Why is kinetic energy called the energy of motion?

Answers

Answer 1

Kinetic energy refers to a part of internal energy where immobility refers to potential and movement occurs with velocity as KE=mv²/2.

Kinetic energy depends on the velocity of an object and is the ability of a moving object to act on other objects when colliding with them. On the other hand, the kinetic energy of an object represents the amount of energy required to increase the velocity of the object from rest (v = 0) to its terminal velocity. Kinetic energy is a numerical measure of the inertia of an object and is also linearly related to mass, a measure of the object's resistance to acceleration when a force is applied.For a body of revolution, the moment of inertia I corresponds to mass and the angular velocity (ω) corresponds to linear or translational velocity. Therefore, the kinetic energy of rotation is equal to half the product of the moment of inertia and the square of the angular velocity.The total kinetic energy of an object or system equals the sum of the kinetic energies resulting from all kinds of motion.

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Related Questions

What is the velocity of the cart at the bottom of the track just before it hits the stop, if the mass of the cart is 0.250 kg and the work done is 5.00 joules?

Answers

The velocity of the cart at the bottom of the track is equal to 6.32 m/s.

What is kinetic energy?

Kinetic energy can be described as the energy exhibited by a moving body due to its motion. Work will be done by an object in order to change its kinetic energy.

The kinetic energy of a moving body can be determined from the mathematical formula mentioned below:

K.E. = ½mv²     where  ‘v’ and 'm' are the velocity and mass of the object.

Potential Energy can be defined as the stored energy due to its position and is given by P.E = m×g×h where g, m, and h are the gravitational acceleration, mass, and height.

Given, the mass of the cart =, m= 0.250 Kg

The final velocity of the cart, v = 0

The work done = Change in KE =  5.00 J

½mv² -  ½mu² = 5.00

½mu² = 5

(1/2)× 0.25 ×(u)² = 5

u² = 40

u = 6.32 m/s

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If the polar ice caps melt due to global warming, water now locked up near the earth’s rotation axis will spread out around the surface of the globe. Why? Will the length of the day increase or decrease?

Answers

With polar ice caps melting due to global warming, there will be enhancement of earth's rotation rate, thus resulting in decrease in the lengths of the day.

This fact is known to us that -

The polar ice caps will melt due to global warming

Water now locked up near the earth’s rotation axis will spread out around the surface of the globe

We have to determine why this will happen and if the length of the day will increase or decrease.

Firstly, let us understand what does rotation mean. Rotation of earth can be described as a phenomenon through which earth can keep on turning on its axis.

Due to global warming, snow glaciers will start melting, especially those present in the earth's rotation axis.

This, in turn, will lead the melted water into different surfaces around the globe.

As a result of global warming followed by increasing temperature and melting of water, the rotation of earth will be more than the current rate of rotation of the earth.

This implies that with increase in rotation of earth, there will be decrease in the length of the day. This is because the days will pass by soon with increased rate of rotation of earth.

Therefore, with polar ice caps melting due to global warming, there will be enhancement of earth's rotation rate, thus resulting in decrease in the lengths of the day.

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A reaction has a rate constant of 0. 33/min. How many minutes will it take for the reactant concentration to decrease from 0. 13 m to 0. 088 m?.

Answers

It will take 1.1824 min for the reactant concentration to decrease from 0. 13 m to 0. 088 m.

K = 0.33/min

for first-order reaction

K×t = ln([A0]/[A])

[A0] = 0.13 M

[A] = 0.088 M

t = ln (0.13/0.088)/0.33 = 1.1824 min

A first-order reaction depends on the awareness of the most effective reactant (a unimolecular response). other reactants may be present, however, their attention has no impact on the fee. The fee regulation for a primary order response is --d[A]/dt = okay[A],

Although not affecting the above math, the general public of first-order reactions continues through intermolecular collisions. Such collisions, which contribute the electricity to the reactant, are always 2nd order. The fee of those collisions is, but, masked via the reality that the price determining step stays the unimolecular breakdown of the energized reactant. The half of-existence is impartial of the beginning awareness and is given with the aid of t1/2 = In(2)/k

In organic chemistry, the class of SN1 (nucleophilic substitution unimolecular) reactions includes first-order reactions. for instance, in the reaction of aryldiazonium ions with nucleophiles in an aqueous solution, [ArN2+] + X− → ArX + N2, the fee equation is v0 = ok[ArN2+], wherein Ar shows an aryl group.

