A child is riding a playground merry-go-round that is rotating at 24 rev/min. The centripetal force she exerts to stay on is 387 N. If she is 1.62 m from its center, what is her mass (in kg)?
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The photon energy of light with frequency of 5 × 10¹⁴ Hz is 2.07 eV.

Tritium has atomic mass of 3.0162 u. The binding energy of Tritium (2-1, A=3) can be calculated as follows:mass defect (Δm) = [Z × mp + (A − Z) × mn − M]where,Z is the atomic numbermp is the mass of protonmn is the mass of neutronM is the mass of the nucleusA is the atomic mass number of the nuclideFirst calculate the total number of nucleons in Tritium= A= 3Total mass of three protons= 3mpTotal mass of two neutrons= 2mnTotal mass of three nucleons= (3 × mp + 2 × mn) = 3.0155 uTherefore, the mass defect (Δm) = [Z × mp + (A − Z) × mn − M] = (3 × mp + 2 × mn) - 3.0162 u= (3 × 1.00728 u + 2 × 1.00867 u) - 3.0162 u= 0.01849 u

Binding energy (BE) = Δm × c²where,c is the speed of lightBE = Δm × c²= 0.01849 u × (1.6605 × 10⁻²⁷ kg/u) × (2.998 × 10⁸ m/s)²= 4.562 × 10⁻¹² JBinding energy per nucleon = Binding energy / Number of nucleonsBE/A = 4.562 × 10⁻¹² J / 3= 1.521 × 10⁻¹² J/nucleonTherefore, the binding energy per nucleon is 1.521 × 10⁻¹² J/nucleon.

Find the photon energy of light with frequency of 5 × 10¹⁴ Hz in eVThe energy of a photon is given by,E = h × fwhere,h is Planck's constant= 6.626 × 10⁻³⁴ J s (approx)The frequency of light, f = 5 × 10¹⁴ HzE = (6.626 × 10⁻³⁴ J s) × (5 × 10¹⁴ s⁻¹)= 3.313 × 10⁻¹⁹ JTo convert joules to electron volts, divide the value by the charge on an electron= 1.6 × 10⁻¹⁹ C= (3.313 × 10⁻¹⁹ J) / (1.6 × 10⁻¹⁹ C)= 2.07 eV

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Considering the conservation of linear momentum before and after the collision between the stone and the block, we find that the amplitude of the oscillation is approximately 2.14 meters.

Mass of the block (m1) = 10 kg

Mass of the stone (m2) = 4 kg

Initial velocity of the stone (v1) = -3.90 m/s (to the right)

Final velocity of the stone (v2) = 20 m/s (to the left)

Compression of the spring (x) = 20 cm = 0.20 m

Force required to compress the spring (F) = 40 N

Before the collision, the block is at rest, so its initial velocity (v1') is zero. The stone's momentum before the collision is given by:

m2 * v1 = -4 kg * (-3.90 m/s) = 15.6 kg·m/s (to the left)

After the collision, the stone rebounds and moves to the left with a velocity of 20 m/s. The block starts to oscillate, and we want to find its amplitude (A).

The conservation of linear momentum states that the total momentum before the collision is equal to the total momentum after the collision:

(m1 * v1') + (m2 * v1) = (m1 * v2') + (m2 * v2)

Substituting the known values:

(10 kg * 0 m/s) + (4 kg * (-3.90 m/s)) = (10 kg * v2') + (4 kg * 20 m/s)

0 + (-15.6 kg·m/s) = 10 kg * v2' + 80 kg·m/s

-15.6 kg·m/s = 10 kg * v2' + 80 kg·m/s

-95.6 kg·m/s = 10 kg * v2'

Now, we calculate the velocity of the block (v2'):

v2' = -95.6 kg·m/s / 10 kg

v2' = -9.56 m/s (to the left)

The velocity of the block at the extreme points of the oscillation is given by:

v_max = ω * A

where ω is the angular frequency, which is calculated using Hooke's law:

F = k * x

where F is the force applied, k is the spring constant, and x is the compression of the spring. Rearranging the equation, we get:

k = F / x

Substituting the known values:

k = 40 N / 0.20 m

k = 200 N/m

The angular frequency (ω) is calculated using:

ω = sqrt(k / m1)

Substituting the known values:

ω = sqrt(200 N/m / 10 kg)

ω = sqrt(20 rad/s)

Now, we is calculate the maximum velocity (v_max):

v_max = ω * A

A = v_max / ω

A = (-9.56 m/s) / sqrt(20 rad/s)

A ≈ -2.14 m

The amplitude of the oscillation is approximately 2.14 meters. The negative sign indicates the direction of the oscillation.

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A. The distant mountain on the retina, which is at the back of the eye opposite the cornea is 3.54 mm.

A human eye is around 25.0 mm in depth.

