a permanent bar magnet with the south pole pointing downward is dropped through a solenoid, as shown in the illustration.what is the direction of the induced current that would be measured in the ammeter as the magnet falls completely through the solenoid?

Answers

Answer 1

A permanent bar magnet with the south pole pointing downward is dropped through a Solenoid, as shown in the illustration.

The direction of the induced current that would be measured in the ammeter as the magnet falls completely through the solenoid is given by the left-hand rule.

According to this rule, if the thumb of the left hand points in the direction of the force on a positive charge, then the fingers will point in the direction of the magnetic field that is generating the force, and the palm will face in the direction of the motion of the charge.

The magnetic field in the solenoid is perpendicular to the direction of motion of the magnet, and the force generated is towards the center of the solenoid. Therefore, the induced current that would be measured in the ammeter as the magnet falls completely through the solenoid is in a clockwise direction.

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Related Questions

The representative elements are those with unfilled energy levels in which the "last electron" was added to a p or d orbital. an f orbital. an s or p orbital.

Answers

The representative elements are those with unfilled energy levels in which the "last electron" was added to an s or p orbital. Therefore the correct option is option C.

The "last electron" in an atom refers to the outermost electron that is not part of a filled electron shell. This electron is also called the valence electron, and it is the electron that is most likely to participate in chemical reactions and bond formation with other atoms.

The properties of the valence electron largely determine the chemical behavior and reactivity of an element.

This includes elements in groups 1, 2, and 13-18 of the periodic table. The electrons in these elements occupy the outermost s and p orbitals, which are collectively known as the valence shell.

These valence electrons are responsible for the chemical properties of the elements and their reactivity. Therefore the correct option is option C.

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which car has traveled farther after 10 s ? which car has traveled farther after 10 ? car a car b both cars travel the same distance. request answer part e after 10 s which car has a larger kinetic energy? view available hint(s)for part e after 10 which car has a larger kinetic energy? car a car b both cars have the same kinetic energy. part f after 10 s which car has a larger momentum? view available hint(s)for part f after 10 which car has a larger momentum? car a car b both cars have the same momentum. provide feedback correct. no additional followup.

Answers

1. Car A will travel farther than Car B after 10 s.

2. Car A will have a larger kinetic energy due to its greater mass.

3. Car A will have a larger momentum due to its greater mass.

Assuming both cars have the same constant acceleration, the car with the greater weight (Car A) will travel farther after 10 s according to the equation d = 0.5at^2, where d is the distance, a is the acceleration, and t is the time. Therefore, Car A will travel farther than Car B after 10 s.

The kinetic energy of a moving object is given by the equation KE = 0.5mv^2, where KE is the kinetic energy, m is the mass, and v is the velocity. Both cars have the same acceleration, so after 10 s, the car with the higher velocity will have a larger kinetic energy. Assuming both cars accelerate uniformly, Car A will have a larger kinetic energy due to its greater mass.

The momentum of an object is given by the equation p = mv, where p is the momentum, m is the mass, and v is the velocity. After 10 s, the car with the higher velocity will have a larger momentum. Assuming both cars accelerate uniformly, Car A will have a larger momentum due to its greater mass.

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--The complete question is, Car A is 1000g in weight and B is 800g. Both car begin from rest and start at same position.
1. which car has traveled farther after 10 s?

2. after 10 s which car has a larger kinetic energy?

3. after 10 s which car has a larger momentum?--

There is some ice at the beginning of the time interval, but all of the ice disappears before the end of the interval.

Answers

This statement suggests that the ice undergoes a phase change from solid to liquid, indicating heat transfer.

If 500 g of ice at -10°C is added to 1000 g of water at 50°C, how much ice melts and what is the final temperature of the mixture?

All of the ice will melt, and the final temperature of the mixture will be 10°C.

What would happen if the surroundings were at a temperature lower than the ice during the time interval?

If the surroundings were at a lower temperature than the ice, heat would flow from the ice to the surroundings, causing the ice to freeze instead of melt.

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a coil spring in an off-road truck with a spring constant k of 87.6 kn/m (87,600 n/m) is compressed a distance of 9.2 cm (0.092 m) from its original unstretched position. what is the increase in potential energy of the spring?

Answers

The increase in the potential energy of the spring is 360.44J.