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How does lack of sleep affect risk of injury it interferes with motor responses?

Answers

Sleep is very important in saving the person from injuries. Proper sleep helps person to perform well during the chaos work like riding a motor, crossing the road etc.

Sleep has been found to affect sports execution and generally prosperity. Late exploration has found proof relating persistent sub-par lay down with the gamble of outer muscle torment and sports injury. How much sleep that reliably has been viewed as related with expanded chance of injury is ≤7 h of sleep, which when supported for times of something like 14 d has been related with 1.7 times more serious gamble of outer muscle injury.

Be that as it may, it is obscure assuming that sleep misfortune inclines the competitor toward explicit kinds of outer muscle wounds. The job of sleep on outer muscle torment is essential to comprehend as concentrates in the two kids and grown-ups have found that sub-par rest all the more reliably predicts following day torment as contrasted and torment foreseeing ensuing rest misfortune.

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What is an example of motion energy?

Answers

Examples of motion energy are moving car, wind energy , planetary motion , free falling object, fan shaft moving, etc.

Kinetic energy can be defined as the energy that is present in any moving object. We can simply say that kinetic energy is the energy caused by motion. Kinetic energy can be further classified into different types based on the type of motion of the objects. For example, rotational kinetic energy is the energy possessed by a body that moves in circles, eg planets orbiting the sun have rotational kinetic energy; vibrational kinetic energy is the energy an object has as a result of vibration, Energy is the amount of work a physical system can perform, so energy can be defined as anything that changes the position, physical composition, or temperature of an object. There are two categories of energy: kinetic energy and potential energy. The difference is whether energy is transferred (motion) or stored (potential). they are interchangeable.

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Two in-phase speakers 2.0 m apart in a plane are emitting 1800 Hz sound waves into a room where the speed of sound is 340m/s . Is the point 4.0m in front of one of the speakers, perpendicular to the plane of the speakers, a point of maximum constructive interference, perfect destructive interference, or something in between? pick one of those 3 and say why: 1) This is the point of maximum constructive interference. 2) This is the point of perfect destructive interference.3) This point is something between maximum constructive interference and perfect destructive interference.

Answers

The point of destructive interference occurs when the result is within an integer value of +0.5.

The resultant distance between the speakers is determined by the preceding parameters:

distance between the speakers, d = 2.0 m,

frequency, f = 1800 Hz,

speed of the sound, v = 340 m/s,

and distance below the speakers, c = 4 m.

L= [tex]\sqrt{4 + 16}[/tex]

L= 4.47 m.

The wavelength of the sound wave is by:

Wavelength (λ)= V /F.

λ=340/1800

λ= .188 m

constructive interference, perfect destructive interference are

x= (4.7-4)/.188

x= 2.5

In what way does wavelength relate to sound?

The higher frequency and the higher pitch are produced by sounds with shorter the wavelengths. So, long waves the sound are low and short waves sound is high.

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find the ratio of the electrostatic to gravitational force between two electrons. (b) what is this ratio for two protons? (c) why is the ratio different for electrons and protons?

Answers

The ratio of the electrostatic to gravitational force between two electrons 4.17×10 42

What is gravitational force?The force of attraction between any two objects in the universe is known as gravitational force. Universal gravitational forces exist. The gravitational force is calculated as the product of the masses of the two objects divided by the square of their distance from each other. Our environment is surrounded by gravity. It determines how much we weigh and how far a basketball will fly before hitting the ground when it is launched. The force the Earth applies to you is equal to the gravitational force on Earth. In everyday life, the gravitational pull of the Earth causes an object tossed into the air to return to the surface as an illustration of the force of gravity.