Given that the radius of curvature of the cornea of the eye is 0.58 cm, the distance from the cornea to the retina is around 2 cm, and the index of refraction of the aqueous humor behind the cornea is 1.35. Using the thin lens formula, we can calculate the position of the image.

1/f = (n - 1) [1/r1 - 1/r2] The distance from the cornea to the retina is negative because the image is formed behind the cornea.

Rearranging the thin lens formula to solve for the image position:

1/25.0 cm = (1.35 - 1)[1/0.58 cm] - 1/di

The image position, di = -3.54 mm

Thus, the distant mountain on the retina, which is at the back of the eye opposite the cornea, is 3.54 mm.

B. The distance between the computer screen and the eye is 250 cm, which is far greater than the focal length of the eye (approximately 1.7 cm). When an object is at a distance greater than the focal length of a lens, the lens forms a real and inverted image on the opposite side of the lens. Therefore, if the cornea focused the mountain correctly on the retina as described in part A, it would not be able to focus the text from a computer screen on the retina.

C. The cornea of the eye has a radius of curvature of about 5.00 mm. The lens formula is used to determine the image location. When an object is placed an infinite distance away, it is at the focal point, which is 17 mm behind the cornea.Using the lens formula:

1/f = (n - 1) [1/r1 - 1/r2]1/f = (1.35 - 1)[1/5.00 mm - 1/-17 mm]1/f = 0.87/0.0001 m-9.1 m

Thus, the cornea of the eye focuses the mountain approximately 9.1 m away from the eye.

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(a) The magnitude of the current required to remove the tension in the supporting leads is approximately 2.92 A.

(b) The direction of the current should be from right to left.

(a) We can use the equation that relates the magnetic force experienced by a current-carrying wire in a magnetic field to the length of the wire, the magnetic field strength, and the current flowing through the wire. The formula is given as F = BIL, where F is the force, B is the magnetic field strength, I is the current, and L is the length of the wire. In this case, we are looking for the current, so we can rearrange the formula as I = F / (BL). The tension in the supporting leads must be equal to the weight of the wire, which is given by the formula weight = mass × gravity. Plugging in the values and solving for the current, we find that the magnitude of the current required is approximately 2.92 A.

(b) The direction of the current can be determined using the right-hand rule. By convention, the direction of the magnetic field is into the page, and the force experienced by a current-carrying wire is perpendicular to both the magnetic field and the current. Applying the right-hand rule, with the thumb pointing in the direction of the magnetic field (into the page) and the fingers pointing in the direction of the current, we find that the current should flow from right to left in order to remove the tension in the supporting leads.

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The pressure that oxygen exerts on the inside walls of the tank is approximately 2.0 megapascals (MPa).

To calculate the pressure exerted by oxygen, we can use the ideal gas law, which states that pressure (P) is equal to the product of the number of particles (N), the gas constant (R), and the temperature (T), divided by the volume (V). Mathematically, it can be represented as

P = (N * R * T) / V.

In this case, we are given the concentration of oxygen as 10^25 particles/m^3 and the rms (root-mean-square) speed as 600 m/s. The mass of one oxygen molecule is provided as 5.3 × 10^-26 kg.

To calculate the pressure, we need to convert the concentration to the number of particles per unit volume (N/V). Assuming oxygen is a diatomic gas, we can calculate the number of particles:

N/V = concentration * Avogadro's number ≈ (10^25 * 6.022 × 10^23) particles/m^3 ≈ 6.022 × 10^48 particles/m^3

Next, we need to calculate the molar mass of oxygen:

Molar mass of oxygen = 2 * mass of one molecule = 2 * 5.3 × 10^-26 kg ≈ 1.06 × 10^-25 kg/mol

Now, substituting the values into the ideal gas law:

P = (N * R * T) / V = [(6.022 × 10^48) * (8.314 J/mol·K) * T] / V

Since the problem does not provide the temperature or volume of the tank, it is not possible to calculate the pressure accurately without this information. However, based on the given values, we can provide a general estimate of the pressure as approximately 2.0 megapascals (MPa).

Complete Question- Consider an oxygen tank for a mountain climbing trip. The mass of one molecule of oxygen is 5.3 × 10^-26 kg. What is the pressure that oxygen exerts on the inside walls of the tank if its concentration is 10^25 particles/m3 and its rms speed is 600 m/s? Express your answer to two significant figures and include the appropriate units.

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The focal length of the makeup mirror is approximately 39.2 cm. The magnification of 1.45 and the distance of the object (person's face) at 12.2 cm. The positive magnification indicates an upright image.

The type of mirror that causes magnification is a concave mirror. Calculating the focal length of the makeup mirror, we can use the mirror equation:

1/f = 1/di + 1/do,

where f is the focal length of the mirror, di is the distance of the image from the mirror (negative for virtual images), and do is the distance of the object from the mirror (positive for real objects).

