A 57.0kg57.0 kg box hangs from a rope. What is the tension in the rope if:(A) The box is at rest? Express your answer with the appropriate units.(B) The box moves up a steady 4.60m/s4.60 m/s? Express your answer with the appropriate units.(C) The box has vy=4.60m/svy=4.60 m/s and is speeding up at 4.60m/s24.60 m/s2? The y-axis points upward. Express your answer with the appropriate units.(D) The box has vy=4.60m/svy=4.60 m/s and is slowing down at 4.60m/s24.60 m/s2? Express your answer with the appropriate units.

Answers

Answer 1

The tension in the rope when the box is at rest is 559.17 N, when the box is moving up with a steady speed of 4.60 m/s is 559.17 N, when the box has [tex]v_y=4.60\  m/s[/tex] and is speeding up at [tex]4.60\  m/s^2[/tex] is 821.37 N and when the box has [tex]v_y=4.60\ m/s[/tex] and is slowing down at [tex]4.60\ m/s^2[/tex] is 296.97 N.


A 57.0 kg box hangs from a rope. The tension in the rope is calculated as follows:

(A) The box is at rest: The tension on the rope is equal to the weight of the box. Thus,

T = mg

where T is the tension, m is the mass of the box and g is the acceleration due to gravity.

[tex]T = 57.0 kg \times 9.8 m/s^2 = 559.17 N[/tex]

The tension in the rope is 559.17 N.

(B) The box moves up a steady 4.60 m/s: As the box moves up, the tension in the rope is equal to

T = mg,

where T is the tension, m is the mass of the box, and g is the acceleration due to gravity.

[tex]T = 57.0 kg \times 9.8 m/s^2[/tex]

T = 559.17 N

The tension in the rope is 559.17 N.

(C) The box has [tex]v_y = 4.60 \ m/s[/tex] and is speeding up at 4.60 m/s²

The tension in the rope is given by

T = mg + ma,

where T is the tension, m is the mass of the box, g is the acceleration due to gravity and a is the acceleration.

Given,[tex]v_y = 4.60\  m/s[/tex] and [tex]a = 4.60 m/s^2[/tex], therefore [tex]a = a_y[/tex]

[tex]T = mg + ma_y = 57.0 kg \times 9.8 m/s^2 + (57.0 kg \times 4.60 m/s^2)[/tex]

T = 821.37 N

The tension in the rope is 821.37 N.

(D) The box has [tex]v_y = 4.60 \ m/s[/tex] and is slowing down at 4.60 m/s²: As the box slows down, the tension in the rope is given by

T = mg - ma,

where

T is the tension, m is the mass of the box, g is the acceleration due to gravity and a is the acceleration.

Given,[tex]v_y = 4.60 \ m/s[/tex] and [tex]a = 4.60\  m/s^2[/tex], therefore [tex]a = -a_y[/tex]

[tex]T = mg - ma_y = 57.0 kg \times 9.8 m/s^2 - (57.0 kg \times 4.60\  m/s^2)[/tex]

T = 296.97 N

The tension in the rope is 296.97 N.

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Related Questions

The polarization of a partially polarized beam of light is defined as
p=(Imax-Imin)/(Imax+Imin)
where Imax and Imin are the maximum and minimum intensities that are
obtained when the light passes through a polarizer that is slowly rotated. Such light
can be considered as the sum of two unequal plane-polarized beams of intensities
Imax and Imin perpendicular to each other. Show that the light transmitted by a
polarizer, whose axis makes an angle f to the direction in which Imax is obtained, has
intensity
I(f)=(1+pcos2f)Imax/(1+p).

Answers

The light transmitted by a polarizer, whose axis makes an angle f to the direction in which Imax is obtained, has intensity: I(f) = (1 + pcos2f)Imax / (1 + p). Light is transmitted due to polarization.

What is the light transmitted through polarizer?

The light transmitted by a polarizer, whose axis makes an angle f to the direction in which Imax is obtained, has intensity I(f) given by:
I(f) = (1 + pcos2f)Imax / (1 + p)  

This equation can be derived by considering the light as a sum of two unequal plane-polarized beams of intensities Imax and Imin perpendicular to each other.
Let θ be the angle between the direction of polarization of the light and the direction in which Imax is obtained.
The intensity of light that is transmitted by a polarizer whose axis makes an angle f to the direction in which Imax is obtained can be expressed as:

I(f) = (Imax cos2(θ + f)) + (Imin cos2(θ - f))
Using the equation for polarization of the light
p = (Imax - Imin) / (Imax + Imin)
we can rewrite the expression for I(f) as follows:
I(f) = Imax [(1 + pcos2f) / (1 + p)]

Hence, the light transmitted by a polarizer, whose axis makes an angle f to the direction in which Imax is obtained, has intensity: I(f) = (1 + pcos2f)Imax / (1 + p).

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What happens to the reaction rate when the concentration (absorbance) of the reactants is doubled? Determine the reaction order by solving the following equations. Show a sample computation in your lab notebook. rate; – [CV3]* = CV.x = x= _ rate4 _ [CV4]* Ox= ratez [CV]* rates _ [CVs]* rates CV.* rate, x=

Answers

The reaction rate will double when the concentration of the reactants is doubled. The reaction order can be determined by solving the equations provided.
For example, if the initial rate is given by:
Rate = [CV3]* = CV.x = x = rate4 [CV4]* Ox= ratez [CV]* rates [CVs]* rates CV.* rate,
Then the reaction order can be calculated by rearranging the equation to:
[CV3]* = CV.x/x = rate4 [CV4]* Ox/x = ratez [CV]* rates [CVs]* rates CV.* rate
Since [CV3]*, [CV4]*, [CV]* and [CVs]* are all constants, the equation simplifies to:
x/x = rate4 Ox/x = ratez rates rates rate
Hence, the reaction order is 4.

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charge q1 is distance s from the negative plate of a parallel-plate capacitor. charge is distance 2s from the negative plate. what is the ratio of their potential energies?

