.010^{-2}N$

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Question

Two spheres of equal mass are isolated in space, and are separated by a distance . If that distance is doubled, by what factor does the gravitational force between the two spheres change?

Answer

Newton's law of universal gravitation states:

$F_g=\frac{Gm_1 m_2}{r^2}$

We can write two equations for the gravity experienced before and after the doubling:

$F_{g,1} =\frac{Gm_1 m_2}{d^2}$

$F_{g,2}=\frac{Gm_1 m_2}{(2d)^2}$

The equation for gravity after the doubling can be simplified:

$F_{g,2}=\frac{Gm_1 m_2}{4d^2}$

$F_{g,2}=\frac{1}{4}\frac{Gm_1 m_2}{d^2}$

Because the masses of the spheres remain the same, as does the universal gravitation constant, we can substitute the definition of Fg1 into that equation:

$F_{g,2} = \frac{1}{4}F_{g,1}$

The the gravitational force decreases by a factor of 4 when the distance between the two spheres is doubled.

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Question

Two spheres of equal mass are isolated in space. If the mass of one sphere is doubled, by what factor does the gravitational force experienced by the two spheres change?

Answer

Newton's law of universal gravitation states that:

$F_g=\frac{Gm_1m_2}{r^2}$

We can write two equations representing the force of gravity before and after the doubling of the mass:

$F_{g,1}=\frac{Gm_{a,1}m_{b,1}}{r^2}$

$F_{g,2}=\frac{Gm_{a,2}m_{b,2}}{r^2}$

The problem gives us $m_{a,2}=2m_{a,1}$ and we can assume that all other variables stay constant.

Substituting these defintions into the second equation:

$F_{g,2}=\frac{G(2m_{a,1})m_{b,1}}{r^2}$

This equation simplifies to:

$F_{g,2}=2 \frac{Gm_{a,1}m_{b,1}}{r^2}$

Substituting the definition of Fg1, we see:

$F_{g,2}=2F_{g,1}$

Thus the gravitational forces doubles when the mass of one object doubles.

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Question

You are riding in an elevator that is accelerating upwards at , when you note that a block suspended vertically from a spring scale gives a reading of .

What does the spring scale read when the elevator is descending at constant speed?

Answer

When the elevator accelerates upward, we know that an object would appear heavier. The normal force is the sum of all the forces added up, and in this case it is . We know that the normal force has two components, a component from gravity, and a component from the acceleration of the elevator. Using this equation, we can determine the mass of the block, which doesn't change:

is acceleration due to gravity and is the acceleration of the elevator.

When substituting in the values, we get

Solving for , we get

Since the elevator is descending at constant speed, no additional force is applied, therefore the force that the spring scale reads is only due to gravity, which is calculated by:

$3.097 \cdot 9.8 = 30.35:N$

Compare your answer with the correct one above

Question

The mass and radius of a planet’s moon are $5.35\times10^{22} :kg$ and respectively.

With what minimum speed would a bullet have to be fired horizontally near the surface of this moon in order for it to never hit the ground?

(Note: You can treat the moon as a smooth sphere, and assume there’s no atmosphere.)

Answer

To do this problem we have to realize that the force of gravity acting on the bullet is equal to the centripetal force. The equations for gravitational force and centripetal force are as follows:

$F_g = \frac{GmM}{r^2}, F_c = \frac{mv^2}{r}$

If we set the two equations equal to each other, the small (mass of the bullet) will cancel out and will disappear from the right side of the equation.

$\frac{GM}{r}= v^2 \rightarrow v=\sqrt{\frac{GM}{r}}$

is the universal gravitational constant $6.67384 \times10^{-11}: m^3 kg^{-1} s^{-2}$

is given to be $5.35\times10^{22} kg$ and to be $1740:km \rightarrow 1,740,000:m$ .

If we plug everything in, we get

or

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Question

The force on an object due to gravity on the moon is one-sixth of that found on Earth. What is the acceleration due to gravity on the moon?

Answer

We can use Newton's second law:

Set up equations for the force on the moon and the force on Earth:

$F_m=ma_m,\ F_E=ma_E$

Now we can use substitution:

$F_m=\frac{1}{6}F_E$

$\frac{1}{6}F_E=ma_m\rightarrow F_E=m(6a_m)$

From this, we can see that . Using the acceleration due to gravity on Earth, we can find the acceleration due to gravity on the moon.

$9.8\frac{m}{s^2}=6a_m$

$a_m=1.63\frac{m}{s^2}$

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Question

A large planet exerts a gravitational force five times stronger than that experienced on the surface of Earth. What is the weight of a 50kg object on this planet?