The energy that a body possesses due to its location in relation to other objects, internal pressures, electric charge, and other reasons is called potential energy. The following formula determines the potential energy held in a spring that has been compressed or stretched:

PE = (1/2)kx²

where,

x =  the distance the spring has been compressed or extended from its equilibrium position

k = the spring constant

The spring constant in this instance is stated as k = 87,600 N/m, while the spring's compression distance is specified as x = 0.092 m. As a result, the spring's increased potential energy is:

PE = (1/2)kx²

= (1/2)87,600 × 0.092²

= 360.44 J

Therefore, the increase in the potential energy of the spring is 360.44J.

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The x-velocity of a horizontal projectile is always ___. The initial y-velocity of a horizontal projectile is always ___

Answers

Answer: constant and horizontal; changing (usually increasing) and downward

Explanation:

in a projectile, there is not horizontal acceleration (unless friction), which means the velocity is constant horizontally. vertically, there is gravity so that the vertical velocity would be increasing, zero at the top, and then decreasing, and the y vector pointing downwards

a 2 uf and a 1 uf capacitor are connected in parallel and a potential differene is applied across the combination. the 2 uf capacitor has:

Answers

When a 2 uF and a 1 uF capacitor are connected in parallel and a potential difference is applied across the combination, the 2 uF capacitor has the highest charge. The total capacitance of the capacitors connected in parallel is the sum of their individual capacitances.

When a potential difference is applied across two capacitors connected in parallel, the potential difference across each capacitor is the same. In this case, the 2 uF and 1 uF capacitors are in parallel, so the potential difference across each capacitor is the same as the potential difference applied to the combination. Since the capacitance of the 2 uF capacitor is larger than the 1 uF capacitor, it will store more charge for the same potential difference applied across the combination. This means that the 2 uF capacitor will have a larger charge stored on its plates compared to the 1 uF capacitor The charge stored on a capacitor is directly proportional to its capacitance, so the 2 uF capacitor will have twice the charge stored on its plates as the 1 uF capacitor.

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a 5-kg bag of groceries is tossed across the surface of a table at 4 m/s and slides to a stop in 3 s. what is the average force of friction acting on it?

Answers

Answer:

Force of friction = 3.33 N

Explanation:

The distance the bag slides can be calculated using the velocity and time

d = vt

d = 4m/s(3s)

d = 12 m

W = Fd and W = ∆KE=1/2mv^2

[tex]\frac{1}{2} mv^2=Fd\\\\F=\frac{mv^2}{2d}\\ \\F=\frac{(5kg)(4m/s)^2}{2(12m)} \\\\F=3.333 N[/tex]

The average force of friction acting on the 5-kg bag of groceries tossed across the surface of a table at 4 m/s and slides to a stop in 3 s is 16.7 N.

What is friction?

The resistance that a surface or object encounters when it comes into touch with another object or surface that has a different motion is known as friction. Friction happens when two objects slide against one another. Friction is the resistance that opposes motion. For instance, when a car accelerates, the friction between the road and the tires opposes the car's motion, and the car accelerates more slowly.

The following equation is used to compute the force of friction:

F_f = μF_n

Where F_f is the force of friction,

μ is the coefficient of friction,

and F_n is the normal force.

It's worth noting that the force of friction is proportional to the force holding two items together and the type of material on the surfaces in contact. The coefficient of friction is a measure of the force of friction between two objects. The unit of coefficient of friction is N (Newton).

How can you calculate the average force of friction?

We can use the formula, f = m x a to calculate the force of friction, where 'm' is the mass of the object and 'a' is the acceleration due to friction.

The formula can also be written as F_f = μF_n.

Given that the mass of the bag is 5-kg, the initial velocity of the bag is 4 m/s, and the time taken for the bag to come to a stop is 3s.

Then we can calculate the acceleration using the formula,

a = (v - u)/t, where 'v' is the final velocity, 'u' is the initial velocity and 't' is the time taken.

a = (0-4)/3 = -4/3 m/s^2.

We can now calculate the force of friction using the formula,

f = m x a. f = 5 kg x (-4/3 m/s^2) = -20/3 N.

However, the force of friction is negative since it acts in the opposite direction of the motion of the object.

Therefore, the average force of friction acting on the bag is 20/3 N or 6.67 N (rounded off to two decimal places).

The average force of friction acting on the 5-kg bag of groceries tossed across the surface of a table at 4 m/s and slides to a stop in 3 s is 16.7 N.

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the planet mars is, on average, about 228 million km from the sun. how long does it take light from the sun to reach mars? (recall that the speed of light is about 300,000 km/s.) group of answer choices about 8.4 minutes about 12.7 minutes about 1.52 light seconds about 1.52 hours

Answers

When the planet Mars is, on average, about 228 million km from the Sun, the correct option is about 1.52 hours.

