The designers of a large, tethered pollution-sampling balloon wish to know what the drag will be on the balloon for the maximum anticipated wind speed of 5 m/s (the air is assumed to be at 20°C). A 1/20-scale model is built for testing in water at 20°C. What water speed is required to model the prototype? At this speed the model drag is measured to be 2 kN. What will be the corresponding drag on the prototype?​

Answers

Answer 1

Answer:

The drag on the prototype at a wind speed of 5 m/s is 5 N.

Explanation:


Related Questions

Compare the empirical equation from y=9.8x to V= gT + V0 to determine g and V0

Answers

Answer:

Explanation:

The empirical equation y = 9.8x represents the relationship between the displacement y of an object and the time x it has been falling under the influence of gravity.

On the other hand, the equation V = gT + V0 represents the relationship between the velocity V of an object, the time T, the initial velocity V0, and the acceleration due to gravity g.

To compare the two equations, we can equate the displacement y in the first equation with the expression for displacement in terms of velocity and time, which is y = (1/2)gt^2 + V0t, where t is the time.

Substituting this into the empirical equation, we get:

9.8x = (1/2)gt^2 + V0t

We can see that this equation has three variables: g, V0, and t. We can't determine all three variables from this equation alone.

However, if we know the time it takes for an object to fall a certain distance, we can use this equation to solve for g and V0. For example, if we know that an object falls 1 meter in 0.45 seconds, we can substitute x=1 and t=0.45 into the equation:

9.8(1) = (1/2)g(0.45)^2 + V0(0.45)

Simplifying this equation, we get:

g = 19.62 m/s^2

V0 = 0.45(9.8) = 4.41 m/s

So the acceleration due to gravity is 19.62 m/s^2 and the initial velocity is 4.41 m/s. Note that these values may not be exactly equal to the true values, as the empirical equation y=9.8x is only an approximation and there may be other factors affecting the motion of the object.

does kinetic friction speed up or slow down an object? Therefore, which type of work iis done by kinetic friction?

Answers

Answer:

Speed up, friction is the force applied when slowing down.

It would be positive work because an applied force would cause an object to displace and go into a certain direction sending it into a state of motion, hence generating kinetic energy.

What is kinetic energy?

In the ordinary sense, the kinetic energy of a body is the energy that it possesses by virtue of its motion. In fact it is equal to the work that a moving body can do before coming to rest. In other words, it is equal to the amount of work required to stop a moving body.

Using the elementary third equation of motion and Newton's second law, the kinetic energy of a body of mass m and velocity v is given by the simple mathematical relation:

[tex]K=\frac{mv^2}{2}[/tex]

But this identity holds good provided that the body moves with a velocity much smaller than the velocity of light in vacuum.

Now what happens if the velocity of the body is sufficiently large?

From the expression from the relativistic linear momentum of a body of rest mass [tex]m_0[/tex] moving with velocity [tex]v[/tex] is given by

p=m0v1−v2c2−−−−−−√=m0γv

∴K=∫vd(m0γv)

=v.m0γv−∫m0γvdv

=m0γv2−m0∫vdv1−v2/c2−−−−−−−−√

Let u=1−v2/c2⟹du=−2vc2dv

∴K=m0γv2+m0c22∫du√u

=(m0v2+m0c2(1−v2c2))γ−E0

K=m0γc2−E0

Now if the magnitude of velocity is zero, then the above equation takes the form

0=m0c2−E0⟹E0=m0c2

So finally the kinetic energy of a body is given by the general relation:

K=m0γc2−m0c2=m0c2(γ−1)

Now if the velocity is small enough, then this equation closely approximates the classical relation for kinetic energy which can be ensured by expanding γ

by the binomial theorem.

Which answer represents a list of UNBALANCED forces?
A group of people playing tug of war, where one side has two small children, and
the other side has two large adults: A motorcycle that is accelerating; A ball that
is decelerating as it rolls.
A skateboard sitting on a sidewalk; A car moving at a constant speed: Two
people pushing on a box with equal force
A person sitting in a chair: A train moving at a constant speed; a wagon being
pulled with 5 N of force from each direction.

Answers

The response that enumerates the unbalanced forces is a bunch of people playing tug-of-war with two young children on one side and two huge adults on the other.

Is the force used in tug of war balanced or unbalanced?

In a tug of war, if both teams are applying the same amount of force on the rope, balanced forces are displayed. The forces pulling on the rope are opposing in direction and of equal magnitude.

What's an illustration of an imbalanced force?

The imbalanced soldiers are acting onto the football if you kick it and it goes from one area to another. After being kicked, the ball goes from one location to another. An illustration of an uneven force is this.

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An athlete whirls a 7.66 kg hammer tied to the end of a 1.4 m chain in a simple horizontal circle where you should ignore any vertical deviations. The hammer moves at the rate of 0.372 rev/s. What is the tension in the chain? Answer in units of N.

Answers

The hammer's centripetal acceleration is therefore 100.59 m/s².

Using an example, what is acceleration?

An object has positive acceleration when it is going faster than it was previously. Positive acceleration was demonstrated by the moving car in the first scenario. Positive forward motion is being made by the car.

Hammer mass, m, is 6.55 kg. chain length, including the length of the arms, r = 1.3 m, Hammer's angular velocity is given by the formula: = 1.4 rev/s = 8.79646 rad/s (1 rev = 6.28 rad).

The formula a = V2/r, where V is the transverse velocity of the hammer, yields the centripetal acceleration.

V = r, hence

As a result, a = r²

A = 1.3 x 8.796462, or 100.59 m/s², is obtained by substituting the supplied numbers in the equation above.

The hammer's centripetal acceleration is therefore 100.59 m/s².

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What are the magnitude and the direction of the electric field that will allow an electron to fall with an acceleration of 4.3 m/s2?