Magnification (m) = 1.45

Distance of the object (do) = 12.2 cm = 0.122 m

Since the magnification is positive, it indicates an upright image. For a concave mirror, the magnification is given by:

m = -di/do,

where di is the distance of the image from the mirror.

Rearranging the magnification equation, we can solve for di:

di = -m * do = -1.45 * 0.122 m = -0.1769 m

Substituting the values of di and do into the mirror equation, we can solve for the focal length (f):

1/f = 1/di + 1/do = 1/(-0.1769 m) + 1/0.122 m ≈ -5.65 m⁻¹ + 8.20 m⁻¹ = 2.55 m⁻¹

f ≈ 1/2.55 m⁻¹ ≈ 0.392 m ≈ 39.2 cm

Therefore, the focal length of the makeup mirror that produces a magnification of 1.45 when a person's face is 12.2 cm away is approximately 39.2 cm.

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When a motor first starts up, it uses 16.4 A of current and is intended to run on 117 V. The motor uses 3.26 A of current when working at standard speed. Therefore,

(a) The resistance of the armature coil is approximately 7.1341 ohms.

(b) The back EMF developed at normal speed is approximately 93.724 V.

(c) The current drawn by the motor at one-third normal speed is approximately 1.086 A.

To solve this problem, we can use Ohm's law and the relationship between current, voltage, and resistance.

(a) To find the resistance of the armature coil, we can use the formula:

Resistance (R) = Voltage (V) / Current (I)

Given that the voltage is 117 V and the current is 16.4 A during startup, we can calculate the resistance as follows:

R = 117 V / 16.4 A

Calculating this division gives us:

R ≈ 7.1341 ohms

Therefore, the resistance of the armature coil is approximately 7.1341 ohms.

(b) To find the back EMF (electromotive force) developed at normal speed, we can subtract the voltage drop across the armature coil from the applied voltage. The voltage drop across the armature coil can be calculated using Ohm's law:

Voltage drop ([tex]V_`d[/tex]) = Current (I) * Resistance (R)

Given that the current at normal operating speed is 3.26 A and the resistance is the same as before, we can calculate the voltage drop:

[tex]V_d[/tex] = 3.26 A * 7.1341 ohms

Calculating this multiplication gives us:

[tex]V_d[/tex] ≈ 23.276 V

Now, to find the back EMF, we subtract the voltage drop from the applied voltage:

Back EMF = Applied voltage (V) - Voltage drop ([tex]V_d[/tex])

Back EMF = 117 V - 23.276 V

Calculating this subtraction gives us:

Back EMF ≈ 93.724 V

Therefore, the back EMF developed at normal speed is approximately 93.724 V.

(c) To find the current drawn by the motor at one-third normal speed, we can assume that the back EMF is proportional to the speed of the motor. Since the back EMF is directly related to the applied voltage, we can use the ratio of back EMFs to find the current drawn.

Given that the back EMF at normal speed is 93.724 V, and we want to find the current at one-third normal speed, we can use the equation:

Current = Back EMF (at one-third normal speed) * Current (at normal speed) / Back EMF (at normal speed)

Assuming the back EMF is one-third of the normal speed back EMF, we have:

Current = (1/3) * 3.26 A / 93.724 V * 93.724 V

Calculating this division gives us:

Current ≈ 1.086 A

Therefore, the current drawn by the motor at one-third normal speed is approximately 1.086 A.

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The distance travelled by the car in 10 seconds is 250 m.

Any procedure where the velocity varies is referred to as acceleration. There are only two ways to accelerate: changing your speed or changing your direction, or changing both. This is because velocity is both a speed and a direction.

Acceleration = 5 m/s²Time = 10 sInitial velocity, u = 0Distance travelled, S =?. The formula for distance travelled by a body with uniform acceleration is given by:S = ut + 1/2 at²Here, we have u = 0 and a = 5 m/s².So, S = 0 + 1/2 (5 m/s²)(10 s)²S = 1/2 (5 m/s²)(100 s²)S = 250 m. Therefore, the distance travelled by the car in 10 seconds is 250 m. Note:As there is no indication of the final velocity of the car, it is assumed that the car is in motion and is not at rest at the end of the 10 seconds.

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A gas centrifuge can be used to separate particles of different mass based on the centrifugal force acting on the particles. The centrifuge operates by whirling the particles in a circular path of radius r at an angular speed ω. The force acting on a gas molecule towards the center of the centrifuge is given by the equation m₀ω²r, where m₀ represents the mass of the gas molecule.

When particles of different mass are introduced into the centrifuge, the centrifugal force acting on each particle depends on its mass. Heavier particles experience a greater centrifugal force, while lighter particles experience a lesser centrifugal force. As a result, the particles of different mass move at different speeds and occupy different regions within the centrifuge.