The time it takes light from the Sun to reach Mars when the planet Mars is, on average, about 228 million km from the Sun is about 12.7 minutes.

The given question can be solved using the formula; Time = Distance / Speed of light

Given that Distance of Mars from the Sun = is 228 million km

The speed of light = 300,000 km/sNow, let's plug in the values in the formula.

Time = Distance / Speed of light = 228 × 106 km / 300,000 km/s = 760 secondsTherefore, the time taken for light to reach Mars from the Sun is 760 seconds.1 hour is equal to 3600 seconds.

Therefore, the time taken for light to reach Mars from the Sun is about 760 / 3600 hours = 0.21 hours or about 1.52 hours.

Hence, the correct option is about 1.52 hours.

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if two joggers have similar levels of commitment and purpose but one is clearly better at jogging than the other, what is the MOST likely difference between the two joggers? A. fitness goals B. body composition C. motivation D. body positivity

Answers

Answer:

Fitness Level

Explanation:

The most likely difference between the two joggers who have similar levels of commitment and purpose but one is clearly better at jogging than the other is their fitness level. Fitness level refers to the level of physical fitness and conditioning of an individual, which is usually determined by their exercise habits, lifestyle, and genetics. A person with a higher level of fitness will generally be able to perform physical activities, such as jogging, more easily and with greater proficiency than a person with a lower level of fitness. Therefore, the jogger who is better at jogging is likely to have a higher level of fitness than the other jogger.

While factors such as body composition, motivation, and body positivity can also impact jogging performance, they are less likely to be the most significant difference between the two joggers in this scenario.

Answer:

The most likely difference between the two joggers is

B. body composition.

Body composition refers to the ratio of fat mass to lean mass in the body, and it plays an important role in athletic performance. A jogger with a lower percentage of body fat and a higher percentage of lean muscle mass is likely to have better endurance and speed than a jogger with a higher percentage of body fat and lower muscle mass, even if both have similar levels of commitment and motivation. Fitness goals, motivation, and body positivity can also play a role in jogging performance, but body composition is the most likely factor in this scenario.

a battery with an emf of 25.10 v delivers a constant current of 2.50 ma to an appliance. how much work (in j) does the battery do in two minutes?

Answers

A battery with an emf of 25.10 v provides an appliance with a constant current of 2.50 ma, the work done by the battery in two minutes is 7.53 J.

The power P in watts can be calculated using the formula given below.P = V x Iwhere V is the voltage, and I is the current. In this scenario, V = 25.10 V and I = 2.50 mA = 2.50 x 10⁻³A = 0.0025A. Therefore, P = 25.10 V x 0.0025A = 0.06275 W.

The work W in joules (J) done by the battery in two minutes can be calculated using the formula given below.W = P x t where t is the time in seconds. In two minutes, the time t is 2 x 60 = 120 seconds.Therefore, W = 0.06275 W x 120 s = 7.53 J.

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you are working in a lab on your magnetic levitation experiment. you are standing directly in front of two magnets. another scientist near you has a malfunction with their equipment and beta radiation is emitted directly at you, passing through the magnets first. you are wearing a lab coat and goggles. are you safe? a. no, it was beta radiation and very dangerous. b. no, beta radiation is not deflected by magnets so it would have continued straight and hit you . c. yes, beta radiation is strongly deflected by magnets so it would have missed you. d. yes, beta radiation is easily blocked by the lab coat.

Answers

When you are working on a magnetic levitation experiment in a lab and beta radiation is emitted directly at you, passing through the magnets first, you are not safe because it was beta radiation and very dangerous.

The correct answer is option a.

Beta radation is a form of ionizing radiation that is made up of high-energy beta particles. Beta particles are high-energy, high-speed electrons or positrons that are emitted by certain radioactive isotopes. The emission of beta radiation from radioactive materials is referred to as beta decay.

Beta particles, unlike alpha particles, have a longer range and can penetrate through paper, skin, and other low-density materials but can be blocked by high-density materials.

Therefore, option a is correct.

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Ball a, of mass ma
, is connected to ball b, of mass mb
, by a massless rod of length L
. (Figure 1)The two vertical dashed lines in the figure, one through each ball, represent two different axes of rotation, axes a and b. These axes are parallel to each other and perpendicular to the rod. The moment of inertia of the two-mass system about axis a is Ia
, and the moment of inertia of the system about axis b is Ib
. It is observed that the ratio of Ia
to Ib
is equal to 3:
Ia/Ib=3
Assume that both balls are pointlike; that is, neither has any moment of inertia about its own center of mass.
1. Find the ratio of the masses of the two balls.
2. Find da, the distance from ball a to the system's center of mass

Answers

1. The ratio of the masses of the two balls is 3(x + L/2) / (x - L/2), and

2. da, the distance from ball a to the system's center of mass, is (2Lma) / (3(ma + mb)).

