Block 1, mass 1.00kg, slides east along a horizontal frictionless surface at 2.50m/s. It collides elastically with block 2, mass 5.00kg, which is also sliding east at 0.75m/s. Determine the final velocity of both blocks.

Answers

Answer 1

The final velocities of both blocks are 0.95 m/s and 0.31 m/s respectively.

Mass of Block 1, m1 = 1.00 kg

Initial velocity of block 1, u1 = 2.50 m/s

Mass of Block 2, m2 = 5.00 kg

Initial velocity of block 2, u2 = 0.75 m/s

Both blocks move in the same direction and collide elastically. Final velocities of both blocks to be determined.

Using conservation of momentum:

Initial momentum = Final momentum

m1u1 + m2u2 = m1v1 + m2v2

m1u1 + m2u2 = (m1 + m2) V....(1)

Using conservation of energy, for an elastic collision:

Total kinetic energy before collision = Total kinetic energy after collision

1/2 m1 u1² + 1/2 m2 u2² = 1/2 m1 v1² + 1/2 m2 v2²....(2)

Solving equations (1) and (2) to obtain the final velocities:

v1 = (m1 u1 + m2 u2) / (m1 + m2)v2 = (2 m1 u1 + (m2 - m1) u2) / (m1 + m2)

Substituting the given values,

m1 = 1.00 kg,

u1 = 2.50 m/s,

m2 = 5.00 kg,

u2 = 0.75 m/s

Final velocity of Block 1,

v1= (1.00 kg x 2.50 m/s + 5.00 kg x 0.75 m/s) / (1.00 kg + 5.00 kg)= 0.95 m/s (East)

Final velocity of Block 2,

v2 = (2 x 1.00 kg x 2.50 m/s + (5.00 kg - 1.00 kg) x 0.75 m/s) / (1.00 kg + 5.00 kg)= 0.31 m/s (East)

Thus, the final velocity of block 1 is 0.95 m/s (East) and the final velocity of block 2 is 0.31 m/s (East).

Hence, the final velocities of both blocks are 0.95 m/s and 0.31 m/s respectively.

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Related Questions

When both focii of an ellipse are located at exactly the same position, then the eccentricity of must be: a) 0.5 b) 0.75 c) 0
d) 0.25
e) 1.0

Answers

When both foci of an ellipse coincide at the same position, the eccentricity of the ellipse is 0, and it becomes a circle. The answer is (c) 0.

When both foci of an ellipse are located at exactly the same position, the eccentricity of the ellipse must be 0. An ellipse is a set of points whose distance from two fixed points (foci) sum to a fixed value. The distance between the foci is the major axis length, and the distance between the vertices is the minor axis length. The formula for an ellipse is (x−h)2/a2+(y−k)2/b2=1.

The distance between the foci is 2c, which is always less than the length of the major axis. The relationship between the semi-major axis a and semi-minor axis b of an ellipse is given by a2−b2=c2. An ellipse's eccentricity is defined as the ratio of the distance between the foci to the length of the major axis, with e=c/a. When the two foci coincide at the same position, the eccentricity of the ellipse is 0, and the ellipse becomes a circle.

The answer is (c) 0.

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A diverging lens has a focal distance of -5cm. a) Using the lens equation, find the image and size of an object that is 2cm tall and it is placed 10cm from the lens. [5 pts] b) For the object in 2a) above, what are the characteristics of the image, real or virtual, larger, smaller or of the same size, straight up or inverted?

Answers

A diverging lens has a focal distance of -5cm. The focal length of the lens = -5 cm .characteristics of the image will be: Virtual image . Therefore, the image is 3cm tall.

The given diverging lens has a focal distance of -5 cm, and an object of 2cm tall is placed 10cm from the lens.

We need to find the image and the size of the object by using the lens equation.

Lens equation is given as: 1/v - 1/u = 1/f Where ,f is the focal length of the lens, v is the image distance, u is the object distance

Here, the focal length of the lens = -5 cm

Object distance = u = -10 cm (Negative sign indicates the object is in front of the lens)Height of the object = h = 2 cm

Let's calculate the image distance(v) by substituting the values in the lens equation.1/v - 1/-10 = 1/-5Simplifying the equation, we get, v = -15 cm

Since the image distance(v) is negative, the image is virtual, and the characteristics of the image will be: Virtual image

Larger than the object (since the object is placed beyond the focal point)Erect image (since the object is placed between the lens and the focal point)

Therefore, the image is 3cm tall.

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Find the magnitude of the magnetic field at the center of a 45 turn circular coil with radius 16.1 cm, when a current of 3.47 A flows in it. magnitude:

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The magnitude of the magnetic field at the center of a 45 turn circular coil with radius 16.1 cm  is approximately 4.83 × 10^-5 Tesla.

To find the magnitude of the magnetic field at the center of a circular coil, we can use the formula for the magnetic field inside a coil:

B = (μ₀ * N * I) / (2 * R)

where B is the magnetic field, μ₀ is the permeability of free space (4π × 10^-7 T·m/A), N is the number of turns in the coil, I is the current flowing through the coil, and R is the radius of the coil.

In this case, the coil has 45 turns, a radius of 16.1 cm (or 0.161 m), and a current of 3.47 A.

Plugging in the values into the formula, we have:

B = (4π × 10^-7 T·m/A) * (45) * (3.47 A) / (2 * 0.161 m)

Simplifying the equation, we find:

B ≈ 4.83 × 10^-5 T

Therefore, the magnitude of the magnetic field at the center of the coil is approximately 4.83 × 10^-5 Tesla.

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What is the escape speed from an asteroid of diameter 395 km with a density of 2180 kg/m³ ? ►View Available Hint(s) k

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The escape speed from an asteroid with a diameter of 395 km and a density of [tex]2180 kg/m^3[/tex] is approximately 2.43 km/s.

To calculate the escape speed, we need to use the formula [tex]v = \sqrt(2GM/r)[/tex], where v is the escape speed, G is the gravitational constant (approximately [tex]6.67430 * 10^-^1^1 N(m/kg)^2)[/tex], M is the mass of the asteroid, and r is the radius of the asteroid.

First, we calculate the mass of the asteroid using the formula [tex]M = (4/3)\pi r^3\rho[/tex], where ρ is the density of the asteroid. Given that the diameter is 395 km, the radius can be calculated as r = (395 km)/2 = 197.5 km. Converting the radius to meters, we have r = 197,500 m. Now we can calculate the mass using the density value of [tex]2180 kg/m^3[/tex].

Plugging these values into the formula, we find the mass to be approximately [tex]2.754 * 10^2^0[/tex] kg. Finally, we can substitute the values of G, M, and r into the escape speed formula to obtain the result. The escape speed from the asteroid is approximately 2.43 km/s.

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The Sidereal day is
-different than the Solar day due to the fact that the Earth revolves around the Sun.
-different than the Solar day due to the fact that the Earth has a nearly circular orbit.
-different than the Solar day due to the fact that the Earth is tilted on its axis.
-different than the Solar day due to the fact that the stars’ light takes many years–sometimes billions of years–to reach Earth.

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The Sidereal day is different than the Solar day due to the fact that the Earth revolves around the Sun.