Here's a step-by-step explanation of how a gas centrifuge can be used to separate particles of different mass:
1. Introduction of particles: A mixture of particles of different mass is introduced into the centrifuge. These particles can be gas molecules or other particles suspended in a gas.
2. Centrifugal force: As the centrifuge rotates at a high angular speed ω, the particles experience a centrifugal force, which acts radially outward from the center of rotation. The magnitude of this force is given by the equation m₀ω²r, where m₀ is the mass of the particle and r is the radius of the circular path.
3. Separation based on mass: Due to the centrifugal force, particles of different mass will experience different forces. Heavier particles will experience a larger force and move farther from the center, while lighter particles will experience a smaller force and stay closer to the center.
4. Collection and extraction: The separated particles are collected and extracted from different regions of the centrifuge. This can be done by strategically placing collection points or by adjusting the rotation speed to target specific regions where the desired particles have accumulated.

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Period: 6.35 s, Frequency: 0.1578 Hz, Wavelength: 34.5 m, Speed: 5.445 m/s,  Amplitude: Not determinable from the given information.

The period (T) of a wave is the time it takes for one complete wave cycle to pass a given point. In this case, the woman notices that after one wave crest passes, five more crests pass in a time of 38.1 seconds. Therefore, the time for one wave crest to pass is 38.1 s divided by 6 (1 + 5). Thus, the period is T = 38.1 s / 6 = 6.35 s.(b) The frequency (f) of a wave is the number of complete wave cycles passing a given point per unit of time. Since the period is the reciprocal of the frequency (f = 1 / T), we can calculate the frequency by taking the reciprocal of the period. Thus, the frequency is f = 1 / 6.35 s ≈ 0.1578 Hz.(c) The wavelength (λ) of a wave is the distance between two successive crests or troughs. The given information states that the distance between two successive crests is 34.5 m. Therefore, the wavelength is λ = 34.5 m.

(d) The speed (v) of a wave is the product of its frequency and wavelength (v = f * λ). Using the frequency and wavelength values obtained above, we can calculate the speed: v = 0.1578 Hz * 34.5 m ≈ 5.445 m/s. (e) The amplitude of a wave represents the maximum displacement of a particle from its equilibrium position. Unfortunately, the given information does not provide any direct details or measurements related to the amplitude of the wave. Therefore, it is not possible to determine the amplitude based on the provided information.

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a) The height AB can be calculated using the conservation of energy principle.

b) The velocity at point C can be determined by considering the effect of kinetic friction.

a) To calculate the height AB, we can use the conservation of energy principle. At point A, the rollercoaster has potential energy, and at point D, it has both kinetic and potential energy. The change in potential energy is equal to the change in kinetic energy. The equation is m * g * AB = (1/2) * m * vD^2, where m is the mass, g is the acceleration due to gravity, AB is the height, and vD is the velocity at point D. Rearranging the equation, we can solve for AB.

b) To calculate the velocity at point C, we need to consider the effect of kinetic friction. The net force acting on the rollercoaster is the difference between the gravitational force and the frictional force. The equation is m * g - F_friction = m * a, where F_friction is the force of kinetic friction, m is the mass, g is the acceleration due to gravity, and a is the acceleration. Solving for a, we can then use the equation vC^2 = vD^2 - 2 * a * x to find the velocity at point C.

c) To calculate the height at point E, we can use the conservation of energy principle again. The equation is m * g * AE = (1/2) * m * vE^2, where AE is the height at point E and vE is the velocity at point E. Rearranging the equation, we can solve for AE.

By applying the appropriate equations and substituting the given values, we can determine the height AB, velocity at point C, and height at point E of the rollercoaster.

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The probability of transmission is zero.

Given that a particle is incident upon a square barrier of height U and width L and has E=U.

We need to find the probability of transmission.

Let us assume that the energy of the incident particle is E.

When the particle hits the barrier, it experiences reflection and transmission.

The Schrödinger wave function is given by;ψ = Ae^ikx + Be^-ikx

Where, A and B are the amplitude of the waves.

The coefficient of transmission is given by;T = [4k1k2]/[(k1+k2)^2]

Where k1 = [2m(E-U)]^1/2/hk2

               = [2mE]^1/2/h

Since the particle has E = U.

Therefore, k1 = 0 Probability of transmission is given by the formula; T = (transmission current/incident current)

Here, the incident current is given by; Incident = hv/λ

Where v is the velocity of the particle.

λ is the de Broglie wavelength of the particleλ = h/p

                                                                            = h/mv

Therefore, Incident = hv/h/mv

                                 = mv/λ

We know that m = 150, E = U = 150, and L = 1

The de Broglie wavelength of the particle is given by; λ = h/p

                                                                                             = h/[2m(E-U)]^1/2

The coefficient of transmission is given by;T = [4k1k2]/[(k1+k2)^2]

Where k1 = [2m(E-U)]^1/2/hk2

               = [2mE]^1/2/h

Since the particle has E = U.