Answers

Answer:

Explanation:

The acceleration of an electron in an electric field is given by the equation:

a = qE/m

where a is the acceleration, q is the charge of the electron, E is the electric field, and m is the mass of the electron.

Given that the acceleration of the electron is 4.3 m/s^2, and the mass of the electron is 9.11 × 10^-31 kg, and the charge of the electron is -1.6 × 10^-19 C, we can solve for the electric field E:

E = ma/q

E = (4.3 m/s^2) × (9.11 × 10^-31 kg) / (-1.6 × 10^-19 C)

E = -2.44 × 10^4 N/C

The negative sign indicates that the direction of the electric field is opposite to the direction of the electron's motion. Therefore, the magnitude of the electric field required to accelerate an electron with an acceleration of 4.3 m/s^2 is 2.44 × 10^4 N/C and the direction is opposite to the direction of motion of the electron.

If the wind bounces backward from the sail, will the craft be set in motion?

Answers

If the wind bounces backward from the sail, the boat will not be set in motion as no forward force is generated. For the boat to move forward, the sail must be positioned to catch the wind and create lift in the desired direction.

If the wind bounces backward from the sail, the craft will not be set in motion. In order for a sailboat to move forward, the wind must push on the sail, creating a force that propels the boat forward through the water. When the wind hits the sail, it creates lift in a direction perpendicular to the sail's surface, which results in a forward force that propels the boat.

However, if the wind bounces backward from the sail, it does not create lift and therefore does not result in a forward force on the boat. Instead, the wind is redirected in a different direction, and the boat remains stationary. In order for the boat to move forward, the sail must be positioned to catch the wind and create lift in the desired direction, propelling the boat forward.

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A net force of 32 N acting upon a wooden block produces an acceleration of 4.0 m/s2 for the block. What is the mass of the block?

Answers

The mass of the block is 8 kg.

Steps

When the force exerted on an item and its acceleration are known, the mass of the object can be calculated using the formula

mass = force/acceleration.

It is derived from the second law of motion, which states that an object's acceleration is inversely proportional to its mass and directly proportional to the force acting on it. So, using this formula, we can determine an object's mass if we know its force and acceleration.

We can use the formula:

F = ma

where F is the net force, m is the mass of the block, and a is the acceleration.

We know that the net force is 32 N and the acceleration is 4.0 m/s². Substituting these values into the formula, we get:

32 N = m × 4.0 m/s².

Solving for m, we divide both sides of the equation by 4.0 m/s².

m = 32 N / 4.0 m/s².

m = 8 kg

Therefore, the mass of the block is 8 kg.

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Given the equation = Ѧ and = 1.1 × 103, = 2.48 × 10−2, and = 6.000. What is w, in scientific notation and with the correct number of significant figures?​

Answers

w is 1.07 × 10^4, expressed in scientific notation with the correct number of significant figures.

How do we calculate the value of w?

The equation given is:

Ψ = w/(yz^2)

We Substitute the given values, we get:

Ψ = w/(y × z^2) = 1.1 × 10^3 × 2.48 × 10^-2 × 6.000 = 1.6464

solving  for w and rearranging  the equation as:

w = Ψ × y × z^2

We Substitute the given values, we get:

w = 1.6464 × 37 × (14)^2 = 10,722.7584

we  round the value of w to three significant figures, since the values of y, z, and Ψ are given with three significant figures, in order to express the result in scientific notation with the correct number of significant figures,

Rounding 10,722.7584 to three significant figures gives 10,700. Therefore, the value of w is:

w = 1.07 × 10^4

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The three small spheres shown in the figure (Figure 1)carry charges q1= 4.45 nC , q2=-7.50 nC , and q3= 2.15 nC

A)Find the net electric flux through the closed surface S1
shown in cross section in the figure.
B)Find the net electric flux through the closed surface S2
shown in cross section in the figure.
C)Find the net electric flux through the closed surface S3
shown in cross section in the figure.
D)Find the net electric flux through the closed surface S4
shown in cross section in the figure.
E)Find the net electric flux through the closed surface S5
shown in cross section in the figure.

Answers

A) The net electric flux through the closed surface S₁ is given by the equation: Net electric flux = q1/4πε0
= 4.45 nC / (4π x 8.85 x 10-12 C2/Nm2)
= 0.541 x 10-3 Nm2/C .

What is electric?

Electricity is a form of energy that exists in nature and is created through the movement of electrons between atoms. It is the force that powers all of the electrical appliances and devices in our homes and offices.

B) The net electric flux through the closed surface S₂ is given by the equation:
Net electric flux = q1/4πε0 + q2/4πε0
= (4.45 nC + (-7.50 nC)) / (4π x 8.85 x 10-12 C2/Nm2)
= -2.05 x 10-3 Nm2/C
C) The net electric flux through the closed surface S₃ is given by the equation:
Net electric flux = q1/4πε0 + q2/4πε0 + q3/4πε0
= (4.45 nC + (-7.50 nC) + 2.15 nC) / (4π x 8.85 x 10-12 C2/Nm2)
= -0.239 x 10-3 Nm2/C
D) The net electric flux through the closed surface S₄ is given by the equation:
Net electric flux = q1/4πε0 + q2/4πε0 + q3/4πε0 + q1/4πε0
= (4.45 nC + (-7.50 nC) + 2.15 nC + 4.45 nC) / (4π x 8.85 x 10-12 C2/Nm2)
= 0.302 x 10-3 Nm2/C

E) The net electric flux through the closed surface S₅ is given by the equation:
Net electric flux = q1/4πε0 + q2/4πε0 + q3/4πε0 + q1/4πε0 + q2/4πε0
= (4.45 nC + (-7.50 nC) + 2.15 nC + 4.45 nC + (-7.50 nC)) / (4π x 8.85 x 10-12 C2/Nm2)
= -1.75 x 10-3 Nm2/C.

