What is a type of kinetic energy?

Answers

Answer 1

Kinetic energy is a type of mechanical energy.

Kinetic energy is defined as the energy produced by a body in motion. When an object is accelerated it is imperative that a certain force is applied. Applying a force requires work, and after the work is done, the energy is transferred to the object, causing it to move at a constant speed.

The energy transferred is called kinetic energy and depends on the velocity and mass of the body in motion.

Considering the kinetic energy equation above, let us consider some practical examples.

Airplanes have a lot of kinetic energy in flight because of their high speed and mass.Despite its small size and mass, a baseball has a large amount of kinetic energy after being thrown at high speed.Skiers coming down from above exhibit enormous kinetic energy due to their high speed and mass.Before hitting a golf ball, it has zero velocity and therefore no kinetic energy.When an asteroid falls at incredible speed, it has a huge amount of kinetic energy.Cars have less mass than trucks, so they have less kinetic energy on the road than trailer trucks.

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Related Questions

A mass is connected to a spring and is allowed to move horizontally. The mass is at a position L when the spring is unstretched. The mass is then moved, stretching the spring, and released from rest. It then moves with simple harmonic motion. At the instant that the mass passes through the position where the spring is unstretched, what can be said about its instantaneous acceleration?

Answers

A mass is connected to a spring and is allowed to move horizontally. The mass is at a position L when the spring is unstretched. The mass is then moved, stretching the spring, and released from rest. It then moves with simple harmonic motion.

At that instant instantaneous acceleration is 0.

If an object's velocity changes, it is said to have been accelerated. An object's velocity can alter depending on whether it moves faster or slower or in a different direction. A falling apple, the moon orbiting the earth, and a car stopped at a stop sign are a few instances of acceleration. Through these illustrations, we can see that acceleration happens whenever a moving object changes its direction or speed, or both.

Since acceleration has both a magnitude and a direction, it is a vector quantity. It is also the first derivative of position with respect to time or the second derivative of position with respect to time.

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an object of mass m is launched at an angle above the horizontal at speed v. find the maximum height g

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 The maximum height the object reaches is [tex]\frac{v^{2} sin^{2}x}{2g}[/tex].

How to measure the maximum height in projectile motion?

When a particle is hurled obliquely near the surface of the earth, it travels along a curved route while accelerating continuously in the direction of the planet's centre (we assume the particle stays close to the surface of the globe). Such a particle's motion is known as projectile motion, and its route is referred to as a projectile. When a particle is sent into the air at a certain speed, the only force acting on it is the acceleration caused by gravity (g). This downward vertical acceleration has an effect. The fact that there is no acceleration in the horizontal direction indicates that the particle's horizontal velocity stays constant.

The highest vertical location along the object's flight is considered to be its greatest height. The range of the bullet is defined as its horizontal displacement. The starting velocity of the item affects the projectile's range.If v is the starting speed, g is the gravitational acceleration, and H is the highest point that may be reached in metres, then is the beginning speed's angle from the horizontal plane (radians or degrees).

The following formula determines the projectile's maximum height:[tex]\frac{v^{2} sin^{2}x}{2g}[/tex]

Here x is the angle.

this can be derived using the equation v^2 = u^2 - 2as where v = 0 m/s and u = usinx.

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a perfect unit impulse is applied to a sdof system at rest, having a mass 250 kg, stiffness 3000 n/m and damping ratio 0.2. the initial velocity of the system is:

Answers

The damping frequency is 12.68 rad/s.

Given data

mass = 250 kg

stiffness = 3000 n/m

damping ratio = 0.2

to find out

damped natural frequency of the system

solution

we first find the natural frequency that is express as

natural frequency ω = √k/m    ..............1

here k is stiffness and m is mass

so ω = √3000/250 = √120

ω = 12.95 rad/s

so

damping frequency will be

damping frequency = ω ×  √(1 - r²)     .....................2

here r is damping ratio

damping frequency = 12.95 × √(1-0.2²)

damping natural frequency = 12.68 rad/s

Therefore, the damping frequency is 12.68 rad/s.

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every second, the sun converts about 600 million tons of hydrogen into 596 million tons of helium. the remaining 4 million tons of mass is __________.

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The missing 4 million tons of matter are converted to energy, according to Einstein's equation [tex]E=mc^{2}[/tex].