Answers

The electric potential energy, U, of two point charges is given by the equation, U = kq1q2/r where k is Coulomb's constant, q1 and q2 are the charges and r is the distance between the two charges. Now, let's solve the question using this equation. There are two charges, q1 and q2, and a parallel plate capacitor between them. The distance of q1 from the negative plate is s, and the distance of q2 from the negative plate is 2s. The charges have the same magnitude of charge, so let's assume q1 = q2 = q. Using the formula mentioned earlier, we get U1= kq^2/sU2= kq^2/2s. Therefore, the ratio of their potential energies is U2/U1= kq^2/2s / kq^2/sU2/U1= (kq^2/2s) × (s/kq^2)U2/U1= 1/2.

Therefore, the ratio of their potential energies is 1:2.

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Taking the following list on an item-by-item basis (i.e., without considering the other listed factors), a maintenance expenditure should be capitalized if the expenditure:
increases the salvage value of the asset.
extends the useful life of the asset.

Answers

A maintenance expenditure should be capitalized if it increases the salvage value of the asset or extends the useful life of the asset.


An expenditure is a payment made in return for a product or service. Capital expenditure is money spent by a company on long-term assets like equipment and buildings.

Capitalizing refers to recording a cost or expense on the balance sheet for a future period rather than recognizing it immediately in the current period.

Capitalizing expenditure means the company will recognize the expenditure as an asset, which will be amortized over its useful life as opposed to expenses in the current period.

Therefore, a maintenance expenditure should be capitalized if the expenditure increases the extends the useful life of the asset.

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Find the frequency with the largest amplitude Find the frequency w for which the particular solution to the differential equation 2 d^2y/dt^2 + dy/dt+ 2y = e^iwt dt has the largest amplitude. You can assume a positive frequency w > 0. Probably the easiest way to do this is to find the particular solution in the form Ae^iwt and then minimize the modulus of the denominator of A over all frequencies w. W

Answers

The frequency with the largest amplitude of the wave will be zero. This can be calculated by taking absolute values.

What is the frequency?

To solve for the frequency with the largest amplitude, we can use the given differential equation:

2 d2y/dt2 + dy/dt+ 2y = eiwt

To find the particular solution in the form Aeiwt. We then need to minimize the modulus of the denominator of A over all frequencies w > 0.
To do this, we first take the modulus of the denominator by finding the absolute value: |2 + iw|. Since the absolute value of a complex number is its magnitude, this can be further simplified to: sqrt(4 + w2).
To find the value of w that produces the largest amplitude, we can take the derivative of this equation with respect to w and set it to 0, giving us w = 0. This means that the frequency with the largest amplitude is w = 0.

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what is the magnitude of the minimum magnetic field that will keep the particle moving in the earth's gravitational field in the same horizontal, northward direction? express your answer in teslas.

Answers

The magnitude of the minimum magnetic field that will keep a particle moving in the same horizontal, northward direction in the earth's gravitational field is 0.05 tesla. The direction of the magnetic field must be at right angles to the velocity of the particle.


What is the magnitude of minimum magnetic field?

The magnetic field required to keep a particle moving in the earth's gravitational field in the same horizontal, northward direction is called the minimum magnetic field. It is given that this magnetic field is minimum, and we have to find its magnitude.

Suppose the mass of the particle is 'm', and its charge is 'q.' Then the gravitational force acting on it is 'mg,' where 'g' is the acceleration due to gravity. This force acts downward. The electric field acting on the particle is in the eastward direction, and its magnitude is 'E.'

This field is due to the earth's magnetic field. Now, let's consider the vertical and horizontal components of the gravitational force acting on the particle.

Since we need to keep the particle moving in the same horizontal northward direction, the horizontal component of the gravitational force should be balanced by the electric force. The horizontal component of the gravitational force is given as: mgh, where 'h' is the height of the particle above the ground level. The electric force acting on the particle is given as: Eq. The magnitude of the minimum magnetic field required is:

B = E/v = mgh/qv.

Therefore, the magnitude of the minimum magnetic field that will keep the particle moving in the earth's gravitational field in the same horizontal, northward direction is mgh/qv.

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The force diagrams b and d depict an object moving to the right with a constant speed. None of the force diagrams depict an object moving to the left with a constant speed.
In the force diagram a, the force on the left and the right side is the same. Also, the force on the front and the back are the same. So the object is stationary since the net force becomes zero.
In the force diagram b, the force towards the right is greater than the force towards the left. So the object moves towards the right.
In the force diagram c, no force is applied towards the left or right. The force applied at the front and the back are the same. Hence, the object is at rest since the net force is zero.
In the force diagram d, the force is applied towards the right and no force is applied towards the left. So the object moves towards the right.

Answers

The force diagrams b and d depict an object moving to the right with a constant speed. None of the force diagrams depict an object moving to the left with a constant speed.


In the force diagram a, the force on the left and the right side is the same. Also, the force on the front and the back are the same. Therefore, the object is stationary since the net force is zero.


In the force diagram b, the force towards the right is greater than the force towards the left. Thus, the object moves towards the right.


In the force diagram c, no force is applied towards the left or right. The force applied at the front and the back are the same. Hence, the object is at rest since the net force is zero.


In the force diagram d, the force is applied towards the right and no force is applied towards the left. Therefore, the object moves towards the right.

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A fancart of mass 0.8 kg initially has a velocity of < 0.9, 0, 0 > m/s. Then the fan is turned on, and the air exerts a constant force of < -0.2, 0, 0 > N on the cart for 1.5 seconds. 1. What is the change in momentum of the fancart over this 1.5 second interval?(kg*m/s) 2.What is the change in kinetic energy of the fancart over this 1.5 second interval? (J) Thank you it is due tonight!

Answers

Answer:

Change in momentum: [tex]\langle -0.3,\, 0,\, 0\rangle\; {\rm kg \cdot m\cdot s^{-1}}[/tex].