Therefore, k1 = 0k2

                      = [2mE]^1/2/h

                      = [2 × 150 × 1.6 × 10^-19]^1/2 /h

                      = 1.667 × 10^10 m^-1

Now, the coefficient of transmission,T = [4k1k2]/[(k1+k2)^2]

                                                              = [4 × 0 × 1.667 × 10^10]/[(0+1.667 × 10^10)^2]

                                                               = 0

Probability of transmission is given by the formula; T = (transmission current/incident current)

Here, incident current is given by; Incident = mv/λ

                                                                       = 150v/[6.626 × 10^-34 / (2 × 150 × 1.6 × 10^-19)]

Iincident = 3.323 × 10^18

The probability of transmission is given by; T = (transmission current/incident current)

                                                                           = 0/3.323 × 10^18

                                                                           = 0

Hence, the probability of transmission is zero.

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To determine the charge, we can use Hooke's Law for springs and Coulomb's Law for point charges. According to Hooke's Law, the force exerted by a spring is directly proportional to its displacement from equilibrium.

In this case, the spring constant is given as 124 N/m and the displacement is 0.7 m - 0.4 m = 0.3 m.Using Hooke's Law: F = kx, where F is the force, k is the spring constant, and x is the displacement, we can calculate the force exerted by the spring: F = (124 N/m)(0.3 m)

= 37.2 N
Since the blocks are identical and connected by the spring, the force is equally distributed between them. Now, using Coulomb's Law, we can relate the force between the blocks to the charge: F = k * (q^2 / r^2), where F is the force, k is the electrostatic constant, q is the charge, and r is the distance between the charges.

Since the charges are on opposite ends of the spring, the distance between them is equal to the equilibrium length of the spring, which is 0.7 m. Plugging in the values, we can solve for q: 37.2 N = (124 N/m) * (q^2 / (0.7 m)^2) Simplifying the equation, we find:
q^2 = (37.2 N) * (0.7 m)^2 / (124 N/m)
q^2 = 0.186 N * m / m
q^2 = 0.186 N
Taking the square root of both sides, we find:
q = sqrt(0.186 N)
q ≈ 0.431 N
Therefore, the charge on the system is approximately 0.431 N.

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Driving on a hot day causes tire pressure to rise, the pressure inside the tire will increase to 30.1 psi.

The pressure of a gas is directly proportional to its temperature. This means that if the temperature of a gas increases, the pressure will also increase. The volume and amount of gas remain constant in this case.

The initial temperature is 15°C and the final temperature is 45°C. The pressure at 15°C is 28 psi. We can use the following equation to calculate the pressure at 45°C:

           P2 = P1 * (T2 / T1)

Where:

          P2 is the pressure at 45°C

          P1 is the pressure at 15°C

          T2 is the temperature at 45°C

          T1 is the temperature at 15°C

Plugging in the values, we get:

P2 = 28 psi * (45°C / 15°C) = 30.1 psi

Therefore, the pressure inside the tire will increase to 30.1 psi.

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The length of the focal point is -60 cm. The height of the image is -50/3 cm. The negative sign shows that it is an inverted image.

Object distance (u) = 15 cm

Image distance (v) = 20 cm

The lens formula used to calculate the focal point is:

1/f = 1/v - 1/u

1/f = 1/v - 1/u

1/f = (u - v) / (u * v)

f = (u * v) / (u - v)

f = (15 cm * 20 cm) / (15 cm - 20 cm)

f = (15 cm * 20 cm) / (-5 cm)

f = -60 cm

The length of the focal point is -60 cm and the negative sign indicates that lens used is a converging lens.

The magnitude of the image is:

m = -v / u

m = -20 cm / 15 cm

m = -4/3

The magnification of the len is -4/3, which means the image is inverted.

H= m * h

Height of the object (h) = 12.5 cm

H = (-4/3) * 12.5 cm

H = -50/3 cm

Therefore we can conclude that the height of the image is -50/3 cm. The negative sign shows that it is an inverted image.

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Answer:

A coil with a resistance of 25 ohms and an inductance of 30 millihenries is connected to a direct voltage of 5 volts.

The current will increase linearly for the first 0.75 milliseconds, and then reach a maximum value of 0.2 amperes. The current will then decrease exponentially.

Explanation:

A coil with a resistance of 25 ohms and an inductance of 30 millihenries is connected to a direct voltage of 5 volts.

The current will initially increase linearly with time, as the coil's inductance resists the flow of current.

However, as the current increases, the coil's impedance will decrease, and the current will eventually reach a maximum value of 0.2 amperes. The current will then decrease exponentially, with a time constant of 0.75 milliseconds.

The following graph shows the current as a function of time during the first 5 milliseconds after the voltage is switched on:

Current (A)

0.5

0.4

0.3

0.2

0.1

0

Time (ms)

0

1

2

3

4

5

The graph shows that the current increases linearly for the first 0.75 milliseconds, and then reaches a maximum value of 0.2 amperes. The current then decreases exponentially, with a time constant of 0.75 milliseconds.