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Astrology, that unlikely and vague pseudoscience, makes much of the position of the planets at the moment of one’s birth. The only known force that a planet could exerts on us is gravitational, so if there is anything to astrology we should expect this force to be significant.
Calculate the gravitational force, in newtons, exerted on a 4.1 kg baby by a 75 kg father who is a distance of 0.16 m away at the time of its birth.
Calculate the force on the baby, in newtons, due to Jupiter (the largest planet, which has a mass of 1.90 × 1027 kg) if it is at its closest distance to Earth, 6.29 × 1011 m away.
What is the ratio of the force of the father on the baby to the force of Jupiter on the baby?

Answers

The magnitude of the gravitational force is 7×10⁻⁷ N and the magnitude of the gravitational force due to Jupiter is 1.35×10⁻6 N.

Gravitational potential energy is the energy which a body posses because of its position.

The gravitational potential energy of a body is given as,

= G = Fr²/Mm

Here, (m) is the mass of the body, (F) is the gravitational force and (r) is the height of the body.

The mass of baby is 4.20 kg and mass of father is 100 kg. The distance between them is 0.200 m. Put the values in the above formula as:

= 6.67 X 10⁻¹¹ =  F (0.200)² / 100 X 4.20

= F = 7 X 10⁻⁷ N

The magnitude of the force on the baby due to Jupiter if it is at its closest distance to Earth, some 6.29×1011 m.

Put the values in the above formula again as:

= 6.67 X 10⁻¹¹ =  F (6.29 X 10¹¹)² / 1.9 X 10²⁷ X 4.20

= F = 1.35 X 10⁻⁶ N

Thus, the magnitude of the gravitational force is 7×10⁻⁷ N and the magnitude of the gravitational force due to Jupiter is 1.35×10⁻6 N.

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500 j of work are done on a system in a process that decreases the system's thermal energy by 200 j . part a how much heat energy is transferred?

Answers

A total of -700 J worth of heat energy is transferred from the system.

Data provided

W = - 500 J is the amount of work the system has done. (A bad indication that the system needs work)

U = -100 J represents the reduction in thermal energy (internal energy). (A negative sign indicates a decrease)

Use the first law of thermodynamics, which states that the sum of the work done and the thermal energy is equal to the overall heat given to the system. Therefore,

Q = W + U

Q = - 500 + (-200)

Q = - 700 J.

A negative indication indicates that the system is losing heat energy.

As a result, -700 J of heat energy is transferred from the system.

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In LASIK surgery, a laser is used to reshape the cornea of the eye to improve vision. The laser produces extremely short pulses of light, each containing 1.0 mJ of energy.A) In each pulse there are 9.7?1014 photons. What is the wavelength of the laser?B) Each pulse lasts only 20 ns. What is the average power delivered to the eye during a pulse?

Answers

The wavelength of the laser (λ) = 192.4 nm

The energy of a laser pulse in terms of number of photons is

E = N*hc/λ

where,

λ = wavelength

N = Number of photons in each laser pulse

h = Planck constant

c = Speed of light

λ = n*hc/E

= (9.7*10^14 )(4.136*10^(-15) )(3*10^8 )/6.25*10^16

= 192.4 nm

The wavelength of the laser (λ) = 192.4 nm

Wavelength :

Wavelength is the distance between identical points (adjacent crests) in successive cycles of a waveform signal traveling through space or over a wire. In wireless systems, this length is typically expressed in meters (m), centimeters (cm), or millimeters (mm).

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(A) The wavelength of the laser is λ = 19.4 nm

(B) Average power delivered is 50000 W

A

Given,

Energy by laser pulse = 1 mJ

Time each pulse lasts = 20 ns

Photons in each pulse = 9.7*10¹⁴

Converting the unit the energy from J to eV, we have,

= E = 1 X 10⁻³ [ 1 eV / 1.6 X 10⁻¹⁹ ]

= E = 6.25 X 10¹⁵ eV

The energy of a laser pulse in terms of number of photons is

E = N*hc/λ

where,

λ = wavelength

N = Number of photons in each laser pulse

h = Planck constant

c = Speed of light

Now substituting the values in the formula, we get

wavelength = n*hc/E

λ = [ ( 9.7 X 10¹⁴ X 4.136 X 10⁻¹⁵ X 3 X 10⁸ ) /  6.25 X 10¹⁵ ]

λ = 19.4 nm

The wavelength of the laser (λ) comes out to be 192.4 nm.