To solve this problem, we can use the parallel axis theorem, which states that the moment of inertia of a system about an axis parallel to an axis through the center of mass is given by:

I = Icm + Md^2

where Icm is the moment of inertia of the system about an axis through the center of mass, M is the total mass of the system, and d is the distance between the two axes.

To find the ratio of the masses of the two balls, we can set up a system of equations using the parallel axis theorem.

Let ma and mb be the masses of balls a and b, respectively, and let x be the distance from ball a to the center of mass of the system. Then we have:

Ia = Icm + ma(x - L/2)^2

Ib = Icm + mb(x + L/2)^2

We are given that Ia / Ib = 3, so we can substitute Ia = 3Ib into the above equations and simplify:

3Ib = Icm + ma(x - L/2)^2

Ib = Icm + mb(x + L/2)^2

Dividing the first equation by the second equation, we get:

3 = (ma / mb) * ((x - L/2)^2 / (x + L/2)^2)

Simplifying, we get:

3 = (ma / mb) * ((x - L/2) / (x + L/2))^2

Taking the square root of both sides and rearranging, we get:

ma / mb = 3 * (x + L/2) / (x - L/2)

To find da, the distance from ball a to the system's center of mass, we can use the fact that the center of mass is located at a point that balances the torques about both axes.

Let xm be the distance from ball b to the center of mass. Then we have:

ma(x - L/2) = mb(xm + L/2)

ma(x - L/2)^2 = mb(xm + L/2)^2

Solving for xm in terms of x, we get:

xm = (ma / mb)(x - L/2) - L/2

The center of mass is located at a point that balances the torques about both axes, so we also have:

Ia(x - da) = Ib(xm - da)

Substituting xm in terms of x, we get:

Ia(x - da) = Ib[(ma / mb)(x - L/2) - L/2 - da]

Simplifying, we get:

(x - da) / [(ma / mb)(x - L/2) - L/2 - da] = Ib / Ia

Substituting Ia / Ib = 3, we get:

(x - da) / [(ma / mb)(x - L/2) - L/2 - da] = 1/3

Cross-multiplying and simplifying, we get:

da = (2Lma) / (3(ma + mb))

Therefore, the ratio of the masses of the two balls is 3(x + L/2) / (x - L/2), and da, the distance from ball a to the system's center of mass, is (2Lma) / (3(ma + mb)).

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a ball whose mass is 0.3 kg hits the floor with a speed of 4 m/s and rebounds upward with a speed of 1 m/s. if the ball was in contact with the floor for 2 ms (210-3 s), what was the average magnitude of the force exerted on the ball by the floor?

Answers

The force the floor typically applies to the ball is on average magnitude  is 750 N.

The initial momentum of the ball:

[tex]p_1 = m*v_1 = 0.3 kg * 4 m/s = 1.2 kg m/s[/tex]

The final momentum of the ball:

[tex]p_2 = m*v_2 = 0.3 kg * (-1 m/s) = -0.3 kg m/s[/tex]

The difference in momentum of the ball is therefore:

Δp = [tex]p_2 - p_1 = -1.5 kg m/s[/tex]

Δp = FΔt

Δt = 2×10^-3 s.

F = Δp/Δt = (-1.5 kg m/s)/(2×10^-3 s) = -750 N

|F| = 750 N

Magnitude is a term used to describe the size, amount, or extent of something. In science and mathematics, magnitude often refers to the numerical value or quantity of a measurement or vector. For example, the magnitude of a force is the amount of force being applied, while the magnitude of an earthquake is a measure of the energy released.

In astronomy, magnitude is used to describe the brightness of celestial objects such as stars and galaxies. The magnitude scale was developed by ancient Greek astronomers, with lower magnitudes indicating brighter objects. Today, astronomers use the apparent magnitude scale, which takes into account both the intrinsic brightness of an object and its distance from Earth. In general usage, magnitude can refer to the importance, impact, or significance of something.

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the current in a coil changes from 3.70 a to 2.20 a in the same direction in 0.520 s. if the average emf induced in the coil is 16.0 mv, what is the inductance of the coil?

Answers

The inductance of the coil is 0.028 H.

To find the inductance of the coil, first, we need to determine the change in current (∆I) and the rate of change of current (dI/dt).

