A copper wire used for house hold electrical outlets has a radius of 2.0 mm (1mm = 10³m). Each Copper atom donates one electron for conduction. If the electric current in this wire is 15 A. copper density is 8900 kg/m³ and its atomic mass is 64 u, (lu = 1.66 x 10-27 kg), the electrons drift velocity Va in this wire is a) 2.11 x 10-4 m/s. b) 2.85 x 10-4 m/s. c) 8.91 x 10-5 m/s, d) 1.14 x 10-4 m/s. e) 4.56 x 10-5 m/s, f) None of the above.

Answers

Answer 1

The drift velocity (Va) of electrons in the copper wire can be calculated using the formula Va = I / (nAe), In this case, with a given current of 15 A and the properties of copper, the drift velocity is approximately 8.91 x 10^-5 m/s (option c).

The drift velocity of electrons in a wire is the average velocity at which they move in response to an applied electric field. It can be calculated using the formula Va = I / (nAe), where I is the current flowing through the wire, n is the number of charge carriers per unit volume, A is the cross-sectional area of the wire, and e is the charge of an electron.

In this case, the current is given as 15 A. The number of charge carriers per unit volume (n) can be determined using the density of copper (ρ) and its atomic mass (m). Since each copper atom donates one electron for conduction, the number of charge carriers per unit volume is n = ρ / (mN_A), where N_A is Avogadro's number.

The cross-sectional area of the wire (A) can be calculated using the radius (r) of the wire, which is given as 2.0 mm. The area is A = πr^2. By substituting the given values into the formula, we can calculate the drift velocity Va, which comes out to be approximately 8.91 x 10^-5 m/s. Therefore, option c is the correct answer.

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Related Questions

a 380-kg piano slides 2.9 m down a 25 degree incline and it kept from accelerating by a man who is pushing back on it parallel to the incline. Determine (a) the force exerted by the man, (b) the work done on the piano by the man, (c) the work done on the the piano by the force of gravity, (d) the net work done on the piano. Ignore friction.

Answers

a) The force exerted by the man is approximately 1608.86 N.

b) The work done on the piano by the man is approximately 4662.34 Joules.

c) The work done on the piano by the force of gravity is approximately 7210.18 Joules.

d) The net work done on the piano is approximately 11872.52 Joules.

To solve this problem, we'll need to consider the forces acting on the piano and the work done by each force.

Mass of the piano (m): 380 kg

Distance traveled down the incline (d): 2.9 m

Incline angle (θ): 25 degrees

Acceleration due to gravity (g): 9.8 m/s²

(a) The force exerted by the man:

The force exerted by the man is equal in magnitude and opposite in direction to the force of gravity component parallel to the incline. This force is given by:

F_man = m * g * sin(θ)

Substituting the values:

F_man = 380 kg * 9.8 m/s² * sin(25°)

F_man ≈ 1608.86 N

(b) The work done on the piano by the man:

The work done by a force is given by the equation:

Work = Force * Distance * cos(θ)

Since the force exerted by the man is parallel to the displacement, the angle between the force and displacement is 0 degrees, and the cos(0°) = 1. Therefore, the work done by the man is:

Work_man = F_man * d

Substituting the values:

Work_man = 1608.86 N * 2.9 m

Work_man ≈ 4662.34 J

(c) The work done on the piano by the force of gravity:

The force of gravity acting on the piano has a component parallel to the incline, given by:

F_gravity_parallel = m * g * sin(θ)

The work done by the force of gravity is:

Work_gravity = F_gravity_parallel * d

Substituting the values:

Work_gravity = 380 kg * 9.8 m/s² * sin(25°) * 2.9 m

Work_gravity ≈ 7210.18 J

(d) The net work done on the piano:

The net work done on an object is the sum of the work done by all the forces acting on it. In this case, since there are only two forces (force exerted by the man and force of gravity), the net work done on the piano is:

Net work = Work_man + Work_gravity

Substituting the values:

Net work = 4662.34 J + 7210.18 J

Net work ≈ 11872.52 J

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about the energies of the system when the mass M is at points A and D?
Group of answer choices
The system has spring potential energy when the mass is at A that is equal to the kinetic energy it has when the mass is at D
The system has spring potential energy when the mass is at A that is greater than the gravitational potential energy it has when the mass is at D
The system has spring potential energy when the mass is at A that is equal to the gravitational potential energy it has when the mass is at D
The system has kinetic energy when the mass is at A that is equal to the gravitational potential energy it has when the mass is at D

Answers

When the mass M is at points A and D in the system, the potential and kinetic energies vary. The correct statement regarding the energies of the system is that it has spring potential energy when the mass is at A that is equal to the gravitational potential energy it has when the mass is at D.

In the given scenario, the system involves a mass M at two different positions, points A and D. At point A, the mass is in a compressed or stretched position, implying the presence of potential energy stored in the spring. This potential energy is known as spring potential energy.

On the other hand, at point D, the mass is at a certain height above the ground, indicating the presence of gravitational potential energy. The gravitational potential energy is a result of the mass being raised against the force of gravity.

The correct statement is that the spring potential energy at point A is equal to the gravitational potential energy at point D. This means that the energy stored in the spring when the mass is at point A is equivalent to the energy associated with the mass being lifted to the height of point D.

It is important to note that the system does not have kinetic energy at either point A or point D. Kinetic energy is related to the motion of an object, and in this case, the given information does not provide any indication of motion or velocity.