B

To find average power we will use the formula:

average power = p = E/t

p = 1 X 10⁻³ / 20 X 10⁻⁹

p = 0.05 X 10⁶

p = 50000 W

The average power delivered to the eye is 50000 W.

Therefore, the wavelength of the laser is 19.4 nm and the average power of the laser is 50000 W.

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Consider an ideal gas at 27.0 degrees Celsius and 1.00atmosphere pressure. Imagine the molecules to be uniformly spaced,with each molecule at the center of a small cube. What is thelength Lof an edge of each small cube if adjacent cubes touch but don'toverlap?

Answers

The length of an edge of each small cube is [tex]3.445 * 10^{-9} m[/tex].

It is given to us that -

Temperature of the ideal gas = 27.0 degree Celsius

Atmospheric pressure on the gas = 1.00 atmosphere pressure

Molecules of the gas are uniformly spread

Each molecule at the center of a small cube

We have to find out the length L of an edge of each small cube if adjacent cubes touch but don't overlap.

For solving this problem, we have to make use of the formula of Boltzmann equation for ideal gas, which can be represented as -

[tex]PV = NkT[/tex] ---- (1)

where,

P = Pressure on the gas

V = Volume of the gas

N = Number of molecules of the gas

k = Boltzmann constant

T = Temperature of the gas

According to the given information, we have -

P = 1 atm = 101325 Pa

N = 1

k = [tex]1.38 *10^{-23} J/K[/tex]

T = 27°C = 27°C + 273 = 300K

Now, substituting these values in equation (1), we have

[tex]PV = NkT\\= > 101325 * V = 1 * 1.38 *10^{-23} * 300\\= > V = \frac{414 * 10^{-23}}{101325} \\= > V = 4.0858 * 10^{-26} m^{3}[/tex]------- (2)

We know that the volume of a cube in terms of its length is given as -

[tex]V = L^{3}\\ = > L = V^{1/3}[/tex] ----- (3)

Substituting the value of V from equation (2) in equation (1), we have -

[tex]L = V^{1/3}\\= > L = (4.0858*10^{-26} )^{1/3}\\= > L = 3.445 * 10^{-9} m[/tex]

Therefore, the length of an edge of each small cube is [tex]3.445 * 10^{-9} m[/tex].

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a nuclear power plant on the moon. the ambient temperature on the moon is 15 k. heat input from radioactive decay heats the working steam to a temperature of 975 k. what is the ideal efficiency of the engine?

Answers

The ideal efficiency of the engine 12%

Efficiency  (n)     =     1   -   (Tc / Th)

   n =  1 - (15 / 975)    =    0.985

   n =  1 -  (4 / 13)  =  0.692

   n =  1 - ( 282 / 320)   =   0.12

Even the most efficient heat engines have poor ideal efficiency, typically, it is much below 50%. Consequently, a significant amount of energy is wasted when it is lost to the environment by heat engines. Even though modern cogeneration, combined cycle, and energy recycling schemes are starting to harness this heat for other uses, a significant portion of the fuels produced worldwide are used to power heat engines, wasting up to half of the useable energy produced worldwide. There are three reasons for this inefficiency. The Carnot efficiency is a general term used to describe the temperature-related upper limit on any heat engine's efficiency. Second, due to the inherent irreversibility, some engine types are limited in terms of efficiency.

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What does it mean when a dilation is centered?

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Dilation is centered a point is chosen in the given figure to draw a new figure of a given scale factor.

Dilation means drawing a geometrical figure like a triangle greater or smaller in size than the given figure. Two things are required to do dilation.

1) Scale factor of dilation, if the scale factor is more than 1, it is enlargement, and we get a figure greater in size than the given figure. If the scale factor is given less than 1, it is the reduction, and we get a figure smaller in size than the given figure.

2) Center of dilation, this is the point in the given figure which is chosen to draw a new figure greater or smaller in size.

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a supernova explosion of a 2 x 1031 kg star produces 1.00 x 1044 joules of energy. (a) how many kilograms of mass are converted to energy in the explosion? (b) what is the ratio of mass destroyed to the original mass of the star?