The period it takes for a planet to complete one rotation about its axis, as measured against the stars, is known as a sidereal day. In general, the length of a sidereal day varies depending on the planet's rotation speed. A sidereal day on Earth, for example, is around 23 hours, 56 minutes, and 4 seconds long. The sidereal day is different from the solar day due to the fact that the Earth revolves around the Sun. The period it takes for a planet to complete one rotation about its axis, as measured against the Sun, is known as a solar day. The length of a solar day on Earth is around 24 hours long.

Since the Earth's rotation rate varies throughout the year due to its elliptical orbit around the Sun, a solar day is not exactly 24 hours long every day of the year. However, its average length over the course of a year is roughly 24 hours. The difference between a sidereal and solar day is that the Earth rotates on its axis in the same direction as it orbits the Sun, resulting in a small difference in its position each day. As a result, the Earth must rotate slightly more than one full turn for the Sun to return to the same apparent position in the sky.

The sidereal day is the time it takes for the Earth to complete one full rotation about its axis with respect to the stars.

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A ball of mass 0.125 kg is dropped from rest from a height of 1.25 m. It rebounds from the floor to reach a height of 0.700 m. What impulse was given to the ball by the floor? magnitude kg⋅m/s direction High-speed stroboscopic photographs show that the head of a 280−g golf club is traveling at 55 m/s just before it strikes a 46−g golf ball at rest on a tee. After the collision, the club head travels (in the same direction) at 41 m/s. Find the speed of the golf ball just after impact. m/5

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A ball of mass 0.125 kg is dropped from rest from a height of 1.25 m. It rebounds from the floor to reach a height of 0.700 m.   the magnitude of the impulse given to the ball by the floor is approximately 0.6975 kg⋅m/s.

To find the impulse given to the ball by the floor, we can use the principle of conservation of momentum. Since the ball is dropped from rest, its initial momentum is zero.

Given:

Mass of the ball, m = 0.125 kg

Initial height, h_i = 1.25 m

Final height, h_f = 0.700 m

First, we can calculate the initial velocity of the ball using the equation for potential energy:

mgh_i = (1/2)mv^2

0.125 kg * 9.8 m/s^2 * 1.25 m = (1/2) * 0.125 kg * v^2

v = √(2 * 9.8 m/s^2 * 1.25 m) ≈ 3.14 m/s

Next, we can calculate the final velocity of the ball using the equation for potential energy:

mgh_f = (1/2)mv^2

0.125 kg * 9.8 m/s^2 * 0.700 m = (1/2) * 0.125 kg * v^2

v = √(2 * 9.8 m/s^2 * 0.700 m) ≈ 2.44 m/s

The change in velocity, Δv, can be calculated by subtracting the initial velocity from the final velocity:

Δv = v_f - v_i

Δv = 2.44 m/s - (-3.14 m/s)

Δv ≈ 5.58 m/s

Finally, we can calculate the impulse using the equation:

Impulse = Δp = m * Δv

Impulse = 0.125 kg * 5.58 m/s ≈ 0.6975 kg⋅m/s

Therefore, the magnitude of the impulse given to the ball by the floor is approximately 0.6975 kg⋅m/s.

As for the direction, the impulse given by the floor acts in the opposite direction to the initial velocity, which is upward. Therefore, the direction of the impulse would be downward.

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Question \| 1: What is weather? a) The outside conditions right now, b) The outside conditions over a lofe period of time. c) A tool to measure the outside weather conditions.

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The question can be answered as: Weather is the state of the atmosphere at a specific place and time. It refers to the current conditions such as temperature, humidity, wind, precipitation, and air pressure

Weather refers to the condition of the atmosphere at a given place and time, especially as it relates to temperature, precipitation, and other features like cloudiness, humidity, wind, and air pressure. It refers to the current state of the atmosphere rather than the average conditions over an extended period of time.Weather is usually described in terms of variables such as temperature, humidity, atmospheric pressure, wind speed and direction, and precipitation. Measuring instruments, such as thermometers, barometers, hygrometers, and wind vanes, are used to collect data on these variables. They help in predicting, reporting, and analyzing weather patterns.

The question can be answered as: Weather is the state of the atmosphere at a specific place and time. It refers to the current conditions such as temperature, humidity, wind, precipitation, and air pressure. It is not just a tool to measure the outside conditions but it describes the atmosphere's current state and its fluctuations over short periods.

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two light bulbs are connected separately across two 20 -V batteries as shown in the figure. Bulb A is rated as 20W, 20V and bulb B rates at 60W, 20V
A- which bulb has larger resistance
B which bulb will consume 1000 J of energy in shortest time

Answers

A) bulb A has a larger resistance than bulb B. B) bulb B will consume 1000 J of energy in the shortest time, approximately 16.67 seconds.  

A) To determine which bulb has a larger resistance, we can use Ohm's law, which states that resistance is equal to voltage divided by current (R = V/I).

For bulb A, since it is rated at 20W and 20V, we can calculate the current using the formula for power: P = IV.

20W = 20V * I

I = 1A

For bulb B, since it is rated at 60W and 20V, the current can be calculated as:

60W = 20V * I

I = 3A

Now we can compare the resistances of the bulbs using Ohm's law:

For bulb A, R = 20V / 1A = 20 ohms

For bulb B, R = 20V / 3A ≈ 6.67 ohms

Therefore, bulb A has a larger resistance than bulb B.

B) To determine which bulb will consume 1000 J of energy in the shortest time, we can use the formula for electrical energy:

Energy = Power * Time

For bulb A, since it consumes 20W, we can rearrange the formula to solve for time:

Time = Energy / Power = 1000 J / 20W = 50 seconds

For bulb B, since it consumes 60W, the time can be calculated as:

Time = Energy / Power = 1000 J / 60W ≈ 16.67 seconds

Therefore, bulb B will consume 1000 J of energy in the shortest time, approximately 16.67 seconds.

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A skier has mass m = 80kg and moves down a ski slope with inclination 0 = 4° with an initial velocity of vo = 26 m/s. The coeffcient of kinetic friction is μ = 0.1. ▼ Part A How far along the slope will the skier go before they come to a stop? Ax = —| ΑΣΦ ? m

Answers

The skier will go approximately 33.47 meters along the slope before coming to a stop.

To determine how far along the slope the skier will go before coming to a stop, we need to analyze the forces acting on the skier.

The force of gravity acting on the skier can be divided into two components: the force parallel to the slope (mg sin θ) and the force perpendicular to the slope (mg cos θ), where m is the mass of the skier and θ is the inclination of the slope.

The force of kinetic friction acts in the opposite direction of motion and can be calculated as μN, where μ is the coefficient of kinetic friction and N is the normal force. The normal force can be calculated as mg cos θ.

Since the skier comes to a stop, the net force acting on the skier is zero. Therefore, we can set up the following equation:

mg sin θ - μN = 0

Substituting the expressions for N and mg cos θ, we have:

mg sin θ - μ(mg cos θ) = 0

Simplifying the equation:

mg(sin θ - μ cos θ) = 0

Now we can solve for the distance along the slope (x) that the skier will go before coming to a stop.

The equation for the distance is given by:

x = (v₀²) / (2μg)

where v₀ is the initial velocity of the skier and g is the acceleration due to gravity.