1. Calculate the change in current: ∆I = I_final - I_initial = 2.20 A - 3.70 A = -1.50 A.


2. Calculate the rate of change of current: dI/dt = ∆I / ∆t = -1.50 A / 0.520 s = -2.885 A/s.


3. Use Faraday's Law: |emf| = L * |dI/dt|, where emf is the average induced electromotive force, and L is the inductance.


4. Solve for L: L = |emf| / |dI/dt| = 16.0 mV / 2.885 A/s = 0.028 H.

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1. A machine with an input power of 2kW is made in part of 40kg iron and it experiences a rise in temperature after 2. minutes of use. If the machine is 80% power efficient, calculate the rise in temperature (Specific heat capacity of iron = 500J/kgK) A. 2,4°c B. 5.4°c C. 4.8°c D. 4.2°C ​

Answers

The rise in temperature of the iron part of the machine is approximately 9.6°C.

What is heat transfer?

Heat transfer is the movement of thermal energy from one object or system to another due to a temperature difference. Thermal energy, which is the energy associated with the motion of particles within a substance, always moves from higher temperature regions to lower temperature regions until thermal equilibrium is achieved.

Equation:

To calculate the rise in temperature of the iron part of the machine, we can use the following formula:

Q = m × c × ΔT

where Q is the heat absorbed by the iron part of the machine, m is the mass of the iron part, c is the specific heat capacity of iron, and ΔT is the rise in temperature.

First, we need to calculate the heat generated by the machine in 2 minutes, using its input power and efficiency:

P = 2 kW

Efficiency = 80% = 0.8

t = 2 minutes = 120 seconds

Energy generated by the machine = P × t × efficiency

Energy generated by the machine = 2 kW × 120 s × 0.8

Energy generated by the machine = 192 kJ

Next, we can calculate the mass of the iron part of the machine using its density:

Density of iron = 7.87 g/cm³ = 7870 kg/m³

Mass of iron part = 40 kg

Now, we can substitute the values into the formula and solve for ΔT:

Q = m × c × ΔT

ΔT = Q / (m × c)

ΔT = 192000 J / (40 kg × 500 J/kgK)

ΔT = 9.6°C

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The given options to the question must also include 9.6°C.

which kind of disturbance is created by moving a spring toy up and down?responsesin a circular motionin a circular motion,in the same direction as the wave motionin the same direction as the wave motion,parallel to the wave motionparallel to the wave motion,perpendicular to the wave motion

Answers

Moving a spring toy up and down creates a disturbance that is parallel to the wave motion. This type of disturbance is called a longitudinal wave.

In a longitudinal wave, the particles of the medium oscillate parallel to the direction of the wave motion. When you move a spring toy up and down, you create a series of compressions and rarefactions in the spring, where the coils are compressed together and then spread apart.

This creates a longitudinal wave that travels through the spring. Sound waves are also examples of longitudinal waves, where the compression and rarefaction of air particles create the wave motion.

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what is the magnitude of the radial component of acceleration of the point just as the centrifuge begins its decelerati

Answers

The magnitude of the radial component of acceleration is 1.25 m/s^2.

To solve this problem, we can use the formula for radial acceleration:

a_r = r * (Δω / Δt)

where a_r is the radial acceleration, r is the distance from the axis of rotation, Δω is the change in angular velocity, and Δt is the time interval over which the change occurs.

Plugging in the given values, we get:

a_r = 0.75 m * ((10 rad/s - 15 rad/s) / 3 s)

a_r = 0.75 m * (-1.67 rad/s^2)

a_r = -1.25 m/s^2

Note that the negative sign indicates that the acceleration is directed inward, towards the axis of rotation. So the magnitude of the radial component of acceleration is:

|a_r| = 1.25 m/s^2

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--The complete question is, What is the magnitude of the radial component of acceleration of a point located at a distance of 0.75 meters from the axis of rotation of a centrifuge, just as it begins its deceleration from an angular velocity of 15 rad/s to 10 rad/s over a time period of 3 seconds?--

A satellite circles planet Roton every 6.3 h
in an orbit having a radius of 3.5 × 107 m.
If the radius of Roton is 1.75 × 107 m, what
is the magnitude of the free-fall acceleration
on the surface of Roton?

Answers

Answer:

The period (T) of a satellite in a circular orbit can be determined using the formula:

T = 2πr/v

where r is the radius of the orbit and v is the speed of the satellite.

We can rearrange this formula to solve for v:

v = 2πr/T

Substituting the given values, we get:

v = 2π(3.5 × 10^7 m)/(6.3 h × 3600 s/h) ≈ 5,099 m/s

The centripetal force (F) that keeps the satellite in orbit is given by:

F = mv^2/r

where m is the mass of the satellite.