Answers

a. The kilograms of mass that are converted to energy in the explosion is 1.1 × 10^27kg.

b. The ratio of mass destroyed to the original mass of the star is 5.55 × 10^-5.

How many kilograms of mass are converted to energy in the explosion?

It should be noted that the total energy is calculated as:

E = Ymc²

where m = mass

c = speed

y = relativistic factor

This will be illustrated as:

1 × 10^44J = 1 × 3.00 × 10^8 m/s

m = 1.11 × 20^27 kg

The mass is 1.1 × 10^27kg.

The ratio of mass destroyed to the original mass of the star will be:

= mass destroyed / original mass

= (1.1 × 10^27) / (2.0 × 10^31)

= 5.55 × 10^-5

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You have an initial velocity of 5.0 m/s. You then experience an acceleration * 1 point
of 1.5 m/s^2 for 4.0 s; what is your final velocity?
Make sure to include your units.
Your answer

Answers

Answer:

11.0 m/s

Explanation:

a = (Vf - Vi) / t

Vf = at + Vi = (1.5 m/s²)(4.0 s) + 5.0 m/s = 11.0 m/s

A 710 kg car drives at a constant speed of 23 m/s. It is subject to a drag force of 500 n.

Answers

a) The car's engine needs 11500 W of power to move the vehicle on level terrain.

b) A car's engine needs 17,084 W of power to move the vehicle up a hill with a 2.0° grade.

a) The energy needed to run the car's engine is provided by

P = Fv

where

The force which the engine needs to exert is F.

The car's velocity is v = 23 m/s.

Since the automobile is driving at a constant speed and hence experiencing no acceleration, the net force acting on it must also be zero. Since there is a 500 N drag force against the car's velocity, this implies that the engine's force applied forward must likewise be 500 N:

F = 500 N

Consequently, the power lost by the engine is

P = (500 N)(23 m/s)= 11500 W.

b) Both the drag force and the weight component that is parallel to the gradient are working against the motion of the automobile in this scenario.

This element is provided by

[tex]W_p[/tex] = mgsin∅

where

m = 710 kg, g = 9.8 m/s2, and ∅ = 2°, respectively, are the mass, acceleration of gravity, and slope of the hill, respectively.

[tex]W_p[/tex] = 710 × 9.8 m/s² × sin2° = 242.8 N

The drag force (500 N) and so this force is now added to determine the total rearward force acting against the velocity of the car:

F = 500 N + 242.8 N = 742.8 N

Because the force the engine applies must be equal, the power that is revoked will also be equal.

P = (742.8 N)(23 m/s) = 17,084 W

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The question is -

A 710kg car drives at a constant speed of 23m/s. It is subject to a drag force of 500 N. What power is required from the car's engine to drive the car (a) on level ground? (b) up a hill with a slope of 2.0∘ ?

how do p waves and s waves from an earthquake reach new, distant locations around earths surface

Answers

Every earthquake creates P waves and S waves. P waves travel away from the focus of an earthquake where the rocks first fractured by compressing and expanding the rocks as they travel through solids, liquids and gases. P waves travel through all parts of the Earth.

Answer:

Explanation:

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3.what angle (between the magnetic field and the area vector) will maximize the induced emf (voltage) for a rotating loop?

Answers

The angle (between the magnetic field and the area vector) will maximize the induced emf (voltage) for a rotating loop at 90 degree.

Consider a coil with N turns rotating with constant angular velocity θ in a magnetic field of flux density B, with its axis perpendicular to the magnetic field. If the coil normal is at an angle θ to the magnetic field, then θ = ωt, so the flux through the coil is BAN cosθ = BAN cos(ω)t.

Therefore, the electromotive force E generated across the coil is

The maximum value of the electromotive force (Eo) is for θ (= ωt) = 90o

maximum electromotive force (Eo) = BANω

Electromotive Force:

In electromagnetism and electronics, electromotive force is the transfer of energy through a circuit per unit charge, measured in volts. Devices called electrical converters provide EMF by converting other forms of energy into electrical energy.

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Do sedimentary rocks form from heat and pressure at depths?

Answers

The answer is "No", sedimentary rocks do not form from heat and pressure at depths. They are formed by compression of ocean sediments.