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A) The net electric flux through the closed surface S₁ is given by the equation: Net electric flux = q1/4πε0

= 4.45 nC / (4π x 8.85 x 10⁻¹² C²/Nm²)

= 0.541 x 10⁻³ Nm²/C .

What is electricity?

Electricity is a form of energy that exists in nature and is created through the movement of electrons between atoms. It is the force that powers all of the electrical appliances and devices in our homes and offices.

B) The net electric flux through the closed surface S₂ is given by the equation:

Net electric flux = q1/4πε0 + q2/4πε0

= (4.45 nC + (-7.50 nC)) / (4π x 8.85 x 10⁻¹² C²/Nm²)

= -2.05 x 10⁻³ Nm²/C

C) The net electric flux through the closed surface S₃ is given by the equation:

Net electric flux = q1/4πε0 + q2/4πε0 + q3/4πε0

= (4.45 nC + (-7.50 nC) + 2.15 nC) / (4π x 8.85 x 10⁻¹² C²/Nm²)

= -0.239 x 10⁻³ Nm2/C

D) The net electric flux through the closed surface S₄ is given by the equation:

Net electric flux = q1/4πε0 + q2/4πε0 + q3/4πε0 + q1/4πε0

= (4.45 nC + (-7.50 nC) + 2.15 nC + 4.45 nC) / (4π x 8.85 x 10-12 C²/Nm²)

= 0.302 x 10⁻³ Nm²/C

E) The net electric flux through the closed surface S₅ is given by the equation:

Net electric flux = q1/4πε0 + q2/4πε0 + q3/4πε0 + q1/4πε0 + q2/4πε0

= (4.45 nC + (-7.50 nC) + 2.15 nC + 4.45 nC + (-7.50 nC)) / (4π x 8.85 x 10⁻¹² C²/Nm²)

= -1.75 x 10⁻³ Nm²/C.

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A 2.9 kg solid cylinder (radius = 0.20 m , length = 0.70 m ) is released from rest at the top of a ramp and allowed to roll without slipping. The ramp is 0.75 m high and 5.0 m long.

Answers

The final velocity of the cylinder is 1.22 m/s when it reaches the bottom of the ramp.

To solve this problem, we need to use conservation of energy and rotational kinematics.

Calculate the gravitational potential energy (GPE) of the cylinder at the top of the ramp:

GPE = mgh = (2.9 kg)(9.81)(0.75 m) = 21.39 J

Calculate the final kinetic energy (KE) of the cylinder when it reaches the bottom of the ramp:

[tex]KE = 1/2 mv^2 + 1/2 Iω^2[/tex]

where v is the linear velocity, I is the moment of inertia, and ω is the angular velocity.

Since the cylinder rolls without slipping, we know that v = ωr, where r is the radius of the cylinder.

[tex]KE = 1/2 mv^2 + 1/4 mv^2 = 3/4 mv^2 = 3/8 mgh[/tex]

Substituting the values we have:

KE = 3/8 (2.9 kg)(9.81)(0.75 m) = 63.56 J

Finally, we can use conservation of energy to find the final velocity of the cylinder:

GPE = KE

[tex]mgh = 3/8 mgh + 1/2 mv^2 + 1/2 Iω^2[/tex]

Solving for velocity:

[tex]v = \sqrt (2gh/5) = \sqrt(29.81 m/s^20.75 m/5) = 1.22 m/s[/tex]

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the complete question is:

At the top of a ramp, a 2.9 kg solid cylinder (radius = 0.20 m, length = 0.70 m) is released from rest and allowed to roll without slipping. The ramp measures 0.75 m in height and 5.0 m in length. calculate the final velocity when it reaches the bottom of the ramp

waves are generated in a rope of length 6m. What is the speed of the wave if its period is 2s

Answers

The speed of the wave with the period given above would be = 3m/s

How to calculate the speed of the wave?

The wave length generated by the rope = 6m

The period of the wave = 2s

But the formula use for calculate the speed of a wave = v=λf

Where v = speed

λ= wavelength = 6m

f = Frequency.

Also F = 1/T

Where T = period = 2s

F = 1/2 = 0.5 Hz

V = 6× 0.5

V = 3m/s

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What is the temperature change of a 3 kg gold (c = 129 J/kg K) bar when placed into 0.220 kg
of water. After equilibrium is reached the water underwent a temperature change of 17 °C.

Answers

Answer:

We can use the formula:

q = mcΔT

where q is the heat transferred, m is the mass, c is the specific heat capacity, and ΔT is the change in temperature.

The heat transferred from the gold bar to the water is equal to the heat transferred from the water to the gold bar, since they reach thermal equilibrium. Therefore:

q_gold = q_water

We can solve for the temperature change of the gold bar:

q_gold = mcΔT_gold

q_water = mcΔT_water

Since the heat transferred is equal:

mcΔT_gold = mcΔT_water

Rearranging and solving for ΔT_gold:

ΔT_gold = ΔT_water(m_water/m_gold)

ΔT_water is the temperature change of the water, which is 17°C. m_water is 0.220 kg, and m_gold is 3 kg. c_gold is given as 129 J/kg K.

ΔT_gold = 17°C(0.220 kg/3 kg)(1/129 J/kg K) = 0.025°C

Therefore, the temperature change of the gold bar is 0.025°C when it is placed into 0.220 kg of water and thermal equilibrium is reached.

This is 20% my grade please and also give an explanation for it cause I don’t understand it

Answers

Thank you for reaching out to me with your question. From what I understand, you are curious about the importance of an assignment or exam that is worth 20% of your grade.