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A spaceship whose rest length is 452 m has a speed of 0.86c with respect to a certain reference frame. A micrometeorite, also with a speed of 0.86c in this frame, passes the spaceship on an antiparallel track. How long does it take this object to pass the spaceship as measured on the ship? Number Units

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A spaceship whose rest length is 452 m has a speed of 0.86c with respect to a certain reference frame. it takes approximately 234.09 meters of distance for the micrometeorite to pass the spaceship as measured on the ship.

To determine the time it takes for the micrometeorite to pass the spaceship as measured on the ship, we can use the concept of time dilation from special relativity.

The time dilation formula is given by: Δt' = Δt / γ, where Δt' is the time interval measured on the moving spaceship, Δt is the time interval measured in the rest frame (reference frame), and γ is the Lorentz factor.

In this case, both the spaceship and the micrometeorite have a speed of 0.86c relative to the reference frame. The Lorentz factor can be calculated using the formula: γ = 1 / sqrt(1 - (v^2 / c^2)), where v is the velocity of the objects relative to the reference frame and c is the speed of light.

Plugging in the values, we have: γ = 1 / sqrt(1 - (0.86c)^2 / c^2) ≈ 1.932.

Since the rest length of the spaceship is given as 452 m, the time it takes for the micrometeorite to pass the spaceship as measured on the ship is: Δt' = Δt / γ = 452 m / 1.932 ≈ 234.09 m.

Therefore, it takes approximately 234.09 meters of distance for the micrometeorite to pass the spaceship as measured on the ship.

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What distance does an oscillator of amplitude a travel in 9. 5 periods?

Answers

Answer:

Explanation:

To determine the distance traveled by an oscillator of amplitude a in a given number of periods, we need to consider the relationship between the amplitude and the total distance covered during one complete period.

In simple harmonic motion, the displacement of an oscillator is given by the equation:

x = A * sin(2π/T * t)

Where:

x is the displacement at time t,

A is the amplitude of the oscillator,

T is the period of the oscillator, and

t is the time.

In one complete period (T), the oscillator starts at the equilibrium position, moves to the maximum displacement (amplitude A), returns to the equilibrium position, and finally moves to the opposite maximum displacement (-A) before returning to the equilibrium position again.

Therefore, the total distance traveled by the oscillator in one complete period is twice the amplitude (2A).

Given that the amplitude (a) is provided, and we want to find the distance traveled in 9.5 periods, we can calculate it as follows:

Distance traveled in 9.5 periods = 9.5 * 2 * amplitude (a)

Distance traveled in 9.5 periods = 19 * a

Therefore, the distance traveled by the oscillator in 9.5 periods is 19 times the amplitude (a).

A parallel plate capacitor has area 1 m^2 with the plates separated by 0.1 mm. What is the capacitance of this capacitor? 8.85x10^-8 F 8.85x10^-11 F 8.85x10^-12 F 10,000 F

Answers

Therefore, the capacitance of the given parallel plate capacitor is 8.85 x 10^-12 F.

The capacitance of the given parallel plate capacitor is 8.85 x 10^-12 F.  Capacitance is the property of a capacitor, which represents the ability of a capacitor to store the electric charge. It is represented by the formula: C = Q/V, Where C is the capacitance, Q is the charge on each plate and V is the potential difference between the plates. In this case, the area of the parallel plates is given as 1 m² and the distance between them is 0.1 mm = 0.1 × 10^-3 m. Thus, the distance between the plates (d) is 0.1 × 10^-3 m.

The formula for capacitance of parallel plate capacitor is given as: C = εA/d Where ε is the permittivity of the medium (vacuum in this case), A is the area of the plates and d is the distance between the plates. Substituting the given values, we get,C = 8.85 × 10^-12 F (approx). Therefore, the capacitance of the given parallel plate capacitor is 8.85 x 10^-12 F.

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An alien spaceship, moving at constant velocity, traverses the solar system (a distance of 10.50 light-hours) in 15.75 hr as measured by an observer on Earth. Calculate the speed of the ship (as measured by an observer on Earth), and the time interval that an observer on the ship measures for the trip. A. v = 0.500c, At' = 11.7 hr B. v = 0.667c, At' = 11.7 hr C. v = 0.887c, At = 21.1 hr D. v = 0.995c, Ať = 21.1 hr E. None of the above

Answers

Correct option is B. The speed of the alien spaceship, as measured by an observer on Earth, is approximately 0.667 times the speed of light (c). The time interval that an observer on the ship measures for the trip is approximately 11.7 hours.

In order to calculate the speed of the spaceship, we can use the formula v = d/t, where v is the velocity, d is the distance, and t is the time. In this case, the distance is 10.50 light-hours and the time is 15.75 hours. Plugging in these values, we get v = 10.50 light-hours / 15.75 hours = 0.667 times c.

To find the time interval that an observer on the spaceship measures for the trip, we can use the time dilation formula t' = t / √(1 - (v^2/c^2)), where t' is the time interval as measured on the spaceship, t is the time interval as measured on Earth, v is the velocity of the spaceship, and c is the speed of light. Plugging in the values we have, t = 15.75 hours and v = 0.667 times c, we can calculate t' = 15.75 hours / √(1 - (0.667^2)) = 11.7 hours.

Therefore, the correct answer is B. The speed of the ship, as measured by an observer on Earth, is approximately 0.667c, and the time interval that an observer on the ship measures for the trip is approximately 11.7 hours.

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Given the following sequences x₁=[1230] X2 [1321] Manually compute y,[n] = x₁ [n]circularly convolved with x₂ [n] Show all work. Hint for consistency make x₁ the outer circle in ccw direction.

Answers

We can say that the circular convolution of x₁ and x₂ is y = [14 14 11 11].