Given:

m = 80 kg (mass of the skier)

θ = 4° (inclination of the slope)

v₀ = 26 m/s (initial velocity of the skier)

μ = 0.1 (coefficient of kinetic friction)

g ≈ 9.8 m/s² (acceleration due to gravity)

Substituting the values into the equation:

x = (v₀²) / (2μg)

x = (26²) / (2 * 0.1 * 9.8)

x ≈ 33.47 meters

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The component of the external magnetic field along the central axis of a 46 turn circular coil of radius 16.0 cm decreases from 2.40 T to 0.100 T in 1.80 s. If the resistance of the coil is R=6.00Ω, what is the magnitude of the induced current in the coil? magnitude: What is the direction of the current if the axial component of the field points away from the viewer? clockwise counter-clockwise

Answers

the direction of the induced current in the coil is clockwise.  The magnitude of the induced current in the coil, we can use Faraday's law of electromagnetic induction, which states that the induced electromotive force (EMF) in a closed loop is equal to the negative rate of change of magnetic flux through the loop.

The magnitude of the induced current can then be found using Ohm's law (V = I * R), where V is the induced EMF and R is the resistance of the coil. First, let's calculate the change in magnetic flux through the coil. The magnetic flux is given by the product of the magnetic field component along the central axis (B) and the area (A) of the coil. Since the coil is circular, the area can be calculated using the formula A = π * [tex]r^2[/tex], where r is the radius of the coil.

Initial flux, Φ_i =[tex]B_i[/tex]* A = (2.40 T) * (π * ([tex]0.16 m)^2)[/tex]

Final flux, Φ_f = [tex]B_f[/tex] * A = (0.100 T) * (π * ([tex]0.16 m)^2)[/tex]

The change in flux, ΔΦ = Φ_f - Φ_i

Next, we need to calculate the rate of change of flux, which is equal to the change in flux divided by the time interval:

Rate of change of flux, ΔΦ/Δt = (ΔΦ) / (1.80 s)

Now, we can calculate the induced EMF using Faraday's law:

Induced EMF, V = -(ΔΦ/Δt)

Finally, we can use Ohm's law to calculate the magnitude of the induced current:

Magnitude of induced current, I = V / R

Let's plug in the given values and calculate:

Initial flux, Φ_i = (2.40 T) * (π * ([tex]0.16 m)^2[/tex]) = 0.768π [tex]T·m^2[/tex]

Final flux, Φ_f = (0.100 T) * (π * ([tex]0.16 m)^2[/tex]) = 0.0256π T·[tex]m^2[/tex]

Change in flux, ΔΦ = Φ_f - Φ_i = (0.0256π - 0.768π) T·[tex]m^2[/tex]= -0.7424π T·[tex]m^2[/tex]

Rate of change of flux, ΔΦ/Δt = (-0.7424π T·[tex]m^2[/tex]) / (1.80 s) ≈ -1.297π T·[tex]m^2[/tex]

Induced EMF, V = -(ΔΦ/Δt) ≈ 1.297π T·[tex]m^2/s[/tex]

Magnitude of induced current, I = V / R ≈ (1.297π T·[tex]m^2/s[/tex]/ (6.00 Ω) ≈ 0.683π A

Therefore, the magnitude of the induced current in the coil is approximately 0.683π Amperes.

To determine the direction of the current, we can use Lenz's law, which states that the induced current will flow in a direction such that it opposes the change in magnetic flux that caused it. Since the axial component of the field is pointing away from the viewer, which corresponds to a decreasing magnetic field, the induced current will flow in the clockwise direction to oppose this decrease.

So, the direction of the induced current in the coil is clockwise.

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A long cylinder having a diameter of 2 cm is maintained at 600 °C and has an emissivity of 0.4. Surrounding the cylinder is another long, thin-walled concentric cylinder having a diameter of 6 cm and an emissivity of 0.2 on both the inside and outside surfaces. The assembly is located in a large room having a temperature of 27 °C. Calculate the net radiant energy lost by the 2-cm-diameter cylinder per meter of length. Also calculate the temperature of the 6-cm- diameter cylinder

Answers

The net radiant energy lost by the 2-cm-diameter cylinder per meter of length is X Joules. The temperature of the 6-cm-diameter cylinder is Y °C.

To calculate the net radiant energy lost by the 2-cm-diameter cylinder per meter of length, we need to consider the Stefan-Boltzmann law and the emissivities of both cylinders. The formula for net radiant heat transfer is given:

Q_net = ε1 * σ * A1 * (T1^4 - T2^4)

Where:

- Q_net is the net radiant energy lost per meter of length.

- ε1 is the emissivity of the 2-cm-diameter cylinder.

- σ is the Stefan-Boltzmann constant (5.67 x 10^-8 W/(m^2·K^4)).

- A1 is the surface area of the 2-cm-diameter cylinder.

- T1 is the temperature of the 2-cm-diameter cylinder.

- T2 is the temperature of the surroundings (27 °C).

To calculate the temperature of the 6-cm-diameter cylinder, we can use the formula for the net radiant energy exchanged between the two cylinders:

Q_net = ε1 * σ * A1 * (T1^4 - T2^4) = ε2 * σ * A2 * (T2^4 - T3^4)

Where:

- ε2 is the emissivity of the 6-cm-diameter cylinder.

- A2 is the surface area of the 6-cm-diameter cylinder.

- T3 is the temperature of the 6-cm-diameter cylinder.

By solving these equations simultaneously, we can find the values of Q_net and T3.

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A long cylinder having a diameter of 2 cm is maintained at 600 °C and has an emissivity of 0.4. Surrounding the cylinder is another long, thin-walled concentric cylinder having a diameter of 6 cm and an emissivity of 0.2 on both the inside and outside surfaces. The assembly is located in a large room having a temperature of 27 °C. Calculate the net radiant energy lost by the 2-cm-diameter cylinder per meter of length. Also, calculate the temperature of the 6-cm-diameter cylinder

A separate excited motor with PN 18kW UN 220V, IN-94A, n№=1000rpm, Ra=0.150, calculate: (a) Rated electromagnetic torque TN (b) No-load torque To (c) Theoretically no-load speed no (d) Practical no-load speed no (e) Direct start current Istart

Answers

(a) The value of the rated electromagnetic torque TN is 0.17 N.m.

(b) The value of the No-load torque is 3.29 N.m.

(c) The value of the theoretically no-load speed is 411.8 V.

(d) The value of the practical no-load speed is 410.8 V.

(e) The value of the direct start current, is 470 A.

What is the value of Rated electromagnetic torque TN?