To put it simply, any assignment or exam that is worth a certain percentage of your grade is an indicator of how much weight that particular task carries in determining your overall grade for the course. In other words, if you were to score poorly on an assignment that is worth 20% of your grade, it could significantly impact your final grade.
It is important to note that each assignment or exam may be worth a different percentage, and it is up to the instructor to determine the weight of each task. Generally, assignments and exams that are worth a higher percentage of your grade carry more weight and have a greater impact on your final grade.
Therefore, it is crucial to take each assignment or exam seriously and give it your best effort, especially those that carry a higher percentage of your grade. It is also important to keep track of your grades throughout the semester and identify any areas that may need improvement, so you can work towards improving your overall grade.
I hope this explanation helps clarify the importance of an assignment or exam that is worth a certain percentage of your grade. Please let me know if you have any further questions or concerns.

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please Help me.......
do these action and reaction start from same point?​

Answers

Answer:

Yes

Explanation:

because its literally showing they are moving away from the same point

What is a force that acts upon a projectile launched into the air?

1. Centripetal

2. Gravity

3. Trajectory

Answers

The force that acts upon a projectile launched into the air is gravity.

What is gravity?

Gravity is a fundamental force of nature that causes all physical objects to attract each other. It is the force that pulls objects towards each other, and it is the reason why objects with mass are attracted towards the center of the Earth.

When an object is launched into the air, it is subject to the force of gravity, which pulls the object down towards the Earth. As the object moves through the air, the force of gravity causes it to follow a curved path, known as a trajectory, until it eventually hits the ground. While other forces such as air resistance may also act upon the projectile, gravity is the primary force that determines the path of the projectile.

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How smart is Albert Einstein?​

Answers

Albert Einstein was one of the greatest physicists of all time and is widely considered a genius. He made groundbreaking contributions to our understanding of the universe, including the theory of relativity and the famous equation E=mc².

Einstein's intelligence can be seen in his early academic achievements. He excelled in math and physics, and by the age of 16, he was already doing advanced physics research on his own. He went on to earn a PhD and made significant contributions to physics, publishing numerous papers and developing revolutionary theories.

Moreover, his ability to think creatively and critically is evidenced by his approach to problem-solving. He was known for his thought experiments, which allowed him to explore complex concepts and theories without the need for expensive equipment or experiments. He was also skilled at developing intuitive and elegant solutions to complex problems.

Therefore Einstein's intelligence is widely recognized and respected by scientists, scholars, and the general public alike. He is considered one of the most brilliant minds in history and has made a lasting impact on our understanding of the universe.

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PLS ANWSER QUICK

1. Compare the relative light-gathering power of a telescope with a 40-inch primary lens with an otherwise identical telescope with a smaller 20-inch lens. Then, analyze the limitations and importance of space telescope data across the electromagnetic spectrum. In your answer, describe one way such telescope data can help astronomers determine distances between celestial objects and how this relates to how astronomers use observational astronomy methods like the cosmic distance ladder.

Answers

The relative light-gathering power of a telescope is directly proportional to the square of its primary lens diameter. Therefore, a telescope with a 40-inch primary lens will have four times the light-gathering power of an otherwise identical telescope with a 20-inch lens. This means that the larger telescope will be able to collect more light and produce brighter and clearer images of celestial objects.

However, the limitations of telescopes are not solely dependent on their size. Factors such as atmospheric turbulence, light pollution, and the quality of the optics and detectors used in the telescope can also affect the quality of the images produced. Additionally, space telescopes have the advantage of being above the Earth's atmosphere, which can distort and absorb light, allowing for clearer and more precise observations of celestial objects.

Space telescopes can gather data across the electromagnetic spectrum, including wavelengths that cannot be observed from the ground, such as ultraviolet and X-ray radiation. This allows astronomers to study a wide range of celestial objects, from stars and galaxies to black holes and supernovae, in greater detail.

One way in which space telescope data can help astronomers determine distances between celestial objects is through the use of standard candles, which are objects of known luminosity. By measuring the apparent brightness of these objects, astronomers can calculate their distances using the inverse-square law of light. This method is one of several techniques used in observational astronomy to determine the distances of celestial objects, known as the cosmic distance ladder.

In conclusion, while a larger primary lens can improve the light-gathering power of a telescope, other factors also influence the quality of the images produced. Space telescopes have the advantage of being able to gather data across the electromagnetic spectrum, providing astronomers with a wealth of information about celestial objects. This information can help astronomers determine distances between objects using techniques such as the cosmic distance ladder, advancing our understanding of the universe.
Final answer:

A telescope with a 40-inch primary lens has four times the light-gathering power compared to a telescope with a 20-inch lens. Space telescope data is important for studying celestial objects across the electromagnetic spectrum and provides comprehensive information. Telescopic data helps determine distances between objects through techniques like redshift measurement and the cosmic distance ladder.

Explanation:

The relative light-gathering power of a telescope is determined by the area of its primary lens or mirror. In this case, the telescope with the 40-inch primary lens has four times the light-gathering power compared to the telescope with the 20-inch lens. This is because the area of the 40-inch lens is four times larger than the area of the 20-inch lens.

Space telescope data is important across the electromagnetic spectrum because it allows astronomers to study celestial objects in different wavelengths, revealing information that is not accessible through visible light observations alone. By using data from telescopes that operate in various parts of the electromagnetic spectrum, astronomers can gather more comprehensive information about the universe.

One way telescope data helps determine distances between celestial objects is through the measurement of redshift. Redshift occurs when light from distant objects is stretched to longer wavelengths due to the expansion of the universe. By analyzing the amount of redshift in the light from a celestial object, astronomers can estimate its distance. This method is a part of the cosmic distance ladder—a set of techniques used to determine distances to different objects in the universe.

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Why would theoretical muzzle velocity be lower than measured muzzle velocity?