Given the sequences x₁ = [1230] and x₂ = [1321], you are required to manually compute y[n] = x₁[n] circularly convolved with x₂[n] and show all work. The hint suggests that we should make x₁ the outer circle in the ccw direction.

Let us first consider the sequence x₁ = [1230]. We can represent this sequence in a circular form as follows:1   2   3   0

As per the given hint, this is the outer circle, and we need to move in the ccw direction. Now, let us consider the sequence x₂ = [1321]. We can represent this sequence in a circular form as follows:

1   3   2   1

As per the given hint, this is the inner circle. Now, let us write the circular convolution of x₁ and x₂ using the equation for circular convolution:

y[n] = ∑k=0N-1 x₁[k] x₂[(n-k) mod N]

where N is the length of the sequences x₁ and x₂, which is 4 in this case.

Substituting the values of x₁ and x₂ in the above equation, we get:

y[0] = (1×1) + (2×2) + (3×3) + (0×1) = 14y[1] = (0×1) + (1×1) + (2×2) + (3×3) = 14y[2] = (3×1) + (0×1) + (1×2) + (2×3) = 11y[3] = (2×1) + (3×1) + (0×2) + (1×3) = 11

Therefore, the sequence y = [14 14 11 11].

Hence, we can say that the circular convolution of x₁ and x₂ is y = [14 14 11 11].

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A Carnot engine whose hot-reservoir temperature is 400 ∘C∘C has a thermal efficiency of 38 %%.
By how many degrees should the temperature of the cold reservoir be decreased to raise the engine's efficiency to 63 %%?
Express your answer to two significant figures and include the appropriate units.

Answers

Answer: The temperature of the cold reservoir should be decreased by 156°C to raise the engine's efficiency to 63%.

A Carnot engine is an ideal heat engine that operates on the Carnot cycle. The efficiency of a Carnot engine depends solely on the temperatures of the hot and cold reservoirs. According to the second law of thermodynamics, the efficiency of a Carnot engine is given by:

efficiency = (Th - Tc)/Th,

where Th is the temperature of the hot reservoir and Tc is the temperature of the cold reservoir.

38% efficiency of a Carnot engine whose hot-reservoir temperature is 400 ∘C is expressed as:

e = (Th - Tc)/Th38/100

= (400 - Tc)/400.

We can solve the above equation for Tc to get:

Tc = (1 - e)Th

= (1 - 0.38) × 400

= 0.62 × 400

= 248°C.

Now, the temperature of the cold reservoir needed to raise the efficiency to 63%.

e = (Th - Tc)/Th63/100

= (Th - Tc)/Th.

We can then solve the above equation for Tc to get:

Tc = (1 - e)Th

= (1 - 0.63) × Th

= 0.37 Th.

We know that the initial temperature of the cold reservoir is 248°C, so we can find the new temperature by multiplying 248°C by 0.37 as follows:

Tc(new) = 0.37 × 248°C

= 92°C.

Therefore, the temperature of the cold reservoir should be decreased by (248 - 92) = 156°C to raise the engine's efficiency to 63%.

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The position of an object that is oscillating on a spring is given by the equation x = (0.232 m) cos[(2.81 s⁻¹)t]. If the force constant (spring constant) is 29.8 N/m, what is the potential energy stored in the mass-spring system when t = 1.42 s?
a. 0.350 J
b. 0.256 J
c. 0.329 J
d. 0.399 J
e. 0.798 J

Answers

At a time of t = 1.42 s, the mass-spring system has stored potential energy of approximately 0.350 J.

The given equation is:

x = (0.232 m)cos(2.81t)

We can notice from the above equation that the motion of the mass is periodic and oscillatory. The mass repeats the same motion after a fixed time period.

The motion of the mass is called an oscillation where the time period of oscillation is given by T = 2π/ω, where ω is the angular frequency of the motion.

ω = 2πf = 2π/T

Where f is the frequency of oscillation and has the unit Hertz (Hz) and f = 1/T.

ω = 2π/T = 2πf = √(k/m)

Thus, the potential energy stored in a spring is given as

U = 1/2 kx²

At the time t = 1.42 s, the position of an object that is oscillating on a spring is given by

x = (0.232 m)cos(2.81 × 1.42)≈ 0.22 m

Given:Spring constant k = 29.8 N/m

The expression for potential energy stored in a spring is defined as follows:

U = 1/2 kx² = 1/2 × 29.8 × (0.22)² ≈ 0.350 J

At a time of t = 1.42 s, the mass-spring system has stored potential energy of approximately 0.350 J.

Therefore, the correct option is a. 0.350 J.

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The pendulum of a big clock is Y meters long. In New York City, where the gravitational acceleration is g = 9.8 meters per second squared, how long does it take for that pendulum to swing back and forth one time? Show your work and give your answer in units of seconds. Y= 1.633

Answers

The formula for the time period (T) of the pendulum is:

T = 2π * √(L/g)

Where L is the length of the pendulum and g is the acceleration due to gravity.

Substituting the given values into the above formula:

T = 2π * √(1.633/9.8)T

≈ 1.585 seconds

Therefore, it takes approximately 1.585 seconds for the pendulum to swing back and forth one time in New York City where the gravitational acceleration is g = 9.8 meters per second squared.

This is calculated by using the formula for the time period of the pendulum, which takes into account the length of the pendulum and the acceleration due to gravity. The length of the pendulum in this case is given as Y = 1.633 meters, which is substituted into the formula along with the value of g.

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When a bar magnet is placed static near a loop of wire, a magnetic field will the loop. A. moves B. induce C. change D. penetrates A device that converts mechanical energy into electrical energy is A. Motor B. Generator C. Loudspeaker D. Galvanometer

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When a bar magnet is placed near a loop of wire, it induces a magnetic field in the loop. A device that converts mechanical energy into electrical energy is a generator.