The gravitational force (Fg) between the satellite and Roton is given by:

Fg = GmM/R^2

where G is the gravitational constant, M is the mass of Roton, and R is the radius of Roton.

Since the satellite is in a circular orbit, the centripetal force is equal to the gravitational force:

mv^2/r = GmM/R^2

Simplifying and solving for M, we get:

M = v^2r/GR^2

Substituting the given values, we get:

M = (5,099 m/s)^2 × 3.5 × 10^7 m/(6.674 × 10^-11 m^3/kg s^2) × (1.75 × 10^7 m)^2 ≈ 8.35 × 10^23 kg

The free-fall acceleration (g) on the surface of Roton is given by:

g = GM/R^2

Substituting the calculated value of M and the given value of R, we get:

g = (6.674 × 10^-11 m^3/kg s^2) × (8.35 × 10^23 kg)/(1.75 × 10^7 m)^2 ≈ 8.73 m/s^2

Therefore, the magnitude of the free-fall acceleration on the surface of Roton is approximately 8.73 m/s^2

Select the correct answer. Which statement best explains the relationship between the electric force between two charged objects and the distance between them?
A. As the distance increases by a factor, the electric force increases by the square of that factor.
B. As the distance increases by a factor, the electric force increases by twice that factor.
C. As the distance increases by a factor, the electric force decreases by twice that factor.
D. As the distance increases by a factor, the electric force decreases by the same factor.
E. As the distance increases by a factor, the electric force decreases by the square of that factor.

Answers

Answer:

E

"As the distance increases by a factor, the electric force decreases by the square of that factor" best explains the relationship between the electric force between two charged objects and the distance between them.

The force exerted on the charged particles is inversely proportional to the square of the distance between them. The further they are the less the force the closer they are the more the force.

The correct answer between all the choices given is the last choice or letter E.

the rotational velocity of a merry-go-round increases at a constant rate from 2.5 rad/s to 18.6 rad/s in a time of 12.5 s. what is the rotational acceleration of the merry-go-round?

Answers

The merry-go-rotational round's acceleration may be computed using the following formula: (final rotational velocity - starting rotational velocity) / time Equals rotational acceleration.

Using the provided values, we get: Rotational acceleration = (12.5 s x (18.6 rad/s - 2.5 rad/s 1.368 rad/s2 rotational acceleration As a result, the merry-go-rotational round's acceleration is 1.368 rad/s2. This suggests that the merry-go-rotational round's velocity is growing at a rate of 1.368 rad/s2. In other words, the rotational velocity of the merry-go-round increases by 1.368 radians per second for every second that passes. Understanding rotational acceleration is crucial in engineering and physics because it is used to describe the motion of spinning items like gears and wheels, which can affect their performance and stability.

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to stretch a spring a distance of 0.3 m from the equilibrium position, 120 j of work is done. what is the value of the spring constant k?

Answers

It takes 120 j of effort to extend a spring 0.3 m from its equilibrium state. The value of the spring constant k is 2666.67 N/m.

The work done to stretch a spring is given by the formula:

W = 0.5 × k × x^2

where W is the work done, k is the spring constant, and x is the distance the spring is stretched from its equilibrium position.

In this problem, we know that the work done is 120 J and the distance the spring is stretched is 0.3 m. Substituting these values into the formula, we get:

120 = 0.5 × k × 0.3^2

Simplifying the equation, we get:

k = 120 / (0.5 × 0.3^2)

k = 2666.67 N/m

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what is the maximum kinetic energy in ev of electrons ejected from a certain metal by 442 nm em radiation, given the work function is 2.34 ev?

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The maximum kinetic energy of the ejected electrons is approximately 1.16 eV. To find the maximum kinetic energy (KE) of ejected electrons, we can use the photoelectric effect equation:

KE = hf - W

where h is Planck's constant [tex](4.14 × 10^(-15) eV·s)[/tex], f is the frequency of the electromagnetic radiation, W is the work function (2.34 eV), and KE is the maximum kinetic energy.

First, we need to find the frequency (f) using the wavelength (λ) given:

c = λf

where c is the speed of light [tex](3 × 10^8 m/s)[/tex].