Answers

Answer:

Explanation:

Theoretical muzzle velocity is calculated based on various physical models and assumptions, such as the conservation of energy and momentum, the properties of the propellant and barrel, and other factors that can affect the velocity of the projectile as it exits the muzzle of the firearm. However, in practice, there can be many factors that can influence the actual velocity of the projectile, which can result in a measured muzzle velocity that is higher than the theoretical value. Some possible reasons for this discrepancy include:

Variation in propellant burn rate: Theoretical models assume a constant burn rate for the propellant, but in practice, there can be variations in the rate at which the propellant burns due to differences in temperature, humidity, and other factors. This can affect the velocity of the projectile as it exits the muzzle.

Barrel condition: Theoretical models assume a perfectly smooth, straight barrel, but in practice, barrels can have imperfections such as rough spots or bends that can affect the velocity of the projectile as it travels through the barrel.

Environmental factors: Theoretical models assume ideal conditions, but in practice, there can be factors such as wind, temperature, and humidity that can affect the velocity of the projectile as it travels through the air.

Measurement errors: Measuring the muzzle velocity of a projectile can be challenging, and errors in measurement can result in a measured velocity that is higher than the actual value.

Human error: Human factors such as shooter error, inconsistency in handling and loading the firearm, and other factors can also contribute to discrepancies between theoretical and measured muzzle velocities.

Overall, while theoretical muzzle velocity can provide a useful estimate of the velocity of a projectile exiting a firearm, there are many factors that can influence the actual velocity in practice, leading to measured velocities that are higher than the theoretical value.

Imagine that scientists placed a satellite at the Earth-Moon L1 Lagrangian
point, which is a point between Earth and the Moon where the gravitational
pulls from the two bodies are equal and opposite. What would happen if a
satellite at this position drifted slightly closer to Earth?
O A.
A. The gravitational pull from the Moon would correct the satellite
and bring it back to the Lagrangian point.
OB. The satellite would stop drifting and would remain fixed in this
position because of its tangential velocity.
OC. The satellite would continue to drift toward Earth as Earth's pull
became stronger than that of the Moon.
OD. The gravitational pull from the Sun would eventually pull the
satellite from this point and cause it to directly orbit the Sun.

Answers

Answer:

Explanation:

A. The gravitational pull from the Moon would correct the satellite and bring it back to the Lagrangian point.

At the Earth-Moon L1 Lagrangian point, the gravitational pulls from the Earth and the Moon are balanced, and the satellite is in a stable equilibrium. If the satellite drifted slightly closer to Earth, the gravitational pull from the Earth would become stronger, but the gravitational pull from the Moon would also increase due to its closer distance, and this would correct the satellite's motion and bring it back to the Lagrangian point.

On the same object as in the previous question, you have to pus
with 15 N to move it 10 meters. How much work do you do?

Answers

Answer:

150 J

Explanation:

To find the work done by pushing the object with a force of 15 N over a distance of 10 meters, we can use the equation:

Work = Force × Distance × cos(θ)

Where:

Force is the applied force (15 N)

Distance is the distance over which the force is applied (10 m)

θ is the angle between the force vector and the direction of motion. In this case, we assume that the force is applied in the same direction as the motion, so θ = 0 degrees, and cos(θ) = 1.

Substituting the given values:

Work = 15 N × 10 m × cos(0) = 150 J

.

Two very large, nonconducting plastic sheets, each 10.0 cm
thick, carry uniform charge densities σ1,σ2,σ3
and σ4
on their surfaces, as shown in the following figure(Figure 1). These surface charge densities have the values σ1 = -7.30 μC/m2 , σ2=5.00μC/m2, σ3= 1.90 μC/m2 , and σ4=4.00μC/m2. Use Gauss's law to find the magnitude and direction of the electric field at the following points, far from the edges of these sheets.

A:What is the magnitude of the electric field at point A , 5.00 cm
from the left face of the left-hand sheet?(Express your answer with the appropriate units.)

B:What is the direction of the electric field at point A, 5.00 cm
from the left face of the left-hand sheet?(LEFT,RIGHT,UPWARDS,DOWNWARDS)

C:What is the magnitude of the electric field at point B, 1.25 cm
from the inner surface of the right-hand sheet?(Express your answer with the appropriate units.)

D:What is the direction of the electric field atpoint B, 1.25 cm
from the inner surface of the right-hand sheet?(LEFT,RIGHT,UPWARDS,DOWNWARDS)

E:What is the magnitude of the electric field at point C , in the middle of the right-hand sheet?(Express your answer with the appropriate units.)

F:What is the direction of the electric field at point C, in the middle of the right-hand sheet?(LEFT,RIGHT,UPWARDS,DOWNWARDS)

Answers

Answer:

Explanation:

To use Gauss's Law, we need to choose a Gaussian surface that encloses the point of interest and has symmetry such that the electric field is constant over the surface. For all points in this problem, we can choose a cylinder as our Gaussian surface with its axis perpendicular to the sheets.

Let's assume that the cylinders are tall enough such that the electric field at the top and bottom faces of the cylinder is negligible. The electric flux through the curved part of the cylinder is constant and equal to Φ_E = E*A, where A is the surface area of the curved part of the cylinder.

Using Gauss's Law, Φ_E = Q_in / ε0, where Q_in is the net charge enclosed by the Gaussian surface and ε0 is the permittivity of free space.

A: The Gaussian surface is a cylinder with radius r = 5.00 cm and height h = the distance between the sheets (20.0 cm). The net charge enclosed is Q_in = σ1 * A_top + σ2 * A_bottom, where A_top and A_bottom are the areas of the top and bottom faces of the cylinder, respectively. Since the electric field is perpendicular to the faces, the flux through them is zero. So, Q_in = (σ1 - σ2) * A, where A is the surface area of the curved part of the cylinder. Thus,

Φ_E = E * A = Q_in / ε0

E = (σ1 - σ2) / (ε0 * r) = (-7.30 μC/m^2 - 5.00 μC/m^2) / (8.85 x 10^-12 C^2/Nm^2 * 0.0500 m) = -2.31 x 10^5 N/C

The magnitude of the electric field at point A is 2.31 x 10^5 N/C.