What are Sedimentary rocks?

Detritus rock is a type of sedimentary rock that forms at or near the Earth's surface as a result of the buildup and lithification of sand or as a result of rainfall to form solution at typical surface temps (chemical rock). The majority of rocks exposed on the surface of the Earth are sediment in nature, yet these rocks make up a very small portion of the crust overall, which is primarily composed of metamorphic and igneous rocks.

The weathering of previous rocks, followed by the transit and deposit of the weathered byproducts, produces sedimentary rocks.

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Radio waves travel at a speed of 1.7 times 10^8 m/s through ice. A radio wave pulse sent into the Antarctic ice reflects off the rock at the bottom and returns to the surface in 32.9 times 10^-6 s. Part A How deep is the ice? Express your answer to two significant figures and include the appropriate units.

Answers

The values with (1/2)(9.8 m/s2) (4 - X)^2 = (1.7 × 10^8 m/s) (X) —> We discover with the calculator X = 4.40 × 10^-7. The depth of the ice is then calculated by multiplying by the speed 74.8 m. Through ice, radio waves move at a speed of 1.7 x 108 m/s.

What is radio waves?

A radio wave pulse that is delivered into the Antarctic ice returns after reflecting off the bottom rock. A radio wave pulse that is transmitted into the Antarctic ice bounces off the subsurface rock and resurfaces. ice in Antarctica Through ice, radio waves move at a speed of 1.7 108 m/s. The rock reflects the radio wave pulse that was transmitted into the Antarctic ice. The amount of time that passed between the signal being sent and being received by the earth station.

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true or false all the frequencies that form standing waves on a string are counting number multiples of the frequency of the largest standing wave that can form on that string.

Answers

All the frequencies that form standing waves on a string are counting number multiples of the frequency of the largest standing wave that can form on that string . This statement is true

What is meant by standing wave ?

Standing waves, also known as stationary waves, are combinations of two waves with the same amplitude and frequency that are travelling in opposite directions. Interference is what causes the phenomena, which means that when waves are superimposed, their energy either add up or cancel one other out.

Two waves with the same frequency and amplitude that are travelling in opposing directions and interfere with one another create a standing wave. It has some places (referred to as nodes) where the amplitude is consistently zero and other spots (referred to as antinodes) where the amplitude fluctuates most intensely.

The pattern is frequently referred to as a standing wave pattern because the observed wave pattern is marked by points that appear to be standing still. Only certain frequencies within the medium produce such patterns.

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what is the x position of the center of mass for the bowman arrow system at the time when the arrow strikes the ground? set the positive direction to be the direction the arrow flies in.

Answers

The arrow is propelled forward by muscular force. The arrow ultimately hits the ground due to the weight of gravity and air resistance.

This explains the reason the arrow was shot: Gravity's downward pull and air resistance have an effect on the arrow, causing it to eventually sink to the ground.

The arrow first moves forward in a straight line, but as gravity pulls it downward, it eventually collapses and comes to rest.

The constant force of attraction that holds everything in mechanics together is gravity, often known as gravitation. It has little impact on defining the intrinsic qualities of everyday items because it is the weakest known force in nature.

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How much work must be done to stop a car with a mass of 1500kg moving at 12m s?

Answers

The amount of work done in stopping a car with a mass of 1500 kg moving at 12m/s is 108000 j.

Work done is same as the change in kinetic energy of the moving car.

We will first calculate the initial kinetic energy of the car

Kinetic energy is due to motion and is equal to half the product of mass and square of velocity.

K.E. = 1/2× mass× [tex](velocity)^{2}[/tex]

Initial K.E. = 1/2 × 1500× 12×12

               = 108000 j

As the car finally stops, the final kinetic energy is zero.

Final K.E. = 0

So, work done = change in K.E. = 108000-0 j

= 108000j

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the density of aluminum is 2700 kg/m3. if transverse waves travel at in an aluminum wire of diameter what is the tension on the wire?