Answer

The weight of the object on Earth's surface is:

$F_E=ma=(50kg)(9.8\frac{m}{s^2})=490N$

The force on the new planet is five times that on Earth, so we can simply multiply:

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Question

A space woman finds herself in an unkown planet with gravity $5\frac{m}{s^2}$ . If her weight on Earth is 500N, what is her weight on the unkown planet?

$g_{Earth}=10\frac{m}{s^2}$

Answer

We know that the weight of an object is given by:

is the mass of the object and is the gravitational acceleration of whatever planet the object happens to be on.

We know the gravity on the unkown planet, so the weight of the woman is given by:

$w_{u}=mg_{u}$

We need only to find the mass of the woman to solve the problem. Since the mass of the woman is constant, we can use the information about her weight on Earth to figure out her mass.

$m=\frac{w_{e}}{g_{e}}=\frac{500N}{10\frac{m}s^2{}}=50kg$

Use this mass to solve for her weight on the new planet.

$w_{u}=mg_{u}=(50kg)(5\frac{m}{s^2})=250N$

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Question

The force on an object due to gravity on the moon is one-sixth of that found on Earth. What is the acceleration due to gravity on the moon?

Answer

We can use Newton's second law:

Set up equations for the force on the moon and the force on Earth:

$F_m=ma_m,\ F_E=ma_E$

Now we can use substitution:

$F_m=\frac{1}{6}F_E$

$\frac{1}{6}F_E=ma_m\rightarrow F_E=m(6a_m)$

From this, we can see that . Using the acceleration due to gravity on Earth, we can find the acceleration due to gravity on the moon.

$9.8\frac{m}{s^2}=6a_m$

$a_m=1.63\frac{m}{s^2}$

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Question

A large planet exerts a gravitational force five times stronger than that experienced on the surface of Earth. What is the weight of a 50kg object on this planet?

Answer

The weight of the object on Earth's surface is:

$F_E=ma=(50kg)(9.8\frac{m}{s^2})=490N$

The force on the new planet is five times that on Earth, so we can simply multiply:

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Question

A space woman finds herself in an unkown planet with gravity $5\frac{m}{s^2}$ . If her weight on Earth is 500N, what is her weight on the unkown planet?

$g_{Earth}=10\frac{m}{s^2}$

Answer

We know that the weight of an object is given by:

is the mass of the object and is the gravitational acceleration of whatever planet the object happens to be on.

We know the gravity on the unkown planet, so the weight of the woman is given by:

$w_{u}=mg_{u}$

We need only to find the mass of the woman to solve the problem. Since the mass of the woman is constant, we can use the information about her weight on Earth to figure out her mass.

$m=\frac{w_{e}}{g_{e}}=\frac{500N}{10\frac{m}s^2{}}=50kg$

Use this mass to solve for her weight on the new planet.

$w_{u}=mg_{u}=(50kg)(5\frac{m}{s^2})=250N$

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Question

A force of 40N is applied on a 14kg box to move it to the right. If the coefficient of friction between the box and the floor is 0.2, what is the acceleration of the box?

Answer

The two horizontal forces acting on the box are the applied force of 40N to the right, and the friction force ( $\mu_kF_N$ )to the left. So the net horizontal force is written as the equation below.

$40N-\mu_kF_N=ma$

is the normal force. Solving for acceleration, a, we get the equation below.

$a=\frac{40N-\mu_kF_N}{m}$

We know the following from the question.

$g=9.8\frac{m}{s^2}$

$\mu_k=0.2$

$F_N=mg=(14kg)(9.8\frac{m}{s^2})=137.2N$

Thus, the acceleration is

$a=\frac{40N-(0.2)(137.2N)}{14kg}$

$a=0.9\frac{m}{s^2}$

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Question

A truck driver is making a delivery. He takes a 287kg box out of his semi-truck by having it slide down a 33o ramp that is 5.5m long. To ensure that the box doesn't accelerate down the ramp, the driver pushes back on it so that the box's constant speed is $1.7\frac{m}{s}$ . If the coefficient of friction is 0.4, calculate the work done by the frictional force.

Answer

We can calculate the work done by friction by using $W=F_{friction}\cdot d$ .

It is just the product of the friction force and the length of the ramp. Rewrite work as $W=\mu_kF_Nd$ .

Since this problem involves a box sliding down an incline, the normal force is $F_N=mg\cos\theta$ .

Work is now written as the equation below.

$W=\mu_kmg(\cos\theta) d$

We know the following information from the question.

$\mu_k=0.4$

$g=9.8\frac{m}{s^2}$

$\theta=33^{o}$

using these values, we can calculate work from our equation.

$W=(0.4)(287kg)(9.8\frac{m}{s^2})(\cos(33))(5.5)$

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