B: The electric field points from higher potential to lower potential. Since the left-hand sheet has a negative charge density and the right-hand sheet has a positive charge density, the potential decreases from left to right. Thus, the electric field at point A points from left to right.

The direction of the electric field at point A is RIGHT.

C: The Gaussian surface is a cylinder with radius r = 1.25 cm and height h = the thickness of the right-hand sheet (10.0 cm). The net charge enclosed is Q_in = σ4 * A, where A is the surface area of the curved part of the cylinder. Thus,

Φ_E = E * A = Q_in / ε0

E = σ4 / (ε0 * r) = 4.00 μC/m^2 / (8.85 x 10^-12 C^2/Nm^2 * 0.0125 m) = 3.77 x 10^7 N/C

The magnitude of the electric field at point B is 3.77 x 10^7 N/C.

D: The electric field points from higher potential to lower potential. Since the right-hand sheet has a positive charge density, the potential decreases from the right-hand sheet to the left. Thus, the electric field at point B points from right to left.

The direction of the electric field at point B is LEFT.

E:

Since point C is in the middle of the right-hand sheet, the electric field due to this sheet alone cancels out due to symmetry. Thus, the only electric field present is due to the left-hand sheet. The Gaussian surface is a cylinder with radius r = the radius of the sheet (10.0 cm) and height h = the thickness of the sheet (10.0 cm). The net charge enclosed is Q

The net charge enclosed within this Gaussian surface is:

Q = σ1 × (2πrh)

where h is the thickness of the left-hand sheet, r is the distance from the left-hand sheet to point C, and σ1 is the surface charge density of the left-hand sheet. Plugging in the given values, we get:

Q = (-7.30 × 10^-6 C/m^2) × (2π × 0.1 m × 0.1 m) = -4.60 × 10^-8 C

Using Gauss's law, we can find the electric field at point C:

E × (2πrh) = Q/ε0

where ε0 is the permittivity of free space. Solving for E, we get:

E = Q / (2πε0rh)

Plugging in the values, we get:

E = (-4.60 × 10^-8 C) / (2π × 8.85 × 10^-12 C^2/(N·m^2) × 0.1 m × 0.1 m) = -1.64 × 10^5 N/C

Therefore, the magnitude of the electric field at point C is 1.64 × 10^5 N/C.

To find the electric field at point C, we need to consider both sheets since point C is equidistant from both sheets. Thus, we can use Gauss's law to find the total electric field due to both sheets.

The net charge enclosed by a cylindrical Gaussian surface of radius r = 1.25 cm and height h = 20.0 cm is given by:

qenc = σ2 * (2πrh) + σ4 * (2πrh) = (σ2 + σ4) * (2πrh)

where σ2 is the charge density on the inner surface of the right-hand sheet, σ4 is the charge density on the outer surface of the left-hand sheet, and h is the distance between the two sheets.

Substituting the given values, we get:

qenc = (5.00 μC/m^2 + 4.00 μC/m^2) * (2π * 1.25 cm * 20.0 cm) = 628.32 nC

Using Gauss's law, we have:

E * 2πrh = qenc/ε0

where ε0 is the permittivity of free space.

Solving for E, we get:

E = qenc / (2πrhε0) = 2.22 × 10^4 N/C

Therefore, the magnitude of the electric field at point C is 2.22 × 10^4 N/C.

F:

The direction of the electric field at point C is perpendicular to the surface of the sheet, pointing away from the positive charge density and towards the negative charge density. Since the positive charge density is on the outer surface of the left-hand sheet and the negative charge density is on the inner surface of the right-hand sheet, the direction of the electric field at point C is from left to right. Therefore, the direction of the electric field at point C is RIGHT.

The net flux of an electric field in a closed surface is directly proportionate to the charge contained, according to Gauss' equation.

State Gauss’s law

To use Gauss's Law, we need to choose a Gaussian surface that encloses the point of interest and has symmetry such that the electric field is constant over the surface. For all points in this problem, we can choose a cylinder as our Gaussian surface with its axis perpendicular to the sheets.

Let's assume that the cylinders are tall enough such that the electric field at the top and bottom faces of the cylinder is negligible. The electric flux through the curved part of the cylinder is constant and equal to Φ_E = E*A, where A is the surface area of the curved part of the cylinder.

Using Gauss's Law, Φ_E = Q_in / ε0, where Q_in is the net charge enclosed by the Gaussian surface and ε0 is the permittivity of free space.

A: The Gaussian surface is a cylinder with radius r = 5.00 cm and height h = the distance between the sheets (20.0 cm). The net charge enclosed is Q_in = σ1 * A_top + σ2 * A_bottom, where A_top and A_bottom are the areas of the top and bottom faces of the cylinder, respectively.

Φ_E = E * A = Q_in / ε0

E = (σ1 - σ2) / (ε0 * r) = (-7.30 μC/m^2 - 5.00 μC/m^2) / (8.85 x 10^-12 C^2/Nm^2 * 0.0500 m) = -2.31 x 10^5 N/C

The magnitude of the electric field at point A is 2.31 x 10^5 N/C.

B: The electric field points from higher potential to lower potential. Since the left-hand sheet has a negative charge density and the right-hand sheet has a positive charge density, the potential decreases from left to right. Thus, the electric field at point A points from left to right.

The direction of the electric field at point A is RIGHT.