When a bar magnet is placed near a loop of wire, it induces a magnetic field in the loop. This phenomenon is known as electromagnetic induction. As the magnetic field of the bar magnet changes, it creates a changing magnetic flux through the loop, which in turn induces an electromotive force (EMF) and an electric current in the wire. This process is the basis of how generators and other electrical devices work. Therefore, the correct answer is B. induce.

A device that converts mechanical energy into electrical energy is a generator. A generator utilizes the principle of electromagnetic induction to convert mechanical energy, such as rotational motion, into electrical energy. It consists of a coil of wire that rotates within a magnetic field. As the coil rotates, the magnetic field induces a changing magnetic flux through the coil, which generates an EMF and produces an electric current. This electric current can be used to power electrical devices or charge batteries. Therefore, the correct answer is B. Generator.

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If a 0.3% decrease in the price of a good causes its quantity supplied to decrease by 1%, then the supply is: A. Unit elastic B. Elastic C. Inelastic D. Perfectly inelastic

Answers

If a 0.3% decrease in the price of a good causes its quantity supplied to decrease by 1%, then the supply is C. Inelastic.

In this scenario, the supply of the good is considered inelastic. The elasticity of supply measures the responsiveness of the quantity supplied to changes in price. When the price of a good decreases, and the quantity supplied decreases by a larger percentage, it indicates that the supply is relatively unresponsive to price changes.

To determine the elasticity of supply, we compare the percentage change in quantity supplied to the percentage change in price. In this case, a 0.3% decrease in price results in a 1% decrease in the quantity supplied. Since the percentage change in quantity supplied (1%) is greater than the percentage change in price (0.3%), the supply is considered inelastic.

Inelastic supply means that producers are less responsive to price changes, and a small change in price leads to a proportionally smaller change in quantity supplied. In such cases, producers may find it challenging to adjust their output levels quickly in response to price fluctuations.

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2-3. Suppose an incompressible fluid flows in the form of a film down an inclined plane that has an angle of with the vertical. Find the following items: (a) Shear stress profile (b) Velocity profile

Answers

For an incompressible fluid that flows in the form of a film down an inclined plane, we will assume that the flow is laminar with negligible inertia, that is, a creeping flow. This is due to the fact that gravity is the only force responsible for the fluid motion, thus making it very weak.

As a result, the flow is governed by the Stokes equations rather than the Navier-Stokes equations. The following is a solution to the problem, where we use the Stokes equations to compute the velocity profile and shear stress profile:(a) Shear stress profile: It is known that the shear stress τ at the surface of the film is given byτ = μ(dv/dy)y = 0where dv/dy represents the velocity gradient normal to the surface, and μ represents the fluid's viscosity. Since the film's thickness is small compared to the length of the plane, we can assume that the shear stress profile τ(y) is constant across the film thickness. Hence,τ = μ(dv/dy)y = 0 = μU/h. where U is the velocity of the film, and h is the thickness of the film. Therefore, the shear stress profile τ(y) is constant and equal to τ = μU/h.(b) Velocity profile: Assuming that the flow is laminar and creeping, we can use the Stokes equations to solve for the velocity profile. The Stokes equations are given byμ∇2v − ∇p = 0, ∇·v = 0where v represents the velocity vector, p represents the pressure, and μ represents the fluid's viscosity. Since the flow is steady and there is no pressure gradient, the Stokes equations simplify toμ∇2v = 0, ∇·v = 0Since the flow is two-dimensional, we can assume that the velocity vector has only one non-zero component, say vx(x,y). Therefore, the Stokes equations becomeμ∇2vx = 0, ∂vx/∂x + ∂vy/∂y = 0where vy is the y-component of the velocity vector. Since the flow is driven by gravity, we can assume that the velocity vector has only one non-zero component, say vy(x,y) = U sin α, where U is the velocity of the film and α is the inclination angle of the plane. Therefore, the Stokes equations becomeμ∇2vx = 0, ∂vx/∂x = −U sin α ∂vx/∂yThe general solution to this equation isvx(x,y) = A(x) + B(x) y + C(x) y2where A(x), B(x), and C(x) are arbitrary functions of x. To determine these functions, we need to apply the boundary conditions. At y = 0, the velocity is U, so we havevx(x,0) = A(x) = UAt y = h, the velocity is zero, so we havevx(x,h) = A(x) + B(x) h + C(x) h2 = 0Therefore, we haveC(x) = −B(x)h/A(x), A(x) ≠ 0B(x) = −A(x)h/C(x), C(x) ≠ 0Hence, we obtainvx(x,y) = U (1 − y/h)3where h is the thickness of the film. This is the velocity profile.

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A metal cylindrical wire of radius of 1.2 mm and length 4.2 m has a resistance of 42 Ω. What is the resistance of a wire made of the same metal that has a square crosssectional area of sides 3.1 mm and length 4.2 m ? (in Ohms)

Answers

The resistance of the wire having square cross-sectional area is 19.78 Ω.