(a) The value of the rated electromagnetic torque TN is calculated as follows;

TN = (PN × 60) / (2π × Nn)

where;

PN is the rated power =  18 kW.Nn is the rated speed = 1000 rpm

TN = ( 18 x 60 ) / (2π x 1000 )

TN = 0.17 N.m

(b) The value of the No-load torque is calculated as;

To = (UN × IN) / (2π × Nn)

where;

IN is the rated current = 94AUN is the rated voltage = 220V

To = (UN × IN) / (2π × Nn)

To = (220 x 94 ) / ((2π x 1000 )

To = 3.29 N.m

(c) The value of the theoretically no-load speed is calculated as;

no = (UN - (Ra × IN)) / K

where;

Ra is the armature resistance = 0.15 ΩK is a constant = 0.5, assumed.

no = ( 220 - (0.15 x 94) / (0.5)

no = 411.8 V

(d) The value of the practical no-load speed is calculated as;

no = (UN - (Ra × IN) - (To × Ra)) / K

no = (220 - (0.15 x 94) - (3.29 x 0.15) ) / 0.5

no = 410.8 V

(e) The value of the direct start current, is calculated as;

Istart = 5 × IN

Istart = 5 x 94 A

Istart = 470 A

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a 2.0 kg book sits on a table. a) the net vertical force on the book is

Answers

Since the book is at rest on the table, its acceleration is zero, so the net force on the book must be zero. Therefore, the magnitude of the support force must be equal to the magnitude of the book's weight, which is Fw=mg=(2kg)(10m/s2)=20N.

Water is pumped up to a water tower, which is 92.0m high. The flow rate up to the top of the tower is 75.0 L/s and each liter of water has a mass of 1.00 kg. What power is required to keep up this flow rate to the tower? (pls explain steps!)

Answers

The power required is  66.09 kW for maintaining a flow rate of 75.0 L/s to a water tower that stands 92.0m high, the steps for calculation will be explained.

The power required to maintain the flow rate to the water tower can be determined by considering the amount of work needed to lift the water against gravity.

First, we need to find the mass of water being pumped per second. Since each litre of water has a mass of 1.00 kg, the mass of water per second would be:

75.0 kg/s (75.0 L/s * 1.00 kg/L).

Next, calculate the work done to lift the water. The work done is given by the formula:

W = mgh,

where m is the mass, g is the acceleration due to gravity (approximately 9.8 m/s²), and h is the height of the tower.

Plugging in the values,

[tex]W = (75.0 kg/s) * (9.8 m/s^2) * (92.0 m)[/tex]

= 66,090 J/s (or 66.09 kW).

Therefore, the power required to maintain the flow rate of 75.0 L/s to the tower is approximately 66.09 kW. This power is needed to overcome the gravitational force and lift the water to the height of the tower.

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Consider a circular sunspot, which has a temperature of 4000 K while the rest of the surface of the Sun has a temperature of 6000 K. a) What is the wavelength of maximum emission of the sunspot? HINT: This is once again an application of Wien's Law. It will tell us the "color" of the sunspot. b) Compare the luminosity of this sunspot to that of a section of the Sun with the same area HINT: Here we use the Luminosity formula. Remember to show all your work! c) The sunspot is so dark because it is seen against the backdrop of the much brighter Sun. Describe what the sunspot would look like if it were separated from the Sun. HINT: Use your answers from the previous two sections to put together an answer for this question. d) What is the surface area of this sunspot, if it has the same radius as the Earth, in square centimeters? What is the area of a light bulb whose filament is 2 cm in radius? How does the luminosity of the sunspot compare to that of the light bulb, if they both have the same temperature? HINT: Consider both objects to be CIRCLES for purposes of their surface areas. Again we use the Luminosity formula.

Answers

A circular sunspot, which has a temperature of 4000 K while the rest of the surface of the Sun has a temperature of 6000 K. (a)The wavelength of maximum emission of the sunspot is approximately 7.245 x 10^-7 meters.(b)The luminosity of the sunspot is approximately 0.346 times the luminosity of a section of the Sun with the same area.(c) The luminosity of the sunspot is equal to the luminosity of the light bulb, assuming they both have the same temperature.

a) To find the wavelength of maximum emission (λmax) of the sunspot, we can use Wien's displacement law, which states that the wavelength of maximum emission is inversely proportional to the temperature. The equation for Wien's law is:

λmax = (b / T)

Where:

λmax = wavelength of maximum emission

b = Wien's displacement constant (approximately 2.898 x 10^-3 m·K)

T = temperature in Kelvin

For the sunspot, T = 4000 K. Plugging this into the equation:

λmax = (2.898 x 10^-3 m·K) / (4000 K)

Calculating:

λmax ≈ 7.245 x 10^-7 m

Therefore, the wavelength of maximum emission of the sunspot is approximately 7.245 x 10^-7 meters.

b) To compare the luminosity of the sunspot to a section of the Sun with the same area, we need to use the luminosity formula:

L = σ × A × T^4

Where:

L = luminosity

σ = Stefan-Boltzmann constant (approximately 5.67 x 10^-8 W/(m^2·K^4))

A = surface area

T = temperature in Kelvin

Let's assume the area of the sunspot is A1 and the area of the section of the Sun is A2 (both have the same area). The luminosity of the sunspot (L1) is given by:

L1 = σ × A1 × T1^4

And the luminosity of the section of the Sun (L2) is given by:

L2 = σ × A2 × T2^4

Since the two areas are the same, A1 = A2. We can compare the luminosity ratio:

L1 / L2 = (σ × A1 × T1^4) / (σ × A2 × T2^4)

Canceling out the common terms:

L1 / L2 = (T1^4) / (T2^4)

Substituting the temperatures:

T1 = 4000 K (sunspot temperature)

T2 = 6000 K (rest of the Sun's surface temperature)

Calculating:

L1 / L2 = (4000 K)^4 / (6000 K)^4

L1 / L2 ≈ 0.346

Therefore, the luminosity of the sunspot is approximately 0.346 times the luminosity of a section of the Sun with the same area.

c) The sunspot appears darker because its temperature is lower than the surrounding area on the Sun's surface. Since it has a lower temperature, it emits less radiation and appears darker against the backdrop of the brighter Sun. If the sunspot were separated from the Sun, it would still appear as a dark circular region against the background of the brighter sky.

d) The surface area of the sunspot, assuming it has the same radius as the Earth, can be calculated using the formula for the surface area of a sphere:

A = 4πr^2

Where:

A = surface area

r = radius

Let's assume the radius of the sunspot is R (equal to the radius of the Earth), so the surface area (A1) is given by:

A1 = 4πR^2

For the light bulb, with a filament radius of 2 cm, the surface area (A2) is given by:

A2 = 4π(2 cm)^2

To compare the luminosity of the sunspot and the light bulb, we can use the same luminosity ratio as before:

L1 / L2 = (T1^4) / (T2^4)

Since both objects have the same temperature, T1 = T2. Therefore:

L1 / L2 = (T1^4) / (T1^4)

L1 / L2 = 1

Therefore, the luminosity of the sunspot is equal to the luminosity of the light bulb, assuming they both have the same temperature.

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Select one correct answer from the available options in the below parts. a) You shine monochromatic light of wavelength ⋀ through a narrow slit of width b = ⋀ and onto a screen that is very far away from the slit. What do you observe on the screen? A. Two bright fringes and three dark fringes B. one bright band C. A series of bright and dark fringes with the central bright fringe being wider and brighter than the other bright fringes D. A series of bright and dark fringes that are of equal widths b) What does it mean for two light waves to be in phase ? A. The two waves reach their maximum value at the same time and their minimum value at the same time B. The two waves have the same amplitude C. The two waves propagate in the same direction D. The two waves have the same wavelength and frequency

Answers

a) The correct answer is C. A series of bright and dark fringes with the central bright fringe being wider and brighter than the other bright fringes.

b) The correct answer is A. The two waves reach their maximum value at the same time and their minimum value at the same time.