C: The Gaussian surface is a cylinder with radius r = 1.25 cm and height h = the thickness of the right-hand sheet (10.0 cm). The net charge enclosed is Q_in = σ4 * A, where A is the surface area of the curved part of the cylinder. Thus,

Φ_E = E * A = Q_in / ε0

E = σ4 / (ε0 * r) = 4.00 μC/m^2 / (8.85 x 10^-12 C^2/Nm^2 * 0.0125 m) = 3.77 x 10^7 N/C

The magnitude of the electric field at point B is 3.77 x 10^7 N/C.

D: The electric field points from higher potential to lower potential. Since the right-hand sheet has a positive charge density, the potential decreases from the right-hand sheet to the left. Thus, the electric field at point B points from right to left.

The direction of the electric field at point B is LEFT.

E:Since point C is in the middle of the right-hand sheet, the electric field due to this sheet alone cancels out due to symmetry. Thus, the only electric field present is due to the left-hand sheet. The Gaussian surface is a cylinder with radius r = the radius of the sheet (10.0 cm) and height h = the thickness of the sheet (10.0 cm). The net charge enclosed is Q

The net charge enclosed within this Gaussian surface is:

Q = σ1 × (2πrh)

where h is the thickness of the left-hand sheet, r is the distance from the left-hand sheet to point C, and σ1 is the surface charge density of the left-hand sheet. Plugging in the given values, we get:

Q = (-7.30 × 10^-6 C/m^2) × (2π × 0.1 m × 0.1 m) = -4.60 × 10^-8 C

Using Gauss's law, we can find the electric field at point C:

E × (2πrh) = Q/ε0

where ε0 is the permittivity of free space. Solving for E, we get:

E = Q / (2πε0rh)

Plugging in the values, we get:

E = (-4.60 × 10^-8 C) / (2π × 8.85 × 10^-12 C^2/(N·m^2) × 0.1 m × 0.1 m) = -1.64 × 10^5 N/C

Therefore, the magnitude of the electric field at point C is 1.64 × 10^5 N/C.

To find the electric field at point C, we need to consider both sheets since point C is equidistant from both sheets. Thus, we can use Gauss's law to find the total electric field due to both sheets.

The net charge enclosed by a cylindrical Gaussian surface of radius r = 1.25 cm and height h = 20.0 cm is given by:

qenc = σ2 * (2πrh) + σ4 * (2πrh) = (σ2 + σ4) * (2πrh)

where σ2 is the charge density on the inner surface of the right-hand sheet, σ4 is the charge density on the outer surface of the left-hand sheet, and h is the distance between the two sheets.

Substituting the given values, we get:

qenc = (5.00 μC/m^2 + 4.00 μC/m^2) * (2π * 1.25 cm * 20.0 cm) = 628.32 nC

Using Gauss's law, we have:

E * 2πrh = qenc/ε0

where ε0 is the permittivity of free space.

Solving for E, we get:

E = qenc / (2πrhε0) = 2.22 × 10^4 N/C

Therefore, the magnitude of the electric field at point C is 2.22 × 10^4 N/C.

F:The direction of the electric field at point C is perpendicular to the surface of the sheet, pointing away from the positive charge density and towards the negative charge density. Since the positive charge density is on the outer surface of the left-hand sheet and the negative charge density is on the inner surface of the right-hand sheet, the direction of the electric field at point C is from left to right. Therefore, the direction of the electric field at point C is RIGHT.

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The thickness of the glass block in front of a fish tank is 9cm. An insect is present at O in air in front of the glass block. The apparent displacement front point O of the insect to the fish which is observing from the water (refractive index of water = 4/3, glass = 3/2)

1) appears 2cm towards
2) appears 2cm away
3) appears 3cm away
4) appears 4 cm away
5) appears appears 4cm towards

Please show me how you worked it out, along with a brief explanation.​

Answers

The insect  appears 3cm away from the image shown.

What is the refractive index in terms of apparent depth?

The refractive index is the ratio of the speed of light in a vacuum to the speed of light in a given medium. However, when light passes through a medium with a different refractive index than the surrounding medium, it appears to change direction at the boundary between the two media. This phenomenon is called refraction.

Refractive index = Real depth/ Apparent Depth

3/2 = 9/A

A = 18/3

A = 6 cm

Displacement = 9 cm - 6 cm = 3cm

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A swing made from a 5 m rope and a 3 kg seat falls a vertical distance of 6 m from the highest point to the lowest point. Calculate the kinetic energy of the seat at the lowest point.

Answers

At the lowest position, both potential and kinetic energy are zero and maximal. A amount of energy is affected or not by mass.

Where do the kinetic energy's peak and trough locations lie?

Kinetic energy (KE) is defined as the energy a object has due to its motion and therefore is equal with one the item's mass multiplied by the object's velocity squared (mv2). In a roller coaster, kinetic energy is highest at the bottom and lowest at the top.

How do you determine the bottom's kinetic energy?

Kinetic energy has the following formula: K.E. (= 1/2 m v2, where m is the object's mass and v is its square velocity. The kinetic energy is measured in kgs squared per indication of the number if the mass is measured in kilogrammes and the velocity is measured in metres per second.

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What is the conservation of energy examples?

Answers

The law of conservation of energy states that energy can neither be created nor destroyed, but it can be transformed from one form to another. Here are some examples of the conservation of energy:

A roller coaster moving up and down a track: As the roller coaster climbs up a hill, it gains potential energy. When it reaches the top and starts to descend, this potential energy is converted into kinetic energy. At the bottom of the hill, the kinetic energy is at its maximum and the potential energy is at its minimum.

A pendulum swinging back and forth: As a pendulum swings, it moves between two points of maximum potential energy, where it is momentarily at rest, and two points of maximum kinetic energy, where it is moving the fastest.

A light bulb converting electrical energy into light: When a light bulb is turned on, electrical energy is converted into light energy and heat energy. The total amount of energy is conserved, but some of it is lost as heat.

A car braking to a stop: When a car brakes, the kinetic energy of the moving car is converted into thermal energy due to friction between the brake pads and the wheels. The total amount of energy is conserved, but the kinetic energy is transformed into a less useful form.