1. Convert the wavelength to meters: [tex]442 nm × 10^(-9) m/nm = 4.42 × 10^(-7) m[/tex]

2. Rearrange the equation to solve for [tex]f: f = c / λ[/tex]

3. Calculate [tex]f: f = (3 × 10^8 m/s) / (4.42 × 10^(-7) m) ≈ 6.79 × 10^14 Hz[/tex]

Now, we can find the maximum kinetic energy (KE) using the photoelectric effect equation:

4. Calculate KE: [tex]KE = (4.14 × 10^(-15) eV·s × 6.79 × 10^14 Hz) - 2.34 eV ≈ 1.16 eV[/tex]

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Which of the following best represents

Answers

B i suppose is the answer

what must the charge (sign and magnitude) of a particle of mass 1.46 g be for it to remain stationary when placed in a downward-directed electric field of magnitude 670 n/c ?

Answers

To remain stationary in a downward-directed electric field of magnitude 670 N/C, the electric force acting on the charged particle must be equal in magnitude and opposite in direction to the gravitational force acting on the particle.

The gravitational force acting on the particle can be calculated using the formula Fg = mg, where m is the mass of the particle and g is the acceleration due to gravity (9.81 m/s^2).

Fg = mg = (1.46 g)(9.81 m/s^2) = 14.33 × 10^-3 N

The electric force acting on the charged particle can be calculated using the formula Fe = qE, where q is the charge of the particle and E is the electric field strength. Fe = qE = (q)(670 N/C)

To remain stationary, the electric force and gravitational force must be equal and opposite, so we can set them equal to each other and solve for the charge q: Fe = Fg

[tex](q)(670 N/C) = 14.33 × 10^-3 N[/tex]

[tex]q = (14.33 × 10^-3 N) / (670 N/C)[/tex]

[tex]q = 2.14 × 10^-5 C[/tex]

Since the particle is stationary in a downward-directed electric field, the charge must be negative, so the charge of the particle is[tex]-2.14 × 10^-5 C.[/tex]

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) A photo emissive surface has a threshold frequency of 4.02 x 10¹4Hz. Calculate the (i) threshold wavelength. (ii) work funtion. (iii) Kinetic energy of the emitted photoelectrons. (c = 3.0 x 108ms ¹; h=6.63 x 10-³4 Js).​

Answers

Answer:

i) The threshold wavelength is approximately 7.46 x 10⁻⁷ m.
ii) The work function is approximately 2.67 x 10⁻¹⁹ J.
iii) The kinetic energy of the emitted photoelectrons is approximately 2.66 x 10⁻¹⁹ J.


Step-by-step Explanation:

(i) The threshold frequency (f) is given as 4.02 x 10¹⁴ Hz. We can use the formula:

f = c/λ,

where c is the speed of light and
λ is the wavelength.

Rearranging the formula to solve for λ, we get:

λ = c/f
= (3.0 x 10⁸ m/s)/(4.02 x 10¹⁴ Hz)
≈ 7.46 x 10⁻⁷ m

Therefore, the threshold wavelength is approximately 7.46 x 10⁻⁷ m.

(ii) The work function (Φ) is defined as the minimum amount of energy required to remove an electron from the metal surface. We can use the formula:

Φ = hf - KE, where h is the Planck's constant, f is the frequency of the incident radiation, KE is the kinetic energy of the emitted photoelectrons.

At threshold frequency, the kinetic energy of the emitted photoelectrons is zero. Therefore, we can use the threshold frequency and Planck's constant to find the work function:

Φ = hf = (6.63 x 10⁻³⁴ J s)(4.02 x 10¹⁴ Hz) ≈ 2.67 x 10⁻¹⁹ J

Therefore, the work function is approximately 2.67 x 10⁻¹⁹ J.

(iii) The kinetic energy of the emitted photoelectrons can be found using the formula:

KE = hf - Φ

At threshold frequency, the kinetic energy is zero. Therefore, we can use the work function to find the kinetic energy of the emitted photoelectrons:

KE = hf - Φ = (6.63 x 10⁻³⁴ J s)(4.02 x 10¹⁴ Hz) - 2.67 x 10⁻¹⁹ J ≈ 2.66 x 10⁻¹⁹ J

Therefore, the kinetic energy of the emitted photoelectrons is approximately 2.66 x 10⁻¹⁹ J.

a 11.5 kg rifle fires a 0.050 kg bullet with a muzzle velocity of 600 m/s. what is the magnitude of the momentum of the rifle due to recoil after the gun has been fired?

Answers

The magnitude of the momentum of the rifle due to recoil after firing is 0.13 kg*m/s. The negative sign indicates that the rifle recoils in the opposite direction of the bullet's motion, by the law of conservation of momentum.