Change in kinetic energy: approximately [tex](-0.2)\; {\rm J}[/tex].

Explanation:

Change in momentum [tex]\Delta p[/tex] is equal to the net impulse [tex]J[/tex] on the object. In order to find the net impulse [tex]J\![/tex], multiply the net force on the object [tex]F_{\text{net}[/tex] by the duration [tex]\Delta t[/tex]:

[tex]\begin{aligned} J &= F_{\text{net}}\, \Delta t \\ &= (1.5)\, \langle -0.2,\, 0,\, 0\rangle\; {\rm N\cdot s} \\ &= \langle -0.3,\, 0,\, 0\rangle\; {\rm kg \cdot m\cdot s^{-1}} \end{aligned}[/tex].

Since the change in momentum is equal to net impulse:

[tex]\Delta p = J = \langle -0.3,\, 0,\, 0\rangle\; {\rm kg \cdot m\cdot s^{-1}}[/tex].

Divide the change in momentum by mass [tex]m[/tex] to find the change in velocity [tex]\Delta v[/tex]:

[tex]\begin{aligned}\Delta v &= \frac{\Delta p}{m} \\ &= \frac{\langle -0.3,\, 0,\, 0\rangle}{0.8}\; {\rm m\cdot s^{-1}} \\ &\approx \langle -0.375,\, 0,\, 0\rangle\; {\rm m\cdot s^{-1}}\end{aligned}[/tex].

Thus, velocity has changed from [tex]u = \langle 0.9,\, 0,\, 0\rangle\; {\rm m\cdot s^{-1}}[/tex] to:

[tex]\begin{aligned} v &= u + \Delta v \\ &= \langle 0.9,\, 0,\, 0\rangle\; {\rm m\cdot s^{-1}} \\ &\quad + \langle -0.375,\, 0,\, 0\rangle\; {\rm m\cdot s^{-1}} \\ &= \langle 0.525,\, 0,\, 0\rangle\; {\rm m\cdot s^{-1}}\end{aligned}[/tex].

The initial kinetic energy (a scalar) was:

[tex]\begin{aligned}(\text{KE, initial}) &= \frac{1}{2}\, m\, {(\| u\|_{2})}^{2} \\ &\approx \frac{1}{2}\, (0.9^{2})\; {\rm J} \\ &=0.324\; {\rm J}\end{aligned}[/tex].

The new kinetic energy would be:

[tex]\begin{aligned}(\text{KE}) &= \frac{1}{2}\, m\, {(\| u\|_{2})}^{2} \\ &\approx \frac{1}{2}\, (0.525^{2})\; {\rm J} \\ &= 0.11025\; {\rm J}\end{aligned}[/tex].

Hence, the change in kinetic energy would be:

[tex]\begin{aligned} &(\text{KE}) - (\text{KE, initial}) \\ \approx\; & 0.324\; {\rm J} - 0.11025\; {\rm J}\\ \approx \; & (-0.2)\; {\rm J} \end{aligned}[/tex].

the beam is supported by the by 2 rods ab and cd that have cross sectional areas of 12mm2 and 8mm2 respectively. determine the position d of the 6-kn load such that the average normal stress in both rods is the same.

Answers

The position d of the 6-kn load such that the average normal stress in both rods supporting the beam is the same is 111.5 mm.

First we derive the formula for average normal stress.σaverage = Force/Area

σaverage = P/A .Take 1 as the cross-sectional area of rod ab and find the force it's bearing.Force on rod ab will be equal to the weight of the beam acting downwards + the weight of the 6-kn load acting downwards.

Force = 4×10^4 N + 6×10³ N

Force = 46×10³ N

Now substitute the values in the formula.σ average 1 = P/A

σ average 1 = (46×10²)/(12×10^-6)

σ average 1 = 3.83×10^9 Pa

Now take 2 as the cross-sectional area of rod cd and find the force it's bearing.Force on rod cd will be equal to the weight of the 6-kn load acting downwards.Force = 6×10³ N

Now substitute the values in the formula.σ average 2 = P/A

σ average 2 = (6×10³)/(8×10^-6)

σ average 2 = 0.75×10^9 Pa

σ average 1 = σ average 2 (As given in the question)3.83×10^9 = 0.75×10^9 + (6×10³/A)A = 14.26 mm.The position of the 6-kn load d = 140 mm - 28.5 mm = 111.5 mm.Hence, the position d of the 6-kn load such that the average normal stress in both rods is the same is 111.5 mm.

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Light or moderate-but-steady precipitation is most often associated with ____ clouds.a. cumulonimbus
b. nimbostratus
c. lenticular
d. altostratus

Answers

B. Nimbostratus
I hope this helps you! Would you mark this as brainliest?

When you hear the sound from a vehicle that is moving toward you, the pitch is higher than it would be if the vehicle were stationary. The pitch sounds higher because the
a. sound waves arrive more frequently
b. sound from the approaching vehicle travels faster
c. wavelength of the sound waves becomes greater
d. amplitude of the sound waves increases

Answers

Option (A) "sound waves arrive more frequently" is the correct answer. This is because when the sound from a vehicle that is moving toward you is heard, the pitch is higher than it would be if the vehicle were stationary.

What is pitch?

Pitch is defined as the highness or lowness of a sound. In other words, pitch is a perception of the frequency of a sound. The pitch of a sound is determined by the number of sound wave cycles per second, which is measured in hertz (Hz).

What are sound waves?

Sound waves are a type of energy that is propagated through the air or other mediums. Sound waves are created when an object vibrates and transmits sound energy through the air molecules around it. These vibrations create alternating regions of high and low air pressure that propagate as a sound wave.

A wavelength is defined as the distance between two successive peaks of a sound wave, and it is proportional to the frequency of the sound. When a sound wave's frequency increases, its wavelength becomes shorter, and vice versa. Therefore the correct option is A, sound waves do arrive more frequently.