Answers

If transverse waves travel at  38 m/s in an aluminum wire of 4.6 mm diameter, the tension on the wire is 64.72 N

The speed or the velocity of a transverse waves in a wire id given by:

v = sqrt ( T / μ)

Where:

T = Tension on the wire

μ = mass per unit length

In the given problem:

v = 38 m/s

d = diameter of the wire = 4.6 mm

Area of wire's cross section:

A = π x (2.3)²

   = 16.6 mm² = 16.6 x 10⁻⁶ m

μ = density x A

  = 2700 x 16.6 x 10⁻⁶  = 0.045 kg/m

Take the square of the equation:

v² = T / μ

T = μ x v² = 0.045 x 38² = 64.72 N

Your question is incomplete, but most probably your question was:

The density of aluminum is 2700 kg/m3. If transverse waves travel at  38 m/s in an aluminum wire of 4.6 mm diameter. What is the tension on the wire?

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The density of aluminum is 2700 kg/m3.
if transverse waves travel at in an aluminum wire of diameter what is the tension on the wire?
a) 65 N
b) 39 N
c) 52 N
d) 78 N

Answers

The tension on the aluminum wire is  52.02 N.

The speed of a wave on a string is equal to the square root of the tension divided by the mass per length. The formula used to calculate this speed of a pulse on the rope (the speed of a wave on a string under tension) is given by |v| = √(T/μ) where v is the speed of a wave, T is the tension on the wire, and μ is linear density (μ=m(mass)/L(length)).

Given the density of aluminum (ρ) is  2700 kg/m³, the diameter of the wire is 4.6-mm or 4.6 x 10⁻³ m, and the speed of the wave is 38 m/s.

First, find the area of the aluminum wire,

[tex]A = \frac{\pi d^2}{4}\\A =\frac{ \pi\times (4.6 \times 10^{-3})^2}{4}\\A = \mathrm{1.66 \times 10^{-5}\;m^2}[/tex]

Now, find the linear density of the wire,

[tex]\mu = \rho A\\\mu = \mathrm{2700\;kg/m^3 \times 1.66 \times 10^{-5} m^2}\\\mu = \mathrm{0.045\;kg/m}[/tex]

Substitute the value of linear density in the speed of wave formula to get tension.

[tex]\begin{aligned}34&=\sqrt{\frac{T}{0.045}}\\34^2&=\frac{T}{0.045}\\T&=1,156\times0.045\\&=\mathrm{52.02\;N}\end{aligned}[/tex]

The answer is 52.02 N and option c is correct.

The complete question is -

The density of aluminum is 2,700 kg/m3. If transverse waves propagate at 38 m/s in a 4.6 mm diameter aluminum wire, what is the tension on the wire?

a) 65 N

b) 39 N

c) 52 N

d) 78 N

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The cosmic microwave background is almost perfectly uniform in all directions, except for very small deviations in its temperature. what do scientists think these small deviations represent?

Answers

The small deviation of cosmic microwave represent the temperature was uniform with very little fluctuations.

These small deviations represent regions of slightly higher density that made it possible for galaxies to form.

In Big Bang cosmology, the cosmic microwave background (CMB, CMBR) is electromagnetic radiation that could be a remnant from an early stage of the universe, also called "relic radiation".

The cosmic microwave is faint cosmic heritage radiation filling all areas. it's far a vital source of records of the early universe because it's by far the oldest electromagnetic radiation within the universe, dating to the epoch of recombination when the primary atoms were fashioned.

With a conventional optical telescope, the distance between stars and galaxies (the heritage) is absolutely dark (see: Olbers' paradox). but, a sufficiently sensitive radio telescope indicates a faint heritage brightness, or glow, nearly uniform, that is not associated with any megastar, galaxy, or different item. This glow is most powerful in the microwave region of the radio spectrum.

Cosmic microwave is landmark proof of the large Bang origin of the universe. When the universe become younger, before the formation of stars and planets, it turned denser, lots warmer, and full of an opaque fog of hydrogen plasma. because the universe elevated the plasma grew cooler and the radiation filling it extended to longer wavelengths.

Whilst the temperature had dropped enough, protons and electrons blended to shape impartial hydrogen atoms. not like the plasma, those newly conceived atoms couldn't scatter the thermal radiation with the aid of Thomson scattering, and so the universe has become obvious.

Therefore, the small deviation of cosmic microwave represent the temperature was uniform with very little fluctuations.