The brilliant middle fringe is a result of light's beneficial interference. The two light sources (slits) are symmetrically closest to the centre fringe as well. As one walks out from the core, the fringes continue to progressively become darker and the central fringe is the brightest.

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A current loop having area A=4.0m^2 is moving in a non-uniform magnetic field as shown. In 5.0s it moves from an area having magnetic field magnitude Bi=0.20T to having a greater magnitude Bf
The average magnitude of the induced emf in the loop during this journey is 2.0 V
Find Bf

Answers

The magnetic field magnitude, Bf, is 2.5 T.

Given,A current loop having area A=4.0m² is moving in a non-uniform magnetic field as shown. In 5.0s it moves from an area having magnetic field magnitude Bi=0.20T to having a greater magnitude Bf. The average magnitude of the induced emf in the loop during this journey is 2.0 V. We have to find Bf.

The formula for the average magnitude of the induced emf in the loop is:

Average magnitude of induced emf = ΔΦ/ΔtHere, the change in magnetic flux is given by,ΔΦ = Bf × A - Bi × A= (Bf - Bi) × A

Also, time duration of the journey, Δt = 5.0 s

Therefore, the above formula can be rewritten as,2 = (Bf - 0.20) × 4.0/5.0

Simplifying the above equation for Bf, we get,Bf = (2 × 5.0/4.0) + 0.20= 2.5 V

The magnetic field magnitude, Bf, is 2.5 T.

The answer is, Bf = 2.5T

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A circular loop of wire with a radius 7.932 cm is placed in a magnetic field such that it induces an EMF of 3.9 V in the cir- cular wire loop. If the cross-sectional diame- ter of the wire is 0.329 mm, and the wire is made of a material which has a resistivity of 1.5 × 10⁻⁶ Nm, how much power is dissipated in the wire loop? Answer in units of W.

Answers

Radius of the circular loop, r = 7.932 cm Cross-sectional diameter of the wire, d = 0.329 mm Resistivity of the material, ρ = 1.5 × 10⁻⁶ Nm EMF induced in the circular wire loop, E = 3.9 V

We can find out the current in the circular loop of wire using the formula,

EMF = I × R where I is the current flowing through the wire and R is the resistance of the wire. R = ρl / A Diameter of the wire, d = 0.329 mm Radius of the wire, r' = 0.329 / 2 = 0.1645 mm Area of cross-section of the wire, A = πr'² = π(0.1645 × 10⁻³ m)² = 2.133 × 10⁻⁷ m² Length of the wire, l = 2πr = 2π(7.932 × 10⁻² m) = 0.4986 m

Resistance of the wire, R = (1.5 × 10⁻⁶ Nm × 0.4986 m) / 2.133 × 10⁻⁷ m² = 35.108 ΩI = E / R = 3.9 V / 35.108 Ω = 0.111 A

The magnetic field, B = E / A = 3.9 V / 2.133 × 10⁻⁷ m² = 1.829 × 10⁴ T

Power, P = I²R = (0.111 A)² × 35.108 Ω = 0.0436 W

Therefore, the power dissipated in the wire loop is 0.0436 W.

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At what separation distance do two-point charges of 2.0 μC and −3.0 μC exert a force of attraction on each other of 565 N?

Answers

The separation distance between two-point charges of 2.0 μC and −3.0 μC exert a force of attraction on each other of 565 N is 1.9 × 10⁻⁴ m.

The separation distance between two-point charges that exert a force on each other can be calculated by Coulomb's law states that the force of attraction or repulsion between two point charges is directly proportional to the product of the magnitude of the charges and inversely proportional to the square of the separation distance between them. The Coulomb's law can be expressed by the given formula:

F = k(q₁q₂/r²), Where,

F = force exerted between two-point charges

q₁ and q₂ = magnitude of the two-point charges

k = Coulomb's constant = 9 × 10⁹ N m² C⁻².

r = separation distance between two-point charges

On substituting the given values in Coulomb's law equation:

F = k(q₁q₂/r²)

565 = 9 × 10⁹ × (2 × 10⁻⁶) × (3 × 10⁻⁶)/r²

r² = 9 × 10⁹ × (2 × 10⁻⁶) × (3 × 10⁻⁶)/565

r = 1.9 × 10⁻⁴ m

Thus, the separation distance between two-point charges of 2.0 μC and −3.0 μC exert a force of attraction on each other of 565 N is 1.9 × 10⁻⁴ m.

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A photon with a frequency of 10 ∧
15 Hz has a wavelength of and an energy of 100 nm;3×10 ∧
23 J 300 nm;3×10 ∧
23 J 100 nm;6.6×10 ∧
−19 J 300 nm;6.6×10 ∧
−19 J

Answers

The answer is 300 nm;6.6×10 ∧−19J. A photon with a frequency of 10^15 Hz has a wavelength of approximately 300 nm and an energy of approximately 6.6 x 10^-19 J.

The relationship between the frequency (f), wavelength (λ), and energy (E) of a photon is given by the equation:

E = hf

where h is Planck's constant (h ≈ 6.626 x 10^-34 J·s).

To calculate the wavelength of the photon, we can use the formula:

λ = c / f

where c is the speed of light (c ≈ 3 x 10^8 m/s).

Given the frequency of the photon as 10^15 Hz, we can substitute the values into the formula:

λ = (3 x 10^8 m/s) / (10^15 Hz)

  = 3 x 10^-7 m

  = 300 nm

To calculate the energy of the photon, we can use the equation E = hf.

Given the frequency of the photon as 10^15 Hz and the value of Planck's constant, we can substitute the values into the equation:

E = (6.626 x 10^-34 J·s) * (10^15 Hz)

  = 6.626 x 10^-19 J

Therefore, a photon with a frequency of 10^15 Hz has a wavelength of approximately 300 nm and an energy of approximately 6.6 x 10^-19 J.

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The speed of sound in an air at 20°C is 344 m/s. What is the wavelength of sound with a frequency of 784 Hz, corresponding to a certain note in guitar string? a. 0.126 m b. 0.439 m C. 1.444 m d. 1.678 m

Answers

The wavelength of the sound with a frequency of 784 Hz is 0.439 m. So, the correct answer is option b. 0.439 m. To calculate the wavelength of sound, we can use the formula:

wavelength = speed of sound / frequency

Given:

Speed of sound in air at 20°C = 344 m/s

Frequency = 784 Hz

Substituting these values into the formula, we get:

wavelength = 344 m/s / 784 Hz

Calculating this expression:

wavelength = 0.439 m

Therefore, the wavelength of the sound with a frequency of 784 Hz is 0.439 m. So, the correct answer is option b. 0.439 m.

The speed of sound in a medium is determined by the properties of that medium, such as its density and elasticity. In the case of air at 20°C, the speed of sound is approximately 344 m/s.

The frequency of a sound wave refers to the number of complete cycles or vibrations of the wave that occur in one second. It is measured in hertz (Hz). In this case, the sound has a frequency of 784 Hz.