A battery powering a device: When a battery is used to power a device, chemical energy is converted into electrical energy. The electrical energy is then used to perform work, such as lighting a bulb or spinning a motor.

These are just a few examples of the conservation of energy in action. In each case, energy is transformed from one form to another, but the total amount of energy remains constant.

What is the maximum allowable conductor temperature insulation rating of an NMWU conductor?
O a. 110°C
O b. 90°C
O c. 60°C
O d. 30°C

Answers

A. 90°C, NMWU (Nylon-coated Metal Clad) is a type of electrical wire commonly used in residential and commercial wiring applications.

What is Nylon-coated Metal Clad?

It is composed of a metal conductor, such as aluminum or copper, wrapped in a protective layer of nylon. The advantage of this type of wire is that it is easier to work with than other types of wire, is highly resistant to corrosion, and can withstand temperatures up to 90°C.

The insulation rating of a wire is a measure of its ability to withstand heat or cold without being damaged. This rating is determined by the maximum temperature that the insulation can withstand before it begins to degrade or break down. For NMWU wire, the maximum allowable conductor temperature insulation rating is 90°C. Other types of wire may have lower or higher ratings.

The insulation rating of the wire must be taken into account when selecting a wire for an application. If a wire is subjected to temperatures greater than its rated insulation temperature, the insulation can be damaged and the wire may become unsafe.

Therefore, it is important to ensure that the insulation rating of the wire is appropriate for the application. For NMWU wire, the maximum allowable conductor temperature insulation rating is 90°C, so it should only be used in applications.

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A body moving at 50m/s decelerates uniformly at 2/ms? until it comes to rest. What distance does it cover from the time it starts to decelerate to the time it comes to rest.​

Answers

Answer:

625

Explanation:

To solve this problem, we can use the following kinematic equation:

v^2 = u^2 + 2as

Where:

v = final velocity (0 m/s since the body comes to rest)

u = initial velocity (50 m/s)

a = acceleration (-2 m/s^2 since the body is decelerating)

s = distance

We want to find the distance (s) that the body covers from the time it starts to decelerate to the time it comes to rest. We can rearrange the equation to solve for s:

s = (v^2 - u^2) / (2a)

Substituting the values we have:

s = (0^2 - 50^2) / (2 x (-2)) = 625 meters

Therefore, the body covers a distance of 625 meters from the time it starts to decelerate until it comes to rest.

A similar device includes a transformer so that an MP3 player can also be charged. The primary coil has 300 turns.

(a) How many turns are needed in the secondary winding if the voltage is stepped up from 6.2 V to 15.5 V?

(b) Given that the current in the primary winding is 10 mA, what power is transmitted to the secondary windings if the transformer is 77% efficient?​

Answers

The secondary coil needs 120 turns.The power transmitted to the secondary winding is 0.155 W.

How does the voltage change between the primary and secondary coil in a transformer?

A transformer works by using electromagnetic induction to transfer electrical energy between two circuits. The voltage changes between the primary and secondary coil based on the ratio of the number of turns in each coil. In a step-up transformer, the voltage is increased from the primary to the secondary coil, while in a step-down transformer, the voltage is decreased.

What are some common uses for transformers in electronic devices?

Transformers are commonly used in electronic devices to convert voltage levels, isolate circuits, and match impedances. They are often used in power supplies to step down the voltage from the wall outlet to a level that can be used by the device. They are also used in audio amplifiers to match the impedance of the output to the speaker, and in radio and television receivers to tune in to different frequencies.

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Projectile Motion Practice Problems (horizontal and at an angle)
1. Josh kicks a soccer ball with a velocity of 15 m/s at an angle of 38° above the
horizontal.
a. What are the X and Y components of his velocity?
b. How long is the ball in the air?
c. How far will the ball go?

Answers

Answer:

Explanation:

a. The X and Y components of the velocity can be found using trigonometry:

X = V * cos(θ) = 15 m/s * cos(38°) ≈ 11.63 m/s

Y = V * sin(θ) = 15 m/s * sin(38°) ≈ 9.14 m/s

b. The time the ball is in the air can be found using the Y component of the velocity and the acceleration due to gravity:

Y = V * sin(θ) * t - (1/2) * g * t^2

where g = 9.8 m/s^2 is the acceleration due to gravity

Solving for t, we get:

t = 2 * Y / g ≈ 1.87 s

c. The distance the ball travels can be found using the X component of the velocity and the time in the air:

distance = X * time = 11.63 m/s * 1.87 s ≈ 21.78 m

Convert the BCD number given to its Excess-3 equivalent: 1001 0011 1000.​

Answers

To convert a BCD number to Excess-3, we add 3 to each BCD digit.

The BCD number given is: 1001 0011 1000

Adding 3 to each digit, we get:

1011 0100 1111

Therefore, the Excess-3 equivalent of the given BCD number is: 1011 0100 1111.

Help pls for some reason here’s my problem when I look at my iPad to much and I look at something far away it’s kinda blurry but when I rest my eyes by not looking at the screen it’s kinda gets better this has been happening for a month

Answers

Answer: Hello! I believe you might have a condition known as Digital Eye Strain (DES). This is cause by too much screen time, poor posture, bad lighting and viewing distance.


Before you panic, this is not permanent. Here’s some ways to help prevent it :


• Put the screen 20-28 inches away, 4-5 in below eye level and adjust your brightness. (Make sure your screen isn’t too bright)


•Rest your eyes for 15 minutes every 2 hours.


•Try the 20-20-20 rule: look at an object 20 ft away for 20 seconds every 20 minutes.

Please rest your eyes more. If it doesn’t go away after a bit. Please book a appointment with your eye doctor to make sure everything’s alright :)


let me know if you have any questions! :)

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