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a steady current i flows down a long cylindrical wire of radius a. (a) find the magnetic field, both inside and outside the wire, if all the current is uniformly distributed over the outside surface of the wire only. (b) find the magnetic field, both inside and outside the wire, if the current is distributed in such a way that the current density j is proportional to

Answers

A magnetic field is a vector subject that describes the magnetic influence on shifting electric-powered costs, electric currents, and magnetic substances. A transferring charge in a magnetic subject studies a pressure perpendicular to its own speed and to the magnetic subject. A permanent magnet's magnetic subject pulls on ferromagnetic materials along with iron and draws or repels other magnets. in addition, a nonuniform magnetic field exerts minuscule forces on "nonmagnetic" substances with the aid of three other magnetic consequences: Para magnetism, diamagnetism, and antiferromagnetic, despite the fact that those forces are usually so small they can most effective be detected with the aid of laboratory system.

Magnetic fields surround magnetized materials and are created by using electric-powered currents inclusive of those used in electromagnets, and through electric fields varying in time. seeing that both energy and course of a magnetic discipline may also vary with region, its miles are described mathematically by a function assigning a vector to every factor of area, known as a vector subject.

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From what height should the car be dropped to have this same amount of kinetic energy just before impact?.

Answers

a) The kinetic energy of the car will be = 675000 J

b) The car should be dropped from a height of = 45 m, to have the same amount of kinetic energy just before impact.

c) No, the answer to part b does not depend on the car's mass.

a) To calculate the kinetic energy of the car,

Given, the mass of the car = 1500 kg

The velocity of the car = 30 m/s

The Kinetic energy is represented by - [tex]E_{k}[/tex] ,

[tex]E_{k}[/tex] = [tex]\frac{mv^{2} }{2}[/tex]

= [tex]\frac{1500 * 30^{2} }{2}[/tex]

= 675000 J

b) To have the same kinetic energy just before impact, the potential energy must be equal to the kinetic energy,

[tex]E_{p} = E_{k}[/tex] = 675000 J

mgh = 675000

1500 x 10 x h = 675000

h = 675000 / 15000

h = 45 m

c) Conservation of energy says that,

[tex]E_{p} = E_{k}[/tex]

mgh = [tex]\frac{mv^{2} }{2}[/tex]

h = [tex]\frac{v^{2} }{2g}[/tex]

Because of the cancellation of masses, the height is independent of mass.

Therefore, the height does not depend on the car's mass.

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a) What is the kinetic energy of a 1500 kg car traveling at a speed of 30 m/s (65mph)? b) From what height should the car be dropped to have this same amount of kinetic energy just before impact? c) Does your answer to part b depend on the car's mass?

True/False A guitar string is fixed at both ends. If you tighten it to increase its tension, the frequencies of its normal modes will increase but its wavelengths will not be affected

Answers

A guitar string does indeed have permanent ends. Its usual modes' frequencies will rise if you tighten it up to make it more tensional, but its wavelengths won't be impacted.

The statement is true

what is The meaning of wavelength?

A wave's wavelength gives information about its length. The wavelength is the distance between the "crest" (top) with one wave and the crest of the following wave. The wavelength can also be determined by measuring from one wave's "trough" (bottom) to the following wave's "trough," with the same results.

A wavelength's frequency is what?

The wavelength is the distance that separates two wave crests, while troughs have the same wavelength. The number of waves that pass over a specific place in a second is known as the frequency and is expressed in cycles per second.

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Need help! Thanks lots!

Answers

Just to be sure you understand how to use and interpret the interactive figure, start with the time slider set to zero.

What Newton's second law states?

Newton's second law states that force is proportional to mass and acceleration.

F = m a

The applied force creates an acceleration in the elephant a = F / m. If the mass of the elephant increases m2> m, the expression takes the form a = F / m2. With the denominator is greater the acceleration should decrease by the same factor that increases the mass.

The frequency of a wave depends on the properties of medium density and the elasticity properties change the amplitude depends on the energy carried by the wave, that is, the amplitude is proportional to the height of the wave (oscillation).

Therefore, Just to be sure you understand how to use and interpret the interactive figure, start with the time slider set to zero.

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