To calculate the wavelength of the sound wave, we use the formula:

wavelength = speed of sound / frequency

By substituting the given values into the formula, we can find the wavelength of the sound wave. In this case, the calculated wavelength is approximately 0.439 m.

It's worth noting that the wavelength of a sound wave corresponds to the distance between two consecutive points of the wave that are in phase (e.g., two consecutive compressions or rarefactions). The wavelength determines the pitch or frequency of the sound. Higher frequencies have shorter wavelengths, while lower frequencies have longer wavelengths

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The density of iron is 7.9 x 10³ kg/m². Determine the mass m of a cube of iron that is 2.0 cm x 2.0 cm x 2.0 cm in size.

Answers

The mass of a cube of iron that is 2.0 cm × 2.0 cm × 2.0 cm in size is 63 g. Given the density of iron, 7.9 × 10³ kg/m³.

The volume of the cube can be calculated as follows:

Volume of the cube = (2.0 cm)³ = 8.0 cm³ = 8.0 × 10⁻⁶ m³

The mass of the cube can be calculated using the following equation:

Density = Mass/Volume

Let's substitute the given values:

Density = 7.9 × 10³ kg/m³

Volume = 8.0 × 10⁻⁶ m³

Let's calculate the mass by rearranging the above formula.

Mass = Density x Volume

Mass = 7.9 × 10³ kg/m³ x 8.0 × 10⁻⁶ m³

Therefore, Mass = 0.0632 kg ≈ 63 g

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Consider to boil a 1 litre of water (25ºC) to vaporize within 10 min using concentrated sunlight.
Calculate the required minimum size of concentrating mirror.
Here, the specific heat is 4.19 kJ/kg∙K and the latent heat of water is 2264.71 kJ/kg.
Solar energy density is constant to be 1 kWm-2.

Answers

To boil 1 liter of water (25ºC) to vaporize within 10 minutes using concentrated sunlight, the required minimum size of a concentrating mirror is approximately 4.3 square meters.

To calculate the required minimum size of the concentrating mirror, consider the energy required to heat the water and convert it into vapour. The specific heat of water is 4.19 kJ/kg.K, which means it takes 4.19 kJ of energy to raise the temperature of 1 kg of water by 1 degree Celsius.

The latent heat of water is 2264.71 kJ/kg, which represents the energy required to change 1 kg of water from liquid to vapour at its boiling point.

First, determine the mass of 1 litre of water. Since the density of water is 1 kg/litre, the mass will be 1 kg. To raise the temperature of this water from [tex]25^0C[/tex] to its boiling point, which is [tex]100^0C[/tex],

calculate the energy required using the specific heat formula:

Energy = mass × specific heat × temperature difference

[tex]1 kg * 4.19 kJ/kg.K * (100^0C - 25^0C)\\= 1 kg * 4.19 kJ/kg.K * 75^0C\\= 313.875 kJ[/tex]

To convert this water into vapour, calculate the energy required using the latent heat formula:

Energy = mass × latent heat

= 1 kg × 2264.71 kJ/kg

= 2264.71 kJ

The total energy required is the sum of the energy for heating and vaporization:

Total energy = 313.875 kJ + 2264.71 kJ

= 2578.585 kJ

Now, determine the time available to supply this energy. 10 minutes, which is equal to 600 seconds. The solar energy density is given as 1 kWm-2, which means that every square meter receives 1 kW of solar energy. Multiplying this by the available time gives us the total energy available:

Total available energy = solar energy density * time

= [tex]1 kW/m^2 * 600 s[/tex]

= 600 kWs

= 600 kJ

To find the minimum size of the concentrating mirror, we divide the total energy required by the total available energy:

Minimum mirror size = total energy required / total available energy

= 2578.585 kJ / 600 kJ

= [tex]4.3 m^2[/tex]

Therefore, approximately 4.3 square meters for the concentrating mirror is required.

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The potential difference between the accelerator plates of a television is 25 kV. If the distance between the plates is 1.5 cm, find the magnitude of the uniform electric field in the region of the plates.

Answers

The magnitude of the uniform electric field in the region of the plates is 1666666.67 V/m.

Given potential difference is 25kV = 25 x 10^3 V and distance between the plates is 1.5 cm = 1.5 x 10^-2 m. The electric field between the plates is uniform. Hence we can apply the following formula: Electric field (E) = Potential difference (V) / distance between the plates (d)Substituting the given values, we get: E = V/d = 25 x 10^3 / 1.5 x 10^-2 = 1666666.67 V/m.

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rotate about the z axis and is placed in a region with a uniform magnetic field given by B
=1.45 j
^

. (a) What is the magnitude of the magnetic torque on the coil? N⋅m (b) In what direction will the coil rotate? clockwise as seen from the +z axis counterclockwise as seen from the +z axis

Answers

(a) The magnitude of the magnetic torque on the coil is `0.0725 N·m`.

Given, B= 1.45 j ^T= 0.5 seconds, I= 4.7,  AmpereN = 200 turn

sr = 0.28 meter

Let's use the formula for the torque on the coil to find the magnetic torque on the coil:τ = NIABsinθ

where,N = a number of turns = 200 turns

I = current = 4.7 AB = magnetic field = 1.45 j ^A = area = πr^2 = π(0.28)^2 = 0.2463 m^2θ = angle between the magnetic field and normal to the coil.

Here, the coil is perpendicular to the z-axis, so the angle between the magnetic field and the normal to the coil is 90 degrees.

Thus,τ = NIABsin(θ) = (200)(4.7)(1.45)(0.2463)sin(90)≈0.0725 N·m(b) The coil will rotate counterclockwise as seen from the +z axis.

The torque on the coil is given byτ = NIABsinθ, where, N = the number of turns, I = current, B= magnetic field, and A = areaθ = angle between the magnetic field and normal to the coil.

If we calculate the direction of the magnetic torque using the right-hand rule, it is in the direction of our fingers, perpendicular to the plane of the coil, and in the direction of the thumb if the current is flowing counterclockwise when viewed from the +z-axis.

The torque is exerting a counterclockwise force on the coil. Therefore, the coil will rotate counterclockwise as seen from the +z axis.

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Jeff of the Jungle swings on a 7.6-m vine that initially makes an angle of 42 ∘
with the vertical. Part A If Jeft starts at rest and has a mass of 68 kg, what is the tension in the vine at the lowest point of the swing?

Answers

At the lowest point of the swing, the tension in the vine supporting Jeff of the Jungle, who has a mass of 68 kg, is approximately 666.4 Newtons.

To find the tension in the vine at the lowest point of the swing, we need to consider the forces acting on Jeff of the Jungle. At the lowest point, two forces are acting on him: the tension in the vine and his weight.

The weight of Jeff can be calculated using the formula W = mg, where m is the mass of Jeff (68 kg) and g is the acceleration due to gravity (approximately 9.8 m/s²). Therefore, W = 68 kg × 9.8 m/s² = 666.4 Newtons.

Since Jeff is at the lowest point of the swing, the tension in the vine must balance his weight.

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Physics
The Gravity Force Fgrav between two objects with masses M1 and
M2 is 100 N. If the separation between them is tripled and the mass
of each object is doubled, what is Fgrav?

Answers

When the separation between two objects is tripled and the mass of each object is doubled, the gravitational force between them decreases to (4/9) of its original value. In this case, the force decreases from 100 N to approximately 44.44 N.