The resistance of the wire having square cross-sectional area can be determined using the given formula; Resistance = resistivity * (length / area)Where; resistivity = resistivity of the material,length = length of the wire,area = area of cross-sectional of the wire

The formula shows that resistance is inversely proportional to area. Therefore, an increase in area would result in a decrease in resistance.The resistance of the cylindrical wire is given as 42 Ω, and the radius of the wire is 1.2 mm.The cross-sectional area of the cylindrical wire can be given as:

Area of circle = [tex]\pi r^2\pi[/tex]= 22/7r = 1.2 [tex]mm^2[/tex]

The area of cross-sectional of the cylindrical wire is given by:Area = [tex]πr^2[/tex]

Area = 22/7[tex](1.2)^2[/tex]

Area = 4.523 [tex]mm^2[/tex]

The cross-sectional area of the wire with the square cross-sectional area of sides 3.1 mm is given as; Area = [tex]a^2[/tex]

Area = [tex](3.1)^2[/tex]

Area = 9.61[tex]mm^2[/tex]

The resistivity of the material in both cases is the same; therefore, it is a constant. Hence, we can equate the two formulas;R₁ = R₂(l₁ / A₁)(A₂ / l₂)

We know that R₁ = 42 Ω,l₁ = l₂ = 4.2 m,A₁ = 4.523[tex]mm^2[/tex],A₂ = 9.61[tex]mm^2[/tex]

R₂ = R₁ (A₁ / A₂)R₂ = 42(4.523 / 9.61)R₂ = 19.78 Ω

Therefore, the resistance of the wire having square cross-sectional area is 19.78 Ω.

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power systems Q2
QUESTION 6 (a) Define the following terms. (i) Graph (ii) Node[2] (iii) Rank of a graph [2] (iv) Path [2] (b) For the power systems shown in figure draw the graph, a tree and its co-tree. Figure 6 [2]

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The drawing of the graph, tree, and co-tree should accurately represent the given power systems and their interconnections. (a) In this question, you are required to define the following terms:(i) Graph(ii) Node(iii) Rank of a graph(iv) Path

(b) You need to draw the graph, a tree, and its co-tree for the power systems shown in Figure 6.(a) To answer part (a) of the question, you need to provide concise definitions for each of the terms:

(i) Graph: A graph is a collection of vertices or nodes connected by edges or arcs. It represents a set of relationships or connections between different elements.

(ii) Node: In the context of a graph, a node refers to a single point or element. It is represented by a vertex and can be connected to other nodes through edges.

(iii) Rank of a graph: The rank of a graph is the maximum number of linearly independent paths between any two nodes in the graph. It determines the connectivity and complexity of the graph.

(iv) Path: A path in a graph refers to a sequence of edges that connects a series of nodes. It represents a route or a connection between two nodes.

(b) Part (b) of the question requires you to draw the graph, a tree, and its co-tree for the power systems shown in Figure 6. The graph represents the interconnection between different components or nodes in the power system, while the tree represents a subset of the graph that forms a connected structure without any closed loops. The co-tree represents the complement of the tree, consisting of the remaining edges not included in the tree.

To complete part (b), you need to carefully examine Figure 6 and draw the graph by representing the nodes as vertices and the connections between them as edges. Then, based on the graph, identify a tree that includes all the nodes without forming any loops. Finally, draw the co-tree by including the remaining edges not present in the tree.

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A solid uniform disk of mass Md and radius Rd and a uniform hoop of mass Mh and radius
Rh are released from rest at the same height on an inclined plane. If they roll without slipping
and have a negligible frictional drag, which one of the following is true?
A. They will reach the bottom simultaneously
B. the disk will reach the bottom first
C. The hoop will reach the bottom first
D. the one with the smaller radius will reach the bottom first
E. insufficient information has been given to predict this

Answers

A solid uniform disk of mass Md and radius Rd and a uniform hoop of mass Mh and radius Rh are released from rest at the same height on an inclined plane. If they roll without slipping and have a negligible frictional drag, The correct answer is B. The disk will reach the bottom first.

When a solid uniform disk and a uniform hoop roll without slipping down an inclined plane, the disk has a lower moment of inertia compared to the hoop for the same mass and radius. This means that the disk has a lower rotational inertia and is able to accelerate faster.

Due to its lower rotational inertia, the disk will have a higher linear acceleration down the incline compared to the hoop. As a result, the disk will reach the bottom of the incline first.

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A 20.0-cm-diameter loop of wire is initially oriented perpendicular to 10 T magnetic field. The loop is rotated so that its plane is parallel to the field direction in 0.2 s. What is the average induced emf in the loop?

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The average induced EMF in the loop is -314 V. Note that the negative sign indicates that the induced current flows in the opposite direction to the rotation of the loop. The answer is also correct if you express it in volts.

The average induced EMF in the loop can be calculated using Faraday's law of electromagnetic induction, which states that the EMF induced in a loop is equal to the negative rate of change of magnetic flux through the loop. The magnetic flux is given by the dot product of the magnetic field and the area of the loop. In this case, the loop is a circle with a diameter of 20.0 cm, so its area is πr², where r is the radius of the circle, which is 10.0 cm.

The magnetic flux through the loop is initially zero, since the loop is perpendicular to the magnetic field. When the loop is rotated so that its plane is parallel to the field direction, the magnetic flux through the loop is at its maximum value, which is given by Bπr², where B is the magnitude of the magnetic field.

The time interval over which the loop is rotated is 0.2 s. Therefore, the average induced EMF in the loop is given by:

EMF = -ΔΦ/Δt = -(Bπr² - 0)/Δt = -Bπr²/Δt

Substituting the given values, we get:

EMF = -10 T x π x (10.0 cm)² / 0.2 s = -314 V

Therefore, the average induced EMF in the loop is -314 V. Note that the negative sign indicates that the induced current flows in the opposite direction to the rotation of the loop. The answer is also correct if you express it in volts.

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The current supplied by a battery as a function of time is I(t) = (0.64A) * e ^ (- (6hr)) What is the total number of electrons transported from the positive electrode to the negative electrode from the time the battery is first used until it is essentially dead? (e = 1.6 * 10 ^ - 19 * C)
please answer quickly

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To calculate the total number of electrons transported from the positive electrode to the negative electrode, we need to integrate the current function over the time interval during which the battery is in use.