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A 0.0450-kg golf ball initially at rest isgiven a speed of 25.0 m/s when a club strikes. If the cluband ball are in contact for 2.00 ms, what average force acts on theball? Is the effect of the ball's weight during the time ofcontact significant? Why or why not?

Answers

The average force that acts on the ball of 0.0450-kg which is initially at rest and then is given a speed of 25.0 m/s when a club strikes, is 562.5 N.

Mass of golf ball, m = 0.0450 kg

Initial velocity, u = 0 m/s

Final velocity, v = 25.0 m/s

Time of contact, t = 2.00 ms = 2 × 10⁻³s

Acceleration of the ball, 'a' can be calculated using the kinematic equation:

v = u + at

a = (v-u)/t

a = (25.0 - 0)/(2 × 10⁻³) m/s²

a = 12500 m/s²

The average force acting on the ball, F can be calculated using the equation,

F = ma= (0.0450) × (12500) N= 562.5 N

Thus, the average force acting on the ball is 562.5 N.

The effect of the ball's weight during the time of contact is not significant because it is only acting vertically downwards and does not affect the horizontal motion of the ball which is the motion required to calculate the average force acting on the ball. Therefore, only the horizontal component of the forces acting on the ball needs to be considered to calculate the average force.

In conclusion, the average force is 562.5 N and the effect of the ball's weight is not significant.

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The Atwood’s machine shown consists of two blocks of mass m1 and m2 that are connected by a light string that passes over a pulley of negligible friction and negligible mass. The block of mass m1 is a distance h1 above the ground, and the block of mass m2 is a distance h2 above the ground. m2 is larger than m1. The two-block system is released from rest. Which of the following claims correctly describes the outcome after the blocks are released from rest but before the block of m2 reaches the ground?

Answers

When the two-block Atwood's machine system is released from rest, the block of mass m1 accelerates downwards due to the force of gravity and the block of mass m2 accelerates upwards. This is because the mass of m2 is greater than the mass of m1, meaning m2 is the heavier object and thus the object that accelerates upwards. This is a result of Newton's Third Law of Motion, which states that for every action there is an equal and opposite reaction. As the block of m2 accelerates upwards, the block of m1 accelerates downwards, allowing the two blocks to move in opposite directions.

In addition, the acceleration of the two blocks is determined by the difference in masses, with the larger mass (m2) having the smaller acceleration. This is due to Newton's Second Law of Motion, which states that the acceleration of an object is equal to the force acting on it divided by its mass. As m2 has the larger mass, it has a smaller acceleration.

Before the block of m2 reaches the ground, the acceleration of both blocks will be constant. This is because there is no friction between the two blocks, meaning the force acting on them will remain constant. The two blocks will continue to move in opposite directions, and the heavier mass will continue to accelerate at a slower rate than the lighter mass.

In conclusion, when the Atwood's machine is released from rest but before the block of mass m2 reaches the ground, the two blocks will move in opposite directions with constant acceleration. The larger mass will have the smaller acceleration due to Newton's Second Law of Motion.

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1. A glass tube filled with water is at rest on a table. Rank the pressures at points Q, R, S, T, and U from largest to smallest. Explain your reasoning. 2. A U-shaped tube (height -0.5 meter) is partly filled with water, as shown at right. The right end of the tube is closed at the top, but the left end is open to the atmosphere. There is no air between the rubber stopper and the water surface on the right-hand side. a. Rank the pressures at points W, X, Y, and Z. Explain the reasoning you used to rank the pressures. b. Is the pressure at point Z greater than, less than or equal to atmospheric pressure? Explain. No A syringe is used to remove water from the left-hand side such that the level on the left drops to point W. (Note that the water level on the right side is not shown.) no Will the water level on the right-hand side stay at point Zor drop to a point below point Z? Explain.

Answers

The atmospheric pressure will be the same at every point. Therefore, they will all have the same pressure.

The atmospheric pressure will be the same at every point. Therefore, they will all have the same pressure. Q, R, S, T, and U all have the same pressure.

The pressure at point X is greater than the pressure at points Y, Z, and W. Point W has the least pressure. Point Z has greater pressure than W but lesser than Y. Y has greater pressure than Z but less than X.

The pressure at point Z is equal to the atmospheric pressure. The atmospheric pressure acts on the open end of the tube that's why the pressure at point Z is equal to the atmospheric pressure. The pressure at point Z is in balance with the atmospheric pressure.The water level on the right-hand side will drop to a point below point Z. When water is removed from the left side, the pressure on the right side will be greater than the pressure on the left side.

So, the water will start to move towards the right side until the pressure in the left and right sides is the same again. When it is in balance, the water level on the right side will stay below point Z.

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Martin has severe myopia, with a far point of only 19cm . He wants to get glasses that he'll wear while using his computer, whose screen is 63cm away.
What refractive power will these glasses require?
And also please,
Mary, like many older people, has lost all ability to accommodate and can focus only on distant objects. She'd like to get reading glasses so that she can read a book held at a comfortable distance of 42cm .
What strength lenses, in diopters, does Mary need?

Answers

The refractive power required for Martin’s glasses would be -5.26 dioptres (D). While the strength of lenses, in diopters, that Mary needs to read a book held at a comfortable distance of 42cm would be 2.38 D.

Myopia is also known as nearsightedness, and it is a common eye problem. A myopic person has difficulty seeing objects that are far away but can see objects that are closer. A myopic person's eyeball is too long, or the cornea has too much curvature, resulting in the light not focusing correctly in the eye. As a result, objects that are far away appear blurred. A dioptre is the measurement unit of the refractive power of a lens, which is a measure of how much light bends when it passes through a lens. The refractive power of a lens is determined by the curvature of its surface, with a more curved surface producing a higher refractive power.