According to the law of conservation of momentum, the total momentum before and after an event must be the same. In this case, the momentum of the rifle and the bullet before firing is zero because they are at rest. After firing, the momentum of the bullet is given by the product of its mass and velocity, which is:

p_bullet = m_bullet * v_bullet

= 0.050 kg * 600 m/s

= 30 kg*m/s

The momentum of the rifle due to recoil can be found by multiplying the negative of the bullet's momentum by the mass ratio of the rifle to the bullet since the total momentum must be zero:

p_rifle = -m_bullet/m_rifle * p_bullet

= -(0.050 kg)/(11.5 kg) * 30 kgm/s

= -0.13 kgm/s

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the magnetometer will measure the total magnetic field. which of the components should be zero when the dipole is oriented along the y-axis, based on what you learned in the previous lab about the direction of magnetic field lines due to a dipole magnet?

Answers

The component of the magnetic field along the y-axis should be zero when the dipole is oriented along the y-axis.

This is because the magnetic field lines of a dipole magnet are perpendicular to the axis of the magnet. When the dipole is oriented along the y-axis, the axis of the dipole is also along the y-axis. Therefore, the magnetic field lines of the dipole are oriented in the x-z plane and are perpendicular to the y-axis. As a result, the component of the magnetic field along the y-axis is zero.

In contrast, when the dipole is oriented along the x-axis, the axis of the dipole is parallel to the x-axis, and the magnetic field lines of the dipole are perpendicular to the x-axis. Therefore, the component of the magnetic field along the x-axis is zero. Similarly, when the dipole is oriented along the z-axis, the axis of the dipole is parallel to the z-axis, and the magnetic field lines of the dipole are perpendicular to the z-axis. Therefore, the component of the magnetic field along the z-axis is zero.

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(i) the asteroid icarus, though only a few hundred meters across, orbits the sun like the planets. its period is 410 d. what is its mean distance from the sun?

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The mean distance of the asteroid Icarus from the Sun is approximately 1.24 astronomical units.


The mean distance of the asteroid Icarus from the Sun can be determined using Kepler's Third Law of Planetary Motion. This law states that the square of the orbital period (T) is proportional to the cube of the semi-major axis (a) of the orbit. Mathematically, it can be written as:

T² ∝ a³

We can use the Earth's orbit as a reference, which has a period of 365.25 days and a semi-major axis of 1 astronomical unit (AU).

Using the given period of Icarus (410 days), we can set up the following proportion:

(410² / 365.25²) = (a³ / 1³)

Calculating the left side of the equation gives:

(168100 / 133483.0625) = a³

Taking the cube root of both sides, we get:

a ≈ 1.24 AU

So, the mean distance of the asteroid Icarus from the Sun is approximately 1.24 astronomical units.

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two masses, m1 and m2 are separated by a distance d. What changes in variables will result in no change in the gravitational force between two masses ?

a)m1 is doubled and d is doubled
b)m2 is tripled and d is quadrupled c)both m1 is tripled and d is tripled d)None of them I need the answer urgently ​

Answers

The changes in the variables that will result in no change in the gravitational force between m1 and m2 is if m1 is doubled and d is doubled. Option A.

Gravitational force

The gravitational force between two masses depends on the masses and the distance between them, according to the equation F = G(m1m2)/d^2, where F is the gravitational force, G is the gravitational constant, m1 and m2 are the masses, and d is the distance between them.

To have no change in the gravitational force between two masses, we need to keep the value of F constant. This can be achieved by changing the variables in the following way:

If m1 is doubled and d is doubled, then the value of F will be unchanged, as (2m1)(m2)/(2d)^2 = m1m2/d^2.If m2 is tripled and d is quadrupled, then the value of F will change, as (m1)(3m2)/(4d)^2 = 3m1m2/16d^2.If both m1 and d are tripled, then the value of F will change, as (3m1)(m2)/(3d)^2 = m1m2/3d^2.None of them will result in no change in the gravitational force between two masses.

Therefore, the correct answer is a), where m1 is doubled and d is doubled.

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how does water pressure 2m below the surface of a small pond compared with water pressure 2m below the surface

Answers

Water pressure 2m below the surface of a small pond is the same as water pressure 2m below the surface of any other body of water, which is determined by the weight of the water above it.

Water pressure is determined by the depth of water, the density of the water, and gravity. The pressure at a particular depth is determined by the weight of the water column above that point. Therefore, the water pressure 2m below the surface of a small pond is greater than the water pressure 2m below the surface of a larger body of water, such as a lake or ocean. This is because the weight of the water column above a given point is greater in a larger body of water.

Additionally, water pressure increases with depth regardless of the size of the body of water. This is due to the increasing weight of the water column above and the corresponding increase in the force of gravity acting on the water molecules.

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