The current function is given as I(t) = (0.64A) * e^(-6t), and we need to find the integral of this function.

To calculate the total number of electrons transported, we can integrate the current function I(t) over the time interval during which the battery is used. The integral represents the accumulated charge, which is equivalent to the total number of electrons transported.

The integral of the current function I(t) = (0.64A) * e^(-6t) with respect to time t will give us the total charge transported. To perform the integration, we need to determine the limits of integration, which correspond to the starting and ending times of battery usage.

Once we have the integral, we can divide it by the elementary charge e = 1.6 * 10^-19 C to convert the accumulated charge to the total number of electrons transported.

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A "U" shaped tube (with a constant radius) is filled with water and oil as shown. The water is a height h₁ = 0.37 m above the bottom of the tube on the left side of the tube and a height h₂ = 0.12 m above the bottom of the tube on the right side of the tube. The oil is a height h₃ = 0.3 m above the water. Around the tube the atmospheric pressure is PA = 101300 Pa. Water has a density of 10³ kg/m³. What is the absolute pressure in the water at the bottom of the tube? _____________ Pa

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The absolute pressure in the water at the bottom of a U-shaped tube filled with water and oil was found using the hydrostatic equation. The pressure was calculated to be 113136 Pa given the specified heights and densities.

We can find the absolute pressure in the water at the bottom of the tube by applying the hydrostatic equation:

P = ρgh + P0

where P is the absolute pressure, ρ is the density of the fluid, g is the acceleration due to gravity, h is the height of the fluid column, and P0 is the atmospheric pressure.

In this case, we have two water columns with different heights on either side of the U-shaped tube, and an oil column above the water. We can consider the pressure at the bottom of the tube on the left side and equate it to the pressure at the bottom of the tube on the right side, since the radius of the tube is constant. This gives us:

ρgh₁ + ρgh₃ + P0 = ρgh₂ + P0

Simplifying, we get:

ρg(h₁ - h₂) = ρgh₃

Substituting the given values, we get:

(10³ kg/m³)(9.81 m/s²)(0.37 m - 0.12 m) = (10³ kg/m³)(9.81 m/s²)(0.3 m)

Solving for P, we get:

P = ρgh + P0 = (10³ kg/m³)(9.81 m/s²)(0.12 m) + 101300 Pa = 113136 Pa

Therefore, the absolute pressure in the water at the bottom of the tube is 113136 Pa.

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wire carrvina a current of \( 16 \mathrm{~A} \). What is the magnitude of the force on this electron when it is at a distance of \( 0.06 \) m from the wire? ]\( N \)

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A wire carries a current of 16 A.

The magnitude of the force on an electron when it is at a distance of 0.06 m from the wire is 5.76 × 10^-12 N.

Wire carries electric current I= 16 A, and is at a distance of r = 0.06m from an electron. The force on the electron is given by the formula;

F = μ0(I1I2)/2πr

Where;

μ0 is the permeability of free space= 4π×10^-7

I1 is the current carried by the wireI2 is the current carried by the electron

F is the force experienced by the electron

In this case, I1 = 16 A, and I2 = 1.6 × 10^-19 C s^-1 (charge on electron)So;

F = (4π×10^-7×16×1.6 × 10^-19)/2π×0.06

F = 5.76 × 10^-12 N

Therefore, the magnitude of the force on an electron when it is at a distance of 0.06 m from the wire is 5.76 × 10^-12 N.

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Body is moving with speed of 40km/ m one sec later its is moving at 58 km/h find its acceleration

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To find the acceleration of an object, we need information about its initial and final speeds, as well as the time taken. In this case, we have the initial and final speeds but not the time interval. Without the time, we cannot calculate the acceleration accurately.

Acceleration is defined as the change in velocity divided by the time taken. Since we have the change in speed (40 km/h to 58 km/h), we can determine the acceleration if we know the time interval. Could you please provide the time interval during which the speed changed from 40 km/h to 58 km/h?

Two long parallel wires, each carrying a current of 5 A, lie a distance 5 cm from each other. (a) What is the magnetic force per unit length exerted by one wire on the other? N/m

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The magnetic force per unit length exerted by one wire on the other is 2 × 10⁻⁵ N/m.

The magnetic force per unit length exerted by one wire on the other can be calculated using the formula given below:

F = μ0 I1 I2 / 2πr

Where,I1 and I2 are the currents, μ0 is the magnetic constant and r is the distance between the two wires.

Given that the two long parallel wires, each carrying a current of 5 A, lie a distance 5 cm from each other, we can use the formula above to calculate the magnetic force per unit length exerted by one wire on the other. Substituting the given values, we get:F = (4π × 10⁻⁷ Tm/A) × (5 A)² / 2π(0.05 m) = 2 × 10⁻⁵ N/m

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Find the force between two punctual charges with 2C and 1C, separated by a distance of 1 m of air. Write your answer in Newtons. NOTE: Constant k = 9 × 10⁹ Nm²C⁻²
A. 1.8×10⁹ N B. 18×10⁹ N C. 18×10⁻⁶ N D. 1.8×10⁻⁶ N

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The force between two punctual charges of 2C and 1C, separated by 1m in air, is 18 × 10^9 Newtons. The correct answer is option B.

The force between two punctual charges can be calculated using Coulomb's Law:

F = k * (|q₁| * |q₂|) / r²,

where F is the force, k is the electrostatic constant, |q₁| and |q₂| are the magnitudes of the charges, and r is the distance between them.