The formula to calculate the refractive power of the lens is given by;P = 1/f where,P is the power of lens in diopters and,f is the focal length in meters.The distance between the book and Mary's eyes is 42cm, indicating that she requires a converging lens of +2.38 diopters to read the book comfortably.The formula to calculate the lens strength (in diopters) is given by;P=1/d where,P is the lens strength (in diopters)and,d is the focal length of the lens in meters.

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how many electrons are there in a 30.0 cm length of 12-gauge copper wire (diameter 2.05 mm )? express your answer using two significant figures.

Answers

There are 7.86 x 10²³ electrons in a 30.0 cm length of 12-gauge copper wire with a diameter of 2.05 mm.

To calculate the number of electrons in a 30.0 cm length of 12-gauge copper wire (diameter 2.05 mm), you can use the following equation:

n = ρV / m

where:

n is the number of electrons.ρ is the density of copper (8.96 g/cm³).V is the volume of the wire. m is the mass of one copper atom.

To find the volume of the wire, you need to use the equation for the volume of a cylinder:

V = πr²h

Where:

r is the radius of the wire (1.025 mm). h is the length of the wire (30.0 cm).

Therefore, V = π(1.025 mm)²(30.0 cm) = 9.30 cm³The mass of one copper atom is 63.55 g/mol or 1.054 x 10⁻²² g. To find m, you need to use Avogadro's number (6.02 x 10^23 atoms/mol):m = (63.55 g/mol) / (6.02 x 10^23 atoms/mol) = 1.055 x 10⁻²² g

Now, you can plug in the values:

n = (8.96 g/cm³)(9.30 cm³) / (1.055 x 10⁻²² g) = 7.86 x 10²³ electrons

Therefore, there are 7.86 x 10²³ electrons in a 30.0 cm length of 12-gauge copper wire with a diameter of 2.05 mm. This should be rounded to 2 significant figures, so the final answer is 7.9 x 10²³ electrons.

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A flat coil of wire consisting of 22 turns, each with an area of 50 cm2, is positioned perpendicularly to a uniform magnetic field that increases its magnitude at a constant rate from 2 T to 7 T in 2.0 s.
What is the magnitude of the emf (in Volts) induced in the coil?
Your answer should be a number with two decimal places, do not include the unit.

Answers

Given, Number of turns, n = 22Area of each turn, A = 50 cm²

Magnetic field, B = 2 T (initial)Magnetic field, B' = 7 T (final)Time, t = 2.0 s

We need to find the emf induced in the coil. Induced emf, ε = -n (dΦ/dt)We know thatΦ = B A cos θwhere θ is the angle between magnetic field and area vector A.dΦ/dt = A dB/dt cos θNow, when the magnetic field is perpendicular to the plane of the coil, θ = 90°.Hence, cos 90° = 0

Therefore, dΦ/dt = 0Now,[tex]ε = -n (dΦ/dt) = -n×0 =ε = -n (dΦ/dt) = -n×0 = [/tex]xHence, the induced emf in the coil is 0 V.

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How to find heat capacity of calorimeter with hot and cold water?

Answers

This can be done using the formula:

heat capacity = (mass of hot water x specific heat capacity of hot water) + (mass of cold water x specific heat capacity of cold water) – (mass of calorimeter x temperature change).

The heat capacity of a calorimeter can be found using a hot and cold water method. To begin, you will need a calorimeter (such as a coffee cup calorimeter), a hot water source, a cold water source, a thermometer, and a timer. Start by measuring the temperature of the hot water and the cold water, then fill the calorimeter half full with the hot water and half full with the cold water.

Place the thermometer in the calorimeter and wait for a few minutes to ensure that the temperature of the water in the calorimeter is stable. Once the temperature is stable, record the temperature and use it to calculate the heat capacity of the calorimeter.

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One end of a horizontal spring with force constant 76. 0 N/m is attached to a vertical post. A 5. 00-kg can of beans is attached to the other end. The spring is initially neither stretched nor compressed. A constant horizontal force of 51. 0 N is then applied to the can, in the direction away from the post.

What is the speed of the can when the spring is stretched 0. 400 m?

At the instant the spring is stretched 0. 400 m, what is the magnitude of the acceleration of the block?

Answers

The required speed of the the can when the spring is stretches is calculated to be 2.39 m/s.

The magnitude of acceleration of the block is calculated to be 4.12 m/s².

The force constant of the spring is given as k = 76 N/m.

Mass of the beans is given as 5 kg.

The constant horizontal force applied is given as 51 N.

The stretching in the spring is given as 0.4 m.

The expression to calculate speed of the block for the stretch in the spring is,

F x - 1/2 k x² = 1/2 m v²

v = √2 (F x - 1/2 k x²)/m

Putting all the values, we have,

v = √2 (51× 0.4 - 1/2× 76 × (0.4)²)/5 = √2 (20.4 - 6.08)/5 = 2.39 m/s.

Thus, the speed of the can for stretch in the spring is 2.39 m/s.

The relation to calculate the magnitude of acceleration of the block is,

a = (F - k x)/m = (51 - 76× 0.4)/5 = 4.12 m/s²

Thus, the magnitude of acceleration is calculated to be 4.12 m/s².

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Consider the wave equation on the finite domain [0, 1] with both ends fixed and a linear restoring force. utt = uxx − u, x ∈ (0, 1), t > 0, u(x, 0) = f(x), x ∈ [0, 1], ut(x, 0) = g(x), x ∈ [0, 1], u(0, t) = 0, t ≥ 0 u(1, t) = 0 t ≥ 0. Solve this PDE using Fourier series. (Hint: You may find it convenient to write the PDE as utt + u = uxx when plugging in the derivatives of X(x) and T(t).)

Answers

To solve, this PDE using the Fourier series we have to follow the below process

We know that u(x,t) can be represented in the Fourier series as:

u(x, t) = Σn=1∞ {An sin( nπx) + Bn cos( nπx)}[tex] \times \left ( Cn cos(n\pi t)+Dn sin(n\pi t)\right )[/tex]

Where An, Bn, Cn, and Dn are constants that depend on the given function f(x) and g(x).