Our Sun is a huge, massive, spherically shaped object, containing about 99.8% of all the matter in our Solar System.The Sun is a typical star, and is also the star that is nearest to the Earth. It is composed of a mixture of 73% hydrogen, 25% helium, and 2% other elements by weight.The nuclear fusion reactions that produce the sun's energy are converting hydrogen into helium, changing the relative amount of these two elements present in the Sun. In each nuclear conversion 4 hydrogen atoms are combined to produce a helium atom. This reaction occurs throughout the Sun and by this process our Sun converts 600 million tons of hydrogen into 596 million tons of helium every second. The missing 4 million tons of matter are converted to energy, according to Einstein's equation [tex]E=mc^{2}[/tex].As far as we know, only half a billionth of this energy reaches the Earth. The rest is radiated out into space.

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What is the frequency of the wave if its time period is 4 seconds?

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The frequency of a wave is 0.25Hertz  if its time period is 4sec. Frequency is said to be inversely proportional to time period.

Frequency alludes to the quantity of cycles in a specific unit of time. The justification for why the sky is blue or anything contains variety can be effectively made sense of by it. Moreover, it can likewise make sense of why the voice of certain people is profound while for others it isn't profound. Likewise, frequency plays a major effect on the notes of a piano or other instruments.

This number of events is unquestionably a fundamental property of a wave. The waves encompass individuals consistently. Moreover, light is an electromagnetic wave and the fan is a sound wave. A wave is surely a vibration and conveys energy with it. Generally imperative, the quantity of waves passing by each second alludes to the recurrence of the wave. Also, its estimation happens in Hertz (Hz).

So, we know that frequency is defined as inversely proportional to time period.

So, frequency=1/Time period

=>v=1/4

=>v=0.25/sec

or v=0.25Hertz.

Hence, frequency of wave is 0.25Hertz.

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Scientists on earth are able to communicate with rovers on mars through their receivers, which can receive and process signals. Which of these best describes the signals sent and received by rovers?.

Answers

The best describes the signals sent and received by rovers are electromagnetic waves.

Depending on the planet's position, it generally takes about 5 to 20 minutes for a radio signal to travel the distance between Mars and Earth. Using an orbiter to relay messages is beneficial because it is much closer to perseverance than a deep space network (DSN) antenna on Earth.

It takes 5 to 20 minutes for communication to reach Mars from Earth and vice versa. Rovers and landers on the surface of Mars emit radio signals to spacecraft orbiting Mars, which relay radio waves to Earth. This is where the signal is received by a global system of radio antennas called the Deep Space Network.

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why is frankenstein attracted to science? how does he look back on his attraction from his current perspective?

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Frankenstein is attracted to science because he is a passionate and ambitious individual who is curious about the unknown.

Frankenstein is attracted to science because of the limitless possibilities it holds. He is drawn to the idea of being able to unlock the secrets of life and death, and create something entirely new. He is driven by the idea that science and technology can be used to improve the world and make life better for all.

He looks back on his attraction to science from his current perspective with a sense of regret and guilt, as his ambition to succeed in his experiments leads him to create a monster that causes immense suffering. He wishes that he had not been so ambitious and had instead explored other areas of study.

From his current perspective, however, Frankenstein looks back on his attraction to science with a sense of regret. He realizes that his ambition was misguided, and that his creations were not meant to be used for the betterment of mankind. He regrets the destruction and chaos that his creations caused, and the pain and suffering they inflicted on innocent people. He now understands that science and technology are powerful tools, but they must be used responsibly and with caution. He also realizes that there are limits to what science can do and that some things are simply beyond human understanding.

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a heat engine is operating between 287 c and 32 c. if the engine extracted 400 mj of energy from fuel, how many mj of energy could be used as mechanical energy?

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A heat engine is operating between 287 c and 32 c. if the engine extracted 400 mj of energy from fuel, 4109.6 Jews mj of energy could be used as mechanical energy

Using the temperatures, a heat engine's efficiency is determined (lowest and highest).

The ratio of the system's provided heat to the desired work is considered the system efficiency. An engine's efficiency ranges from 0 to 1.

The efficiency of the engine is 27%, or 0.27. Since the heat was turned down due to the 3000 gems, we must find productive employment. Heat input and network efficiency are connected. That is the line. Qc was rejected by two W plus heat, leading to Qh. The cost of networking is composed of Nita W and Nita Qc. The network completed is identical to Nita. Q C is split into two halves. As a result, we must divide our efficiency, which is 0.27, by 3000. The engine's work is represented by this. Let's calculate the result of 0.27 multiplied by 3000 divided by 1. 1109 and 0.6 gems are the answer. He rejected our quote, which is +110 9.6 plus three thousand. 4109.6 Jews is quite close to the heat input.

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the threshold of hearing is defined as the minimum discernible intensity of the sound. it is approximately 10−12w/m2 . find the distance d from the car at which the sound from the stereo can still be discerned. assume that the windows are rolled down and that each speaker actually produces 0.06 w of sound, as suggested in the last follow-up comment.