Given:

|q₁| = 2 C,

|q₂| = 1 C,

r = 1 m,

k = 9 × 10^9 Nm²C⁻².

Substituting the values into the formula:

F = (9 × 10^9 Nm²C⁻²) * (|2 C| * |1 C|) / (1 m)²

  = (9 × 10^9 Nm²C⁻²) * (2 C * 1 C) / (1 m)²

  = (9 × 10^9 Nm²C⁻²) * 2 C² / 1 m²

  = 18 × 10^9 N.

Therefore, the force between the two charges is 18 × 10^9 Newtons.

The correct answer is option B: 18×10⁹ N.

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A red ball is thrown downwards with a large starting velocity. A blue ball is dropped from rest at the same time as the red ball. Which ball will reach the ground first?multiple choicethe blue ballthe red ballboth balls will reach the ground at the same time. It is impossible to determine without the mass of the balls

Answers

Answer:

Both balls will reach the ground at the same time

Explanation:

That is because the acceleration due to gravity of both balls are same.

1. A sphere made of wood has a density of 0.830 g/cm³ and a radius of 8.00 cm. It falls through air of density 1.20 kg/m³ and has a drag coefficient of 0.500. What is its terminal speed (in m/s)?
2. From what height (in m) would the sphere have to be dropped to reach this speed if it fell without air resistance?

Answers

The height from which the sphere must be dropped without air resistance to reach a speed of 3.89 m/s is 0.755 m.

Density of sphere (ρs) = 0.830 g/cm³

Radius of sphere (r) = 8.00 cm

Air density (ρa) = 1.20 kg/m³

Drag coefficient (Cd) = 0.500

The terminal speed of a sphere is the constant speed that it attains when the force due to the air resistance becomes equal and opposite to the gravitational force acting on it.

So, the following formula can be used:

mg - (1/2)CdρAv² = 0

where,

m is the mass of the sphere.

g is the acceleration due to gravity.

ρ is the air density.

A is the area of the cross-section of the sphere facing the direction of motion.

v is the terminal speed of the sphere.

In order to calculate the terminal speed of the sphere, we need to calculate the mass and the cross-sectional area of the sphere. We can use the given density and radius to calculate the mass of the sphere as follows:

Volume of sphere = (4/3)πr³

Mass of sphere = Density x Volume= 0.830 g/cm³ x (4/3)π x (8.00 cm)³= 1432.0 g

The area of the cross-section of the sphere can be calculated as follows:

Area of circle = πr²

Area of sphere = 4 x Area of circle= 4πr²= 4π(8.00 cm)²= 804.25 cm²= 0.080425 m²

Substituting the given values in the above formula, we get:

mg - (1/2)CdρAv² = 0v = √[2mg/(CdρA)]

Substituting the values, we get:

v = √[2 x 0.001432 kg x 9.81 m/s² / (0.500 x 1.20 kg/m³ x 0.080425 m²)]

v = 3.89 m/s

Therefore, the terminal speed of the sphere is 3.89 m/s.

Now, let's calculate the height from which the sphere must be dropped to reach this speed without air resistance. We can use the following formula:

mgΔh = (1/2)mv²

where,

Δh is the height from which the sphere must be dropped without air resistance.

The mass of the sphere is given as 0.001432 kg.

We can use this to find the height as follows:

Δh = v²/(2g)

Δh = (3.89 m/s)² / (2 x 9.81 m/s²)

Δh = 0.755 m

Therefore, the height from which the sphere must be dropped without air resistance to reach a speed of 3.89 m/s is 0.755 m.

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What is the frequency of a sound wave with a wavelength of 5.0 m if its 5 peed is 330 m/5 ? Select one: a. 330 Hz b. 5.0 Hz c. 33 Hz d. 66 Hz Sound is a(an) Wave. Select one: a. electromagnetic b. tongitudinal c. matter d. transverse

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The frequency of a sound wave with a wavelength of 5.0 m and a speed of 330 m/s is 66 Hz(option d).

Sound is a longitudinal wave (option b).

The formula to calculate the frequency of a wave is:

[tex]\[ f = \frac{v}{\lambda} \][/tex]

where f is the frequency, v is the speed of the wave, and[tex]\( \lambda \)[/tex]is the wavelength. Given that the wavelength is 5.0 m and the speed is 330 m/s, we can substitute these values into the formula:

[tex]\[ f = \frac{330 \, \text{m/s}}{5.0 \, \text{m}} = 66 \, \text{Hz} \][/tex]

Therefore, the frequency of the sound wave is 66 Hz.

Sound waves are longitudinal waves, meaning the particles of the medium vibrate parallel to the direction of the wave propagation. Unlike electromagnetic waves, which can travel through a vacuum, sound waves require a medium (such as air, water, or solids) to propagate. Thus, sound is not an electromagnetic wave.

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Calculations Since the stirrer and calorimeter are also of aluminum , C = Co = Ca with Cv = 1.00 cal/( gram Cº) equation (1) becomes M2 Ca(Ta-T) = (Mw + McCa+MsCa )(T-T.) (2) + а a Solve this equation for Ca, the specific heat of aluminum for each trial and compare your result with the standard value of 0.22 cal( gram C°) by determining the % discrepancy.

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Once we have the experimental value for Ca, we can calculate the % discrepancy using the formula:

% discrepancy = (|Ca - Standard value| / Standard value) * 100

The equation (1) given is M2 Ca(Ta-T) = (Mw + McCa+MsCa)(T-T.) where Ca represents the specific heat of aluminum. By solving this equation for Ca, we can determine the specific heat of aluminum for each trial and compare it with the standard value of 0.22 cal/(gram°C). The % discrepancy will indicate how much the experimental value differs from the standard value.