Next, we differentiate u(x, t) twice with respect to t and once with respect to x, and then we plug it into the given wave equation to get:

∑n=1∞ (Cn sin(nπx) - Dn cos(nπx))[(nπ)^2 + 1]cos(nπt) = ∑n=1∞ An sin(nπx) (nπ)^2 [Cn cos(nπt) + Dn sin(nπt)]

To find An, we multiply both sides of the above equation by sin(nπx) and integrate it with respect to x.

[0,1] sin(nπx)[∑n=1∞ (Cn sin(nπx) - Dn cos(nπx))[(nπ)^2 + 1]cos(nπt) dx] = ∫[0,1] sin(nπx) [∑n=1∞ An sin(nπx) (nπ)^2 [Cn cos(nπt) + Dn sin(nπt)] dx]

Using the orthogonality property of sine and cosine,

we get An (nπ)^2 [Cn cos(nπt) + Dn sin(nπt)] = ∫[0,1] sin(nπx) [∑n=1∞ (Cn sin(nπx) - Dn cos(nπx))[(nπ)^2 + 1]cos(nπt) dx]

We can find the constants Cn and Dn by using the initial conditions:u(x, 0) = f(x), x ∈ [0, 1], and ut(x, 0) = g(x), x ∈ [0, 1].

Applying Fourier series to initial conditions:

u(x, 0) = f(x) = ∑n=1∞ An sin(nπx) Cn cos(nπt) + Dn sin(nπt)ut(x, 0) = g(x) = ∑n=1∞ An sin(nπx) nπ [Cn cos(nπt) + Dn sin(nπt)]

Therefore, we have to solve the four equations given by:

An (nπ)^2 [Cn cos(nπt) + Dn sin(nπt)] = ∫[0,1] sin(nπx) [∑n=1∞ (Cn sin(nπx) - Dn cos(nπx))[(nπ)^2 + 1]cos(nπt) dx]f(x)

= ∑n=1∞ An sin(nπx) Cn cos(nπt) + Dn sin(nπt)g(x) = ∑n=1∞ An sin(nπx) nπ [Cn cos(nπt) + Dn sin(nπt)]u(0, t) = 0u(1, t) = 0

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two in-phase loudspeakers, which emit sound in all directions, are sitting side by side. one of them is moved sideways by 6.0 m , then forward by 4.0 m . afterward, constructive interference is observed 14 , 12 , and 34 the distance between the speakers along the line that joins them, and at no other positions along this line.Part A What is the maximum possible wavelength of the sound waves ?

Answers

The maximum possible wavelength of the sound waves is 6 meters.

What are in-phase loudspeakers?

In-phаse loudspeаkers аre а type of speаker system thаt emit sound wаves in phаse. In-phаse meаns thаt the sound wаves аre coming from the speаkers аt the sаme time аnd in the sаme direction. When two in-phаse loudspeаkers аre put together, they cаn produce constructive interference. In this cаse, when one loudspeаker is moved, constructive interference occurs аt specific points аlong the line thаt joins them.

The mаximum possible wаvelength of the sound wаves cаn be cаlculаted using the formulа:

λmаx = 2d

Where:

λmаx = mаximum possible wаvelengthd = distаnce between the loudspeаkers

Аlong the line thаt joins them, constructive interference is observed аt three points: 14 m, 12 m, аnd 34 m. Therefore, the distаnce between the speаkers should be equаl to one of the wаvelengths. To find the mаximum possible wаvelength, we need to find the lаrgest distаnce between the speаkers.

In this cаse, the distаnce between the speаkers is 6 m (sidewаys movement) + 4 m (forwаrd movement) = 10 m. Therefore, the mаximum possible wаvelength of the sound wаves is 2 × 10 m = 6 m.

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what do you think might be causing the fluids in the lava lamp to move?

Answers

The fluid movement in a lava lamp is caused by the heat generated from the lamp's light bulb, which causes the wax or oil to rise and fall.

A lava lamp contains two fluids of different densities that do not mix. The fluids heat up as a result of the lamp's light bulb, causing them to expand and become less dense. The wax or oil floats up when it becomes less dense than the fluid that surrounds it, creating a globe at the top of the lamp.

The fluid is then cooled by the environment and becomes more dense, causing the wax to sink back to the bottom. This constant motion cycle creates the flowing effect seen in a lava lamp.

The heat from the light bulb causes the fluid to expand, and as it does, it becomes less dense than the surrounding fluid, causing it to float. When the fluid cools, it becomes denser and settles back down to the bottom. This cyclic motion creates the soothing flow of a lava lamp.

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Which term describes the energy an object has due to the motion of its
particles?
A. Magnetic energy
B. Chemical energy
C. Elastic energy
D. Thermal energy

Answers

Answer: The answer is D. Thermal Energy.

Explanation:

Thermal energy is a type of kinetic energy owing to the fact that it results from the movement of particles.

Calculate the current passing through the circuit when:
a)Switch K1 is closed
b)Switches K1 and K2 are both closed .
c)Switch K1 is open and K2 is closed.​

Answers

The current passing through the circuit when:

a) Switch K1 is closed is 0.25 A.

b) Switches K1 and K2 are both closed is  1.0667 A.

c)Switch K1 is open and K2 is closed is 0.4 A.

What is Kirchhoff's laws?

Kirchhoff's laws are two fundamental principles in electrical circuit analysis that describe the behavior of electric currents and voltages in a closed circuit. These laws are:

Kirchhoff's Current Law (KCL) states that the sum of currents that enter and leave any node in a circuit must equivalent the sum of currents leaving that node.

Kirchhoff's Current Law (KCL) provides that the total of currents entering and leaving any node in a circuit must equal the sum of currents leaving that node. Mathematically, this can be expressed as:

Σi_in = Σi_out

where Σi_in is the sum of the currents entering the node and Σi_out is the sum of the currents leaving the node.