The gravitational force between two objects is given by the equation:

Fgrav = G * (M₁ * M₂) / r²,

where G is the gravitational constant, M₁ and M₂ are the masses of the objects, and r is the separation between them.

In this scenario, we have Fgrav = 100 N. If we triple the separation between the objects, the new separation becomes 3r. Additionally, if we double the mass of each object, the new masses become 2M₁ and 2M₂.

Substituting these values into the gravitational force equation, we get:

Fgrav' = G * ((2M₁) * (2M₂)) / (3r)²

      = (4 * G * (M₁ * M₂)) / (9 * r²)

      = (4/9) * Fgrav.

Therefore, the new gravitational force Fgrav' is (4/9) times the original force Fgrav. Substituting the given value Fgrav = 100 N, we find:

Fgrav' = (4/9) * 100 N

      = 44.44 N (rounded to two decimal places).

Hence, the new gravitational force is approximately 44.44 N.

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Tuning fork A has a frequency of 440 Hz. When A and a second tuning fork B are struck simultaneously, 7 beats per second are heard. When a small mass is added to one of the tines of B, the two forks struck simultaneously produce 9 beats per second. The original frequency of tuning fork B was A) 447 Hz B) 456 Hz C) 472 Hz D) 433 Hz E) 424 Hz

Answers

Tuning fork A has a frequency of 440 Hz. When A and a second tuning fork B are struck simultaneously, 7 beats per second are heard. The beat frequency between two tuning forks is equal to the difference in their frequencies.  the original frequency of tuning fork B is 433 Hz (option D).

Let's assume the original frequency of tuning fork B is fB. When the two tuning forks are struck simultaneously, 7 beats per second are heard. This means the beat frequency is 7 Hz. So, the difference between the frequencies of the two forks is 7 Hz:

|fA - fB| = 7 Hz

Now, when a small mass is added to one of the tines of tuning fork B, the beat frequency becomes 9 Hz. This implies that the new frequency difference between the forks is 9 Hz:

|fA - (fB + Δf)| = 9 Hz

Subtracting the two equations, we get:

|fB + Δf - fB| = 9 Hz - 7 Hz

|Δf| = 2 Hz

Since Δf represents the change in frequency caused by adding the mass, we know that Δf = fB - fB_original.

Substituting the values, we have:

|fB - fB_original| = 2 Hz

Now, we need to examine the answer choices to find the original frequency of tuning fork B. Looking at the options, we can see that D) 433 Hz satisfies the equation:

|fB - 433 Hz| = 2 Hz

Therefore, the original frequency of tuning fork B is 433 Hz (option D).

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The value of current in a 73- mH inductor as a function of time is: I=7t 2
−5t+13 where I is in amperes and t is in seconds. Find the magnitude of the induced emf at t=6 s. Write your answer as the magnitude of the emf in volts. Question 7 1 pts The circuit shows an R-L circuit in which a battery, switch, inductor and resistor are in series. The values are: resistor =52Ω, inductor is 284mH, battery is 20 V. Calculate the time after connecting the switch after which the current will reach 42% of its maximum value. Write your answer in millseconds.

Answers

Part 1: The magnitude of the induced emf at t = 6 seconds is 5.767 V.

Part 2: The time after connecting the switch after which the current will reach 42% of its maximum value is 8.9 ms.

Part 1 :

The current as a function of time is given by, I = 7t²−5t+13

Given, t = 6 secondsTherefore, the current at t = 6 seconds is, I = 7(6)² - 5(6) + 13I = 264 A

Therefore, the magnitude of the induced emf is given by,ε = L(dI/dt)At t = 6 seconds, I = 264

Therefore, dI/dt = 14t - 5Therefore, dI/dt at t = 6 seconds is, dI/dt = 14(6) - 5dI/dt = 79

The inductance L = 73 mH = 0.073 H

Therefore, the magnitude of the induced emf at t = 6 seconds is,ε = L(dI/dt)ε = 0.073(79)ε = 5.767 V

Therefore, the magnitude of the induced emf at t = 6 seconds is 5.767 V.

Part 2:

Given, resistor = 52 Ωinductor, L = 284 mH = 0.284 Hbattery, V = 20 VWhen the switch is closed, the inductor starts to charge, and the current increases with time until it reaches a maximum value.

Let this current be I_max.

After closing the switch, the current at any time t is given by, I = (V/R) (1 - e^(-Rt/L))

Where V is the battery voltage, R is the resistance of the resistor, L is the inductance and e is the base of the natural logarithm.

The maximum current that can flow in the circuit is given by, I_max = V/RTherefore, I/I_max = (1 - e^(-Rt/L))

So, when I/I_max = 0.42 (42% of its maximum value), e^(-Rt/L) = 0.58

Taking natural logarithm on both sides, we get,-Rt/L = ln(0.58)t = (-L/R) ln(0.58)t = (-0.284/52) ln(0.58)t = 0.0089 s = 8.9 ms

Therefore, the time after connecting the switch after which the current will reach 42% of its maximum value is 8.9 ms.

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A wire loop of area A=0.12m² is placed in a uniform magnetic field of strength B=0.2T so that the plane of the loop is perpendicular to the field. After 2s, the magnetic field reverses its direction. Find the magnitude of the average electromotive force induced in the loop during this time. O a. none of them O b. 2.4 O C. 0.48 O d. 0.24 O e. 4.8

Answers

The magnitude of the average electromotive force induced in the loop during this time is 0.012 V.Answer:Option d. 0.24.

Given information:A wire loop of area A = 0.12 m² is placed in a uniform magnetic field of strength B = 0.2 T so that the plane of the loop is perpendicular to the field. After 2 s, the magnetic field reverses its direction.Formula:The electromotive force (E) induced in a wire loop is given as;E = -N(dΦ/dt)Where N is the number of turns in the coil, Φ is the magnetic flux, and dt is the time taken.

Magnetic flux (Φ) is given as;Φ = B.AWhere A is the area of the coil, and B is the magnetic field strength.Calculation:The area of the wire loop, A = 0.12 m²The magnetic field strength, B = 0.2 T.The magnetic field reverses its direction after 2 s.Therefore, time taken to reverse the direction of the magnetic field, dt = 2 s.

The number of turns in the coil is not given in the question. Therefore, we assume that the number of turns is equal to 1.The magnetic flux, Φ = B.A = 0.2 × 0.12 = 0.024 Wb.Using the formula for the electromotive force (E) induced in a wire loopE = -N(dΦ/dt)We can find the magnitude of the average electromotive force induced in the loop during this time.E = -1 (dΦ/dt)E = -1 (ΔΦ/Δt)Where ΔΦ = Φ2 - Φ1 and Δt = 2 - 0 = 2 s.ΔΦ = Φ2 - Φ1 = B.A2 - B.A1 = 0 - 0.024 = -0.024 Wb

Therefore, E = -1 (ΔΦ/Δt)E = -1 (-0.024/2)E = 0.012 V

Therefore, the magnitude of the average electromotive force induced in the loop during this time is 0.012 V.Answer:Option d. 0.24.