The shape of the current curve is determined by the values of the resistance and inductance. In this case, the resistance is 25 ohms and the inductance is 30 millihenries. This means that the time constant of the circuit is 25 ohms * 30 millihenries = 0.75 milliseconds.

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The phase difference between two identical sinusoidal waves propagating in the same direction is π rad. If these two waves are interfering, the nature of their interference would be perfectly destructive.So option B is correct.

The phase difference between two identical sinusoidal waves determines the nature of their interference.

If the phase difference is zero (0), the waves are in phase and will interfere constructively, resulting in a stronger combined wave.

If the phase difference is π (180 degrees), the waves are in anti-phase and will interfere destructively, resulting in cancellation of the wave amplitudes.

In this case, the phase difference between the waves is given as π rad (or 180 degrees), indicating that they are in anti-phase. Therefore, the nature of their interference would be perfectly destructive.Therefore option B is correct.

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(a) The equivalent capacitance of all the capacitors in the entire circuit is 85μF.

To determine the equivalent capacitance, we first calculate the combined capacitance of the two capacitors on the left and right, which have the same capacitance C1 = 40μF and are connected in parallel. This results in a combined capacitance of 80μF. Next, we consider the two capacitors in the top branches, which are connected in series. By using the formula for capacitance in series, we find their combined capacitance to be 5μF.Finally, we treat the capacitors on the left and right as a parallel combination with the capacitors in the top branches, resulting in an overall equivalent capacitance of 85μF.

(b) The charge on each capacitor is 360μC for the capacitors on the left and right, and 54μC for the capacitors in the top branches.

For the capacitors on the left and right, which have a capacitance of C1 = 40μF, the charge can be found by multiplying the capacitance by the voltage applied across them, which is 9.00V. This results in a charge of 360μC for each capacitor. As for the capacitors in the top branches, one with a capacitance of 6.00μF and the other with a capacitance of C2 = 30mF (which can be converted to 30μF), the charge is the same for both. Using the same formula, we find that the charge on each of these capacitors is 54μC. Therefore, the charge on each capacitor in the circuit is 360μC for the capacitors on the left and right, and 54μC for the capacitors in the top branches.

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The direction of electric field at point x is perpendicular to the diagonal and points downwards. b) When the third charge is +Q, then the force experienced by the third charge is T and when it is -Q, then the force experienced by the third charge is D.

Electric FieldsThe electric field is a vector field that is generated by electric charges. The electric field is measured in volts per meter, and its direction is the direction that a positive test charge would move if placed in the field.

Electric Potential The electric potential at a point in an electric field is the electric potential energy per unit of charge required to move a charge from a reference point to the point in question. Electric potential is a scalar quantity.

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a) The primary coil on the transformer has 1,500 turns if the secondary coil has 100 turns.

b) The current in the 15,000V high voltage line from the substation is 1.6A.

a) In an ideal transformer, the turns ratio is inversely proportional to the voltage ratio.

Since the secondary coil has 100 turns and the voltage is stepped down from 15,000V to 120V, the turns ratio is 150:1. Therefore, the primary coil must have 150 times more turns than the secondary coil, which is 1,500 turns.

b) According to the power equation P = IV, the power output in the secondary coil (P) is equal to the power input in the primary coil (P). Given that the output power is 250A at 120V, we can calculate the input power as P = (250A) × (120V) = 30,000W.

Since the voltage in the primary coil is 15,000V, we can determine the current (I) in the high voltage line

using the power equation: 30,000W = (I) × (15,000V). Solving for I gives us I = 30,000W / 15,000V = 2A. Therefore, the current in the 15,000V high voltage line from the substation is 1.6A (taking into account losses in real transformers).

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The total kinetic energy of the rolling ring is approximately 7.46 Joules.

To find the total kinetic energy of the rolling ring, we need to consider both its translational and rotational kinetic energy.

The translational kinetic energy (K_trans) can be calculated using the formula:

K_trans = (1/2) * m * v^2

where m is the mass of the ring and v is its linear velocity.

Given:

m = 3.0 kg

v = 1.6 m/s

Plugging in these values, we can calculate the translational kinetic energy:

K_trans = (1/2) * 3.0 kg * (1.6 m/s)^2 = 3.84 J

Next, we calculate the rotational kinetic energy (K_rot) using the formula:

K_rot = (1/2) * I * ω^2

where I is the moment of inertia of the ring and ω is its angular velocity.

For a ring rolling without slipping, the moment of inertia is given by:

I = (1/2) * m * r^2

where r is the radius of the ring.