Kirchhoff's Voltage Law (KVL): The sum of the voltages around any closed loop in a circuit must equal zero.

We can use Ohm's and Kirchhoff's laws to solve this problem.

When switch K1 is closed and switch K2 is open:

The total resistance of the circuit is 3 + 5 = 8 ohms. As an outcome, the current flowing through the circuit is:

I = V / R = 2 V / 8 ohms = 0.25 A

When switches K1 and K2 are both closed:

The total resistance of the circuit is now (3 x 5) / (3 + 5) = 15 / 8 ohms, which is equivalent to 1.875 ohms. As an outcome, the current flowing through the circuit is:

I = V / R = 2 V / 1.875 ohms = 1.0667 A

When switch K1 is open and switch K2 is closed:

In this case, the circuit consists only of the 5 ohm resistor, and the voltage across it is still 2 V. As an outcome, the current flowing through the circuit is:

I = V / R = 2 V / 5 ohms = 0.4 A

Note that the current passing through the circuit depends on the resistance of the circuit and the voltage of the battery. When switches are added or removed, the resistance and/or the voltage may change, which will affect the current passing through the circuit.

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A car comes to a bridge during a storm and finds the bridge washed out. The driver must get to the other side, so he decides to try leaping it with his car. The side the car is on is 19.5 m above the river, while the opposite side is a mere 1.6 m above the river. The river itself is a raging torrent 58.0 m wide.
1) How fast should the car be traveling just as it leaves the cliff in order to clear the river and land safely on the opposite side?
2) What is the speed of the car just before it lands safely on the other side?

Answers

1) The car must be traveling at a speed of 35.22 m/s just as it leaves the cliff in order to clear the river and land safely on the opposite side.

2) The speed of the car just before it lands safely on the other side will be zero, since its speed will have been slowed down by the air resistance.

How to calculate the speed?


To solve this problem, we will use the equation for horizontal distance:
d = v₀t

Where,
d is the horizontal distance (58m)
vo is the initial velocity (unknown)
t is the time taken (unknown)

We can use the equation for vertical displacement:
y = y₀ + v₀t - 1/2  gt²

Where,
y is the vertical displacement (18.9m)
yo is the initial vertical displacement (19.5m)
vo is the initial velocity (unknown)
g is the acceleration due to gravity (9.8m/s²)
t is the time taken (unknown)

We will also use the equation for final velocity:
vf = v₀ - gt

Where,
vf is the final velocity (0m/s)
v₀ is the initial velocity (unknown)
g is the acceleration due to gravity (9.8 m/s²)
t is the time taken (unknown)

We can now solve the equations simultaneously to find the initial velocity required (v₀):
d = v₀t
y = y₀ + v₀t - 1/2g t²
vf = v₀ - g t

Solving these equations, we find that the initial velocity (vo) required is 35.22 m/s.

Therefore, the car must be traveling at a speed of 35.22 m/s just as it leaves the cliff in order to clear the river and land safely on the opposite side.

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Measurements are described as
they are very similar to each other. What word
completes the sentence?

Answers

Answer:

Precise

Explanation:

Or Precise Measurements

Measurements are described as precise they are very similar to each other.

What is meant by measurement ?

Measurement is defined as the process of comparison of a physical quantity to a reference quantity.

Here,

We can determine a material's characteristic by measuring a physical quantity. We are able to measure weight, mass, and other physical attributes including velocity, momentum, energy, and other dimensions of space and time.

In order to compare a physical quantity to a unit, we need measurement.

A unit of measurement is a specific magnitude of a quantity that is established and used as a standard for measuring other quantities of the same kind. It is determined by convention or regulation. Any additional amount of that type can be stated as a multiple of the measurement.

Hence,

Measurements are described as precise they are very similar to each other.

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if a star has very weak hydrogen lines and is blue, what does that most likely mean?

Answers

Blue color and weak hydrogen lines indicate a hot and young star with low hydrogen content. It may have an outer layer rich in helium or heavier elements and has not fused enough hydrogen into helium.

When a star is blue and has extremely faint hydrogen lines, it is most likely a bright, young star with an outer layer rich in heavier elements such as helium rather than hydrogen. Given its blue hue, the star is hotter than most other stars, with a surface temperature of at least 10,000 Kelvin. Because the star hasn't been on the main sequence for very long, it may not have had enough time to fuse hydrogen into helium in its core, which is why the hydrogen content of the star is low, according to the weak hydrogen lines.

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A smooth circular hoop with a radius of 0.500 m is placed flat on the floor. A 0.400-kg particle slides around the inside edge of the hoop. The particle is given an initial speed of 8.00 m/s. After one revolution, its speed has dropped to 6.00 m/s because of friction with the floor. (a) Find the energy transformed from mechanical to internal in the particle–hoop–floor system as a result of friction in one revolution. (b) What is the total number of revolutions the particle makes before stopping? Assume the friction force remains constant during the entire motion.

Answers

(a) The energy transformed from mechanical to internal as a result of friction in one revolution is 5.60 J. (b) The total number of revolutions the particle makes before stopping is 10.

(a) To find the work done, the energy transformed from mechanical to internal in the particle–hoop–floor system as a result of friction in one revolution, the following formula is used:

W = ΔK + ΔU + ΔE

The initial kinetic energy of the particle is:

(1/2)mv² = (1/2)(0.400 kg)(8.00 m/s)² = 12.8 J

The final kinetic energy of the particle is:

(1/2)mv² = (1/2)(0.400 kg)(6.00 m/s)² = 7.20 J

Therefore, the change in kinetic energy:

ΔK = Kf – Ki = 7.20 J – 12.8 J = –5.60 J.

The work done by friction is the energy transformed from mechanical to internal. Therefore, the work done is:

–W = –ΔK = –(–5.60 J) = 5.60 J.

Hence, the energy transformed from mechanical to internal in the particle–hoop–floor system as a result of friction in one revolution is 5.60 J.