In order to calculate Ca, we need to rearrange the equation (2) and isolate Ca on one side:

Ca = ((M2(Ta-T)) - (w(T-T.) + McCa(T-T.) + MsCa(T-T.))) / (T-T.)

Once we have the experimental value for Ca, we can calculate the % discrepancy using the formula:

% discrepancy = (|Ca - Standard value| / Standard value) * 100

By substituting the experimental value of Ca and the standard value of 0.22 cal/(gram°C) into this formula, we can determine the % discrepancy, which indicates the difference between the experimental and standard values of specific heat for aluminum.

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A uniform hoop and a uniform solid cylinder have the same mass and radius. They both roll, without slipping, on a horizontal surface. If their total kinetic energies are equal, then the cylinder and the hoop have the same translational speed. the cylinder has a greater translational speed than the hoop. The translational speeds of the hoop and the cylinder cannot be compared without more information. the hoop has a greater translational speed than the cylinder.

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If a uniform hoop and a uniform solid cylinder with the same mass and radius roll without slipping on a horizontal surface and have equal total kinetic energies, the hoop and the cylinder will have the same translational speed

When a hoop or a solid cylinder rolls without slipping, its total kinetic energy consists of both rotational and translational components. The rotational kinetic energy depends on the moment of inertia, which differs between the hoop and the cylinder due to their different shapes.

However, if the total kinetic energies of the hoop and the cylinder are equal, it implies that the rotational kinetic energies are also equal. Since the masses and radii of the hoop and the cylinder are the same, the only way for their rotational kinetic energies to be equal is if their angular velocities are equal.

Now, since both the hoop and the cylinder roll without slipping, their angular velocities are directly related to their translational speeds. In this scenario, if the angular velocities are the same, the translational speeds will also be the same.

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. A power plant operates with a high temperature reservoir of 1500 K and is cooled with a low
temperature reservoir of 400 K. What is the ideal efficiency of the power plant? If the plant
operates at an actual efficiency that is half of the ideal efficiency, what is the net work output
for every 100 J of heat extracted from the high temperature reservoir?

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A power plant operates with a high temperature reservoir of 1500 K and is cooled with a low temperature reservoir of 400 K. for every 100 J of heat extracted from the high-temperature reservoir, the net work output of the power plant is 36.65 J.

The ideal efficiency of a power plant operating between two temperature reservoirs can be calculated using the Carnot efficiency formula:

Efficiency = 1 - (T_low / T_high)

Where T_low is the temperature of the low-temperature reservoir and T_high is the temperature of the high-temperature reservoir.

In this case, T_low = 400 K and T_high = 1500 K, so the ideal efficiency is:

Efficiency = 1 - (400 K / 1500 K)

          = 1 - 0.267

          = 0.733 or 73.3%

The actual efficiency of the power plant is given to be half of the ideal efficiency, so the actual efficiency is:

Actual Efficiency = 0.5 * 0.733

                 = 0.3665 or 36.65%

To calculate the net work output for every 100 J of heat extracted from the high-temperature reservoir, we can use the relationship between efficiency and work output:

Efficiency = Work output / Heat input

Rearranging the equation, we have:

Work output = Efficiency * Heat input

Given that the heat input is 100 J, and the actual efficiency is 36.65%, we can calculate the net work output:

Work output = 0.3665 * 100 J

           = 36.65 J

Therefore, for every 100 J of heat extracted from the high-temperature reservoir, the net work output of the power plant is 36.65 J.

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A planet with a mass of 2.7 x 1022 kg is in a circular orbit around a star with a mass of 5.3 x 1032 kg. If the planet has an orbital radius of 4.8 x 10 m, what is its orbital period? (Universal gravitation constant, G = 6.67. 10-11 m kg 15-2) 23. A 0.05 kg softball was bounced on the sidewalk. The velocity change of the ball is from 30 m/s downward to 20 m/s upward. If the contact time with the sidewalk is 1.25 ms. a) What is momentum change of the ball? b) What is the magnitude of the average force exerted on the ball by the sidewalk? 24. A rocket explodes into four pieces of equal mass. Immediately after the explosion their velocities are (120 m/s, cast), (150 m/s, west), (80 m/s, south), and (150 m/s north). What was the velocity of the rocket's center of mass before the explosion? 0° Use Directions are 90° for east, 180° for south, 270° for west, and 360° for north. 270° 90° 180°

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The orbital period of the planet is approximately 1.2411 x 10^6 seconds.

The orbital period of a planet can be calculated using the formula T = 2π√(r³/GM), where T is the orbital period, r is the orbital radius, G is the universal gravitation constant, and M is the mass of the central star. In this case, with a planet mass of 2.7 x 10^22 kg, a star mass of 5.3 x 10^32 kg, and an orbital radius of 4.8 x 10^10 m, the orbital period of the planet can be determined.

To calculate the orbital period, we can use Kepler's third law, which relates the orbital period to the radius and mass of the central object. The formula for orbital period, T, is given by T = 2π√(r³/GM), where r is the orbital radius, G is the universal gravitation constant (6.67 x 10^-11 m^3 kg^-1 s^-2), and M is the mass of the central star.

Plugging in the given values, we have T = 2π√((4.8 x 10^10)^3 / (6.67 x 10^-11) (5.3 x 10^32 + 2.7 x 10^22)).

Simplifying the expression inside the square root, we get T ≈ 2π√(1.3824 x 10^33 / 3.53671 x 10^22).

Further simplifying, T ≈ 2π√(3.9117 x 10^10), which gives T ≈ 2π(1.9778 x 10^5) ≈ 1.2411 x 10^6 seconds.

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