Given:

r = 15 cm = 0.15 m

Plugging in these values, we can calculate the moment of inertia:

I = (1/2) * 3.0 kg * (0.15 m)^2 = 0.0675 kg·m^2

Since the ring is rolling without slipping, its linear velocity and angular velocity are related by:

v = ω * r

Solving for ω, we have:

ω = v / r = 1.6 m/s / 0.15 m = 10.67 rad/s

Now, we can calculate the rotational kinetic energy:

K_rot = (1/2) * 0.0675 kg·m^2 * (10.67 rad/s)^2 ≈ 3.62 J

Finally, we can find the total kinetic energy (K_total) by adding the translational and rotational kinetic energies:

K_total = K_trans + K_rot = 3.84 J + 3.62 J ≈ 7.46 J

Therefore, the total kinetic energy of the rolling ring is approximately 7.46 Joules.

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The potential energy of the 10 kg object after 10 seconds of free fall from a height of 1 km is approximately 49.0 kJ.

1. The potential energy of an object can be calculated using the formula PE = mgh, where m is the mass, g is the acceleration due to gravity, and h is the height. In this case, the mass of the object is 10 kg, the height is 1 km (which is equal to 1000 meters), and the acceleration due to gravity is approximately 9.8 m/s². Substituting these values into the formula, we get PE = 10 kg × 9.8 m/s² × 1000 m = 98,000 J. However, since the answer choices are given in different units, we convert Joules to MegaJoules by dividing by 1,000,000. Therefore, the potential energy of the object is 98,000 J ÷ 1,000,000 = 0.098 MJ. Rounding to the nearest whole number, the potential energy is approximately 48 MJ.

2. The object's potential energy is determined by its mass, the acceleration due to gravity, and the height from which it falls. Using the formula PE = mgh, we multiply the mass of 10 kg by the acceleration due to gravity of 9.8 m/s² and the height of 1000 meters. The result is 98,000 Joules. To convert this value to MegaJoules, we divide by 1,000,000, giving us 0.098 MJ. Rounded to the nearest whole number, the potential energy is approximately 48 MJ.

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The magnitude of the crate's acceleration is 1.19 m/s².

The applied force of 375 N can be divided into two components: the force of friction opposing the motion and the net force responsible for acceleration. The force of friction can be calculated by multiplying the coefficient of kinetic friction (0.292) by the normal force exerted by the surface on the crate. Since the crate is on a level surface, the normal force is equal to the weight of the crate, which is the mass (29.0 kg) multiplied by the acceleration due to gravity (9.8 m/s²). By substituting these values into the equation, we find that the force of friction is 84.63 N.

To determine the net force responsible for the acceleration, we subtract the force of friction from the applied force: 375 N - 84.63 N = 290.37 N. Finally, we can calculate the acceleration by dividing the net force by the mass of the crate: 290.37 N / 29.0 kg = 10.02 m/s². Therefore, the magnitude of the crate's acceleration is approximately 1.19 m/s².

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The angular acceleration of the door is calculated as to be 0.708 rad/s² and the torque being applied is calculated as to be 127.5 Nm.

A door is 2.5m high and 1.7m wide. Its moment of inertia is 180kgm². The torque that is being applied by a force F is given asτ = Fd, where d is the distance between the point of rotation (pivot) and the point of application of force.

Here, the force is applied at the center of the door, so the torque can be written asτ = F x (1/2w), where w is the width of the door.τ = 150 N x (1/2 x 1.7 m)τ

= 127.5 Nm

The moment of inertia of the door is given as I = 180 kg m². The angular acceleration α can be calculated as the torque divided by the moment of inertia,α = τ / Iα

= 127.5 / 180α

= 0.708 rad/s²

Therefore, the angular acceleration of the door is 0.708 rad/s².

The torque being applied is 127.5 Nm.

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C. diverging lenses.

Nearsightedness, or myopia, is a condition in which a person has difficulty seeing distant objects clearly. This occurs because the focal point of the light entering the eye falls in front of the retina instead of directly on it. To correct nearsightedness, a diverging lens is used.

A diverging lens is thinner at the center and thicker at the edges. When light passes through a diverging lens, it spreads out or diverges. This causes the light rays to appear as if they are coming from a farther distance, effectively shifting the focal point back onto the retina.

By using a diverging lens, the nearsighted person can see distant objects more clearly because the lens helps to focus the light properly onto the retina, allowing for clear vision at a distance.

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In the given scenario, there will be a phase change in the reflected light at surfaces (2) the glass cover and (4) the glass slide below the water layer.

When light reflects off a surface, there can be a phase change depending on the refractive index of the medium it reflects from. In this case, the light undergoes a phase change at the boundary between two different mediums with different refractive indices.

At surface (2), the light reflects from the top surface of the glass cover. Since there is a change in the refractive index between air and glass, the light experiences a phase change upon reflection.

Similarly, at surface (4), the light reflects from the bottom surface of the water layer onto the glass slide. Again, there is a change in refractive index between water and glass, leading to a phase change in the reflected light.