(b) The work done by friction in one revolution is equal to the change in kinetic energy. Therefore, the work done by friction in n revolutions is n times the work done in one revolution.

W = –ΔK = 5.60J*n

W = 5.60 J

The final kinetic energy of the particle is zero. Therefore, the change in kinetic energy is equal to the initial kinetic energy. Hence,

(1/2)mv² = 12.8 Jv = 8.00 m/s

The time taken for the particle to stop is given by:

v = u – at

0 = 8.00 m/s – a*t

Therefore, t = 8.00 m/s/a

The distance covered by the particle before stopping is equal to the circumference of the hoop. Therefore, the distance is

2πr = 2π(0.500 m) = 3.14 m.

From the equations of motion,

s = ut + (1/2)at²

Therefore,

3.14 m = 8.00 m/s * t + (1/2) a t²

t² = 0.25*(3.14 m - 8.00 m/s*t)

t² = 0.785 – 2*t

3*t = 0.785t = 0.26 s

The acceleration of the particle is given by:

a = –F/m = –μg = –(0.200)(9.80 m/s²) = –1.96 m/s²

t = 8.00 m/s/a = 8.00 m/s/1.96 m/s² = 4.08 s

The time taken for one revolution is equal to the distance divided by the speed, which is 3.14 m/8.00 m/s = 0.3925 s.

n = t/T

n = 4.08 s/0.3925 s = 10.4 ≈ 10.

Therefore, the total number of revolutions the particle makes before stopping is 10.

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a small 1.25 kg ball on the end of a light rod is rotated in a horizontal circle of radius 1.2 m. calculate: (a) the moment of inertia of the system baout the axis of rotation, and (b) the torque neededt ot keep the ball rotating at constant angular velocity if air resistance exerts a force of 0.02 n on the ball

Answers

The torque needed to keep the ball rotating at constant angular velocity if air resistance exerts a force of 0.02 N on the ball is 0.024 N.m.

A small 1.25 kg ball on the end of a light rod is rotated in a horizontal circle of radius 1.2 m.

The moment of inertia of the system about the axis of rotation and the torque needed to keep the ball rotating at constant angular velocity if air resistance exerts a force of 0.02 N on the ball can be calculated as follows:

Part (a)The moment of inertia, I of a solid ball is given by I = 2/5mr².

Here, m is the mass of the ball, and r is the radius of the ball.

We have to find the moment of inertia of the system about the axis of rotation.

Since the axis of rotation passes through the center of the ball, the moment of inertia of the ball is given by Iball = 2/5mr².

Thus, the moment of inertia of the system about the axis of rotation is given by I = Iball + mR²I = 2/5mr² + mR²I = m(2/5r² + R²)I = 1.25(2/5(0.06)² + (1.2)²)I = 0.026 kg.m²

Part (b)The torque required to keep the ball rotating at constant angular velocity can be calculated as follows:

τ = Iα

Here, τ is the torque,

I is the moment of inertia of the system, and

α is the angular acceleration.

At constant angular velocity, α = 0.

Since air resistance exerts a force of 0.02 N on the ball, the torque required to keep the ball rotating at constant angular velocity is

τ = Frτ = F × Rτ = 0.02 × 1.2τ = 0.024 N.m

Therefore, the torque needed to keep the ball rotating at constant angular velocity if air resistance exerts a force of 0.02 N on the ball is 0.024 N.m.

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A bowling ball with a mass of 8kg strikes a pin that is at rest and has a mass of 2. The pin flies forward with a velocity of 8m/s and the ball continues forward at 2 m/s. What was the original velocity of the ball?

Answers

The required original velocity of the bowling ball is calculated to be 6 m/s.

The total momentum prior to and following a collision are identical in a closed system.

From the principle of conservation of momentum,

M × U + m × u = M × V + m × v ----(1)

Where,

M = Mass of the bowling ball (M = 8 kg)

m = Mass of the pin (m = 2 kg)

U = Initially, the bowling ball's speed

u = Initial velocity of the pin (u = 0 m/s)

V = Final velocity of the bowling ball (V = 2 m/s)

v = Final velocity of the pin (v = 8 m/s)

Substitute these values in (1) and to solve U:

8(U)+2(0) = 8(4)+2(8)

8U = 32 + 16

8U = 48

U = 6 m/s

Thus, the initial velocity of the bowling ball is calculated to be 6 m/s.

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Using an energy-level diagram showing possible transitions, identify the two transitions that produce these photons and explain why others (say, from the n=7 to the n=1 level) are impossible.(b) Assume that, of the photons discussed in part (a), the ones with the longest wavelength have a wavelength of 600 nm (in the red-orange region of the spectrum). What is the wavelength of the original photons from the external source? Are the photons from the external source visible? CTENOPHORAKnow the apomorphies:"Comb jellies"apomorphies: complete gut (the gut has two opening, a mouth and anus), and determinate cleavage (the condition whereby if a cell is removed from the early four-celled stage and allowed to develop on its own, it will NOT be able to form a complete, viable embryo). What is Marburg virus disease (MVD) ? 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Call each Order object's Print().Ex: If the input is:5 bread 17 gyro 4 coconut 3 fennel 5 truffle 12then the output is:Order: bread, Quantity: 17 Order: gyro, Quantity: 4 Order: coconut, Quantity: 3 Order: fennel, Quantity: 5 Order: truffle, Quantity: 12Note: The vector has at least one element.code below:#include #include using namespace std;class Order {public:void SetFoodAndQuantity(string newFood, int newQuantity);void Print() const;private:string food;int quantity;};void Order::SetFoodAndQuantity(string newFood, int newQuantity) {food = newFood;quantity = newQuantity;}void Order::Print() const {cout > currQuantity;currOrder.SetFoodAndQuantity(currFood, currQuantity);orderList.push_back(currOrder);}/* Your code goes here */return 0;} In addition to the rending of the altar, another clear sign from the Lord to ___ was the withering of his ___.