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Also, assume the PCB contamination concentration is equal throughout the plume (650 mg/L) and that the plume reaches the top and bottom of the aquifer. Ignore the porosity of the soil. What mass (kg) of potassium permanganate (KMnO4 ) will be required to treat the whole plume, assuming 100% efficiency? (Hint: K+ and MnO2 are product ions) Round your answer to the nearest hundred.Please show the steps of the calculation Compute the fundamental periods and fundamental angular frequencies of the following signals: a. 4 cos(0.56n + 0.7) b. 5 cos(2-1) When 35.0 mL of 0.340M ammonium chloride and 35.0 mL of 0.20Mcalcium hydroxide are combined. The pH of the resulting solutionwill be...a. equal to 7b. less than 7c. greater than 7 Which of the following is a myth about sex offender treatment? O Few sex offenders recidivate sexually O Treatment works O Most sex offenders are treated in the community O Sex offenders can't be cure Matlab m-file code writing problem. You are given signal x(t) = 2* exp(-2t) * sin (2 t). You want to plot x(t) vs. t for t ranging from 0 to 10 sec with 0.01 second increment. a. Find amplitude of signal x(t) [i.e., 2* exp(-2t)) at t=0 and t = b. Find frequency and period of this signal c. Write a Matlab codes to generate t vector and corresponding x vector and plot (t vs. x). We want to put the range of x axis 0 to 12, label 'Time (sec)' and the range of y axis -2 to 2 and label 'x(t)'. In script editor write and run the .m file and make sure it is showing the plot you intended, then copy back the code in space below. Section-C (Choose the correct Answers) (1 x 2 = 2 4. Program to create a file using file writer in Blue-J. import java.io.FileWriter; import java.io. [OlException, IOException] public class CreateFile { public static void main(String[] args) throws IOException { // Accept a string String = "File Handling in Java using "+" File Writer and FileReader"; // attach a file to File Writer File Writer fw= FileWriter("output.txt"); [old, new] // read character wise from string and write // into FileWriter for (int i = 0; i < str.length(); i++) fw.write(str.charAt(i)); System.out.println("Writing successful"); //close the file fw. LO; [open, close] } } A proton and a deuteron (a particle with the same charge as the proton, but with twice the mass) try to penetrate a barrier of rectangular potential of height 10 MeV and width 10 m. The two particles have kinetic energies of 3 MeV. (a) Use qualitative arguments to predict which of the particles have the highest probability of getting it, (b) Quantitatively calculate the probability of success for each of the particles. Why should the government allow children of illegal immigrantsthe right to stay in the United States?give three reason : J Corp. reported the following: Units: 752 Sales $3506 Variable Costs $661 Fixed Costs $458 Compute break-even units. Round ONLY your final answer to 2 decimal places. Do not round intermediate computations. J Corp. reported the following: Units: 361 Sales $5377 Variable Costs $218 Fixed Costs $148 If the company reduces its selling price by $7 per unit to generate more sales AND increase advertising by 141 AND expects the number of units sold to increase by 493 units, what would be the impact to net income? Round ONLY your final answer to 2 decimal places. Do not round intermediate computations. Note decreases as a negative number What does Broome mean by the statement: "Those who benefit from it should not impose its costs on others who do not"?How according to Broome does this relate to our ethical obligations to future generations?Do you believe in light of climate change that ALL financial decisions are also ethical ones? Why or why not? A.What is the maximum core diameter for a fiber if it is to operate in single mode at a wavelength of 1550nm if the NA is 0.12?B.A certain fiber has an Attenuation of 1.5dB/Km at 1300nm.if 0.5mW of Optical power is initially launched into the fiber, what is the power level in microwatts after 8km? Benzoic Acid l bu Naphthalene 1.35 g 2.65 g 3. Like dissolves like is an important term in liquid-liquid extraction. Draw the structure of 3 compounds, 2 that will likely be miscible and 1 that will be immiscible. A 15-km, 60Hz, single phase transmission line consists of two solid conductors, each having a diameter of 0.8cm. If the distance between conductors is 1.25m, determine the inductance and reactance of the line. Determine the transfer function of an RL series circuit where: R = 10 22 and L= 10 mH. As input, take the total voltage over the coil and the resistance, and as output the voltage across the resistance. Write this a in the simplified form H(s) = - s+a Calculate the pole of this function. Enter the transfer function using the exponents of the polynomial and the pole command. Check whether the result is the same. Pole position - calculated: Calculate the time constant for the circuit. Plot the unit step response and check the value of the time constant. Time constant - calculated: Time constant - derived from step response: Calculate the end value (e.g. remember the final value theorem) of the output voltage and compare the calculated value with that from the plot of the step response. End value calculated: End value - derived from step response: The motor for a table saw is rated at 70% efficient. The power output required to cut a piece of lumber is 2.5hp. Find the current in Amps, drawn from a 120V supply. Take 1 hp = 750W Symbolize the following using the indicated abbreviations. e = Earth m= Mars Cx = x has CARBON DIOXIDE Ex = x has an ELLIPTICAL orbit Fx = x is a FLYING saucer Dx = x is too DRY Hx = x is too HOT Ix = x evolves INTELLIGENT beings Lx = x supports LIFE Mx = x is a MOON Nx = x has NITROGEN Ox = x is OUT of his mind Px = x is a PLANET Sx = x is a UFO SPOTTER Tx=x is being TRICKED Wx= x has WATER In the figure, a horse pulls a barge along a canal by means of a rope. The force on the barge from the rope has a magnitude of 7910N and is at the angle =15 from the barge's motion, which is in the positive direction of an x axis extending along the canal. The mass of the barge is 9500 kg, and the magnitude of its acceleration is 0.12 m/s 2. What are (a) the magnitude and (b) the direction (measured from the positive direction of the x axis) of the force on the barge from the water? Give your answer for (b) in the range of (180 ", 180% Hist 108 Reading Questions #4 Chapter 13, pp. 241-263 stop at "Log Cabins and Hard Cider of , 1840" Point Value: 21 Due Date: Sunday May 8th, 2022 by Midnight 1. TRUE or FALSE During the presidential election of 1824, candidate WILLIAM H. CRAWFORD was called by some "Harry of the West" and "Judas of the West." 2. All of the following describe attributes of President John Quincy Adams EXCEPT: A) short and thickset B) possessed scrupulous honor C) closet thinker and sarcastic D) highly sociable and engaging with ordinary people E) held nationalist over states' rights views 3. TRUE or FALSE Within the nasty mudsling of the 1828 presidential election, JOHN QUINCY ADAMS was accused of once providing a servant girl for the lustful Russian tsar. 4. Which of the following BEST describes the life and background of President Andrew Jackson (1829-1837)? A) a Virginia born wealthy planter and lawyer B) a land speculator and frontier scout who helped develop the state of Kentucky C) came from a prominent well-to-do former Loyalist New York family D) born into poverty in the Carolinas but later became a frontier aristocrat in Tennessee E) a Georgia born farmer who became a famous war hero at the Battle of Charleston 5. FILL IN THE WORD The following quote: "Once in power, the Democrats, famously suspicious of the federal government, demonstrated that they were not above striking some bargains of their own. Under Jackson, the (fill in the words: ) - that is, rewarding political supporters with public office - was introduced into the federal government on a large scale."