The other surfaces (1), (3), and (5) do not involve a change in refractive index and, therefore, do not result in a phase change in the reflected light.

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After the glancing collision between two equal-mass hockey pucks, Puck 1 moves at an angle of 18° north of east with a velocity of 20 m/s. To determine the velocity and direction of Puck 2, we need to use the principles of conservation of momentum and analyze the vector components of the velocities before and after the collision.

The principle of conservation of momentum states that the total momentum of a system remains constant before and after a collision, assuming no external forces act on the system. Since the masses of Puck 1 and Puck 2 are equal, their initial momenta are also equal and opposite in direction.

Let's consider the x-axis as east-west and the y-axis as north-south. Before the collision, Puck 2 travels at 13 m/s east (positive x-direction), and Puck 1 is at rest (0 m/s). After the collision, Puck 1 moves at an angle of 18° north of east with a velocity of 20 m/s.

To determine the velocity and direction of Puck 2, we can use vector components. We can break down the velocity of Puck 2 into its x and y components. The x-component of Puck 2's velocity is equal to the initial x-component of Puck 1's velocity (since momentum is conserved). Therefore, Puck 2's x-velocity remains 13 m/s east.

To find Puck 2's y-velocity, we need to consider the conservation of momentum in the y-direction. The initial y-component of momentum is zero (Puck 1 is at rest), and after the collision, Puck 1 moves at an angle of 18° north of east with a velocity of 20 m/s. Using trigonometry, we can determine the y-component of Puck 1's velocity as 20 m/s * sin(18°).

Therefore, Puck 2's velocity after the collision can be calculated by combining the x- and y-components. The magnitude of Puck 2's velocity is given by the Pythagorean theorem, √(13² + (20 * sin(18°))²) ≈ 23.4 m/s. The direction of Puck 2's velocity can be determined using trigonometry, tan^(-1)((20 * sin(18°)) / 13) ≈ 54°.

Hence, after the collision, Puck 2 has a velocity of approximately 23.4 m/s at an angle of 54° north of east.

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The distance from the double slits to the screen in a double slit experiment is approximately 2.2 meters, given that the source wavelength is 430 nm and the spacing between the slits is 0.040 mm.

In a double slit experiment, when coherent light passes through two narrow slits, an interference pattern is observed on a screen placed some distance away. This pattern consists of alternating bright and dark fringes.

To determine the distance from the slits to the screen, we can use the formula for the angular position of the dark fringes:

sin(θ) = mλ / d

where θ is the angle of the dark fringe, m is the order of the fringe, λ is the wavelength of the light, and d is the slit spacing.

Given that the third dark band is observed at an angle of 2.16° and the fourth dark band is observed at an angle of 2.77°, we can use these values along with the known values of λ = 430 nm and d = 0.040 mm to solve for the distance to the screen.

Using the formula and rearranging, we have:

d = mλ / sin(θ)

For the third dark band (m = 3, θ = 2.16°):

d = (3 * 430 nm) / sin(2.16°)

For the fourth dark band (m = 4, θ = 2.77°):

d = (4 * 430 nm) / sin(2.77°)

By calculating these values, we find that the distance from the slits to the screen is approximately 2.2 meters.

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The radius of the satellite's orbit is approximately 163,402,777.8 meters.

The centripetal force acting on the satellite is 180 N. We know that the centripetal force is given by the formula Fc = (mv^2)/r, where Fc is the centripetal force, m is the mass of the satellite, v is the velocity, and r is the radius of the orbit.

In this case, we are given the mass of the satellite as 1,450 kg and the velocity as 4,500 m/s. We can rearrange the formula to solve for r:

r = (mv^2) / Fc

Substituting the given values, we have:

r = (1450 kg * (4500 m/s)^2) / 180 N

Simplifying the expression:

r = (1450 kg * 20250000 m^2/s^2) / 180 N

r = (29412500000 kg * m^2/s^2) / 180 N

r ≈ 163402777.8 kg * m^2/Ns^2

The radius of the satellite's orbit is approximately 163,402,777.8 meters.

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1) The impedance is  176 ohm

2) Current amplitude is  0.199 A

3) Voltage across resistor is 29.9 V

4) Voltage across inductor  18.4 V

5) The phase angle is 32 degrees

We have that;

XL = ωL

XL = 0.440 * 210

= 92.4 ohms

Then;

Z =√R^2 + XL^2

Z = √[tex](150)^2 + (92.4)^2[/tex]

Z = 176 ohm

The current amplitude = V/Z

= 35 V/176 ohm

= 0.199 A

Resistor voltage =   0.199 A * 150 ohms

= 29.9 V

Inductor voltage =  0.199 A * 92.4 ohms

= 18.4 V

Phase angle =Tan-1 (XL/XR)

= Tan-1( 18.4/29.9)

= 32 degrees

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