Answers

the distances d from car that the stereo's sound can still be 97720.5 m Then, we need to determine how much further away it is in order to calculate its actual size. An thing appears smaller from a distance.

What do you call a distance?

Distance, which is a scalar quantity, describes "however much area an entity has covered" while moving. An object's total change in position, or displacement, is a vector number that indicates "how out of place any object is."

The relationship between distance and sound intensity heard at a distance is (the power of sound just at source surface area of a wall of an imagined circle at the range in question).

I = P/4πd²

P = 0.06 W 2 = 0.12 W d = if the vehicle has two speakers.

I = 1012 W/m2 1012 = 0.12/4 d2 d = 97720.5 m is the formula for the loudest audible sound.

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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?

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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 CMB 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.

CMB 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.

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two coils are at fixed locations. when coil 1 has no current and the current in coil 2 increases at the rate 15.0 a/s, the emf in coil 1 is 25.0 mv. (a) what is their mutual inductance? (b) when coil 2 has no current and coil 1 has a current of 3.60 a, what is the flux linkage in coil 2?

Answers

their mutual inductance is 1.67mH, and the flux linkage in coil 2 is 6.00mWb.

(a)Equation E=−M(dt₂/di) yields

M=∈₁ /∣di2 /dt∣=25.0mV/15.0A/s =1.67mH

(b)Equation M₂₁(dt₁/di)=N₂(dΦ₂₁/dt) leads to

N₂ Φ₂₁=Mi₁=(1.67mH)(3.60A)=6.00mWb

Flux refers to any effect that seems to pass through or move through a surface or substance, whether it actually moves or not. A notion in applied mathematics and vector calculus called flux has a lot of uses in physics. Flux, a vector quantity that describes the size and direction of a substance or property's flow, is used to describe transport processes. The perpendicular component of a vector field over a surface is defined as the surface integral of a scalar variable called flux in vector calculus.

The definition of flux in terms of transport states that it can either be a single vector or a vector field or a function of position. The latter situation makes it simple to integrate flux across a surface.

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A peron lift a 4. 5 kg cement block a vertical ditance of 1. 2 m and then Carrie’ the block horizontally 7. 3 m. Determine the work done by the peron and by the force of gravity

Answers

The person's work is positive, with a rating of 52.92 J.

Gravity's work is negative, with a value of -52.92 J.

define distance ?

Distance is a numerical or sometimes qualitative measurement of the distance between objects or points. In physics or everyday use, distance can refer to physical length or estimate based on other criteria (e.g. "two particles above"). Since spatial perception is a rich source of conceptual metaphors in human thought, the term is also often used metaphorically to refer to a measure of the degree of difference between two similar objects ( such as the statistical distance between probability distributions or the distance between text strings) or the degree of separation (as illustrated by the distance between people in a social network). Most concepts of distance, both physical and metaphorical, are formalized in mathematics using the concept of metric space.

m = 4.5 kg is the mass of a cement block.

The block raises the vertical distance by d=1.2m.

d' = 7.3 m is the horizontal distance covered by the block.

Since the person raises the block, there is some displacement of the block. As a result, the individual will accomplish good job. And the person's work is saved in the form of block potential energy.

w=mgd

=4.5x9.8x1.2

=52.92 J

As the gravity will oppose the block's motion, thus it will produce negative work on the block. Therefore,

Gravity's work = - (Work done by person)

Gravity work = - 52.92 J

Thus, gravity's work is -52.92 J.

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a current-limiting circuit breaker performs in a manner similar to conventional thermomagnetic circuit breakers at currents below a threshold of about?

Answers

A current-limiting circuit breaker performs in a manner similar to a conventional thermomagnetic circuit breaker at currents below a threshold of about 1000A.

What is Thermomagnetic?

The study of the relationships between heat, work, temperature, and energy is known as thermodynamics. The rules of thermodynamics explain how energy in a system evolves and whether a system can make use of its environment to produce productive work.

What is Current?

Electric current is a term used to describe how much electricity flows across a circuit and how it flows in an electronic circuit. Amperes are used to measure it. The more electricity flowing across the circuit, the higher the ampere value.

Hence, a current-limiting circuit breaker performs in a manner similar to a conventional thermomagnetic circuit breaker at currents below a threshold of about 1000A.

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if r is the radius of the earth and g is the gravitational acceleration at the earth's surface, what is the gravitational acceleration at altitude h above the earth's surface?

Answers

The gravitational acceleration at altitude h above the earth's surface is g.R^2/(R+ h) ^2.

What is gravitational acceleration ?

In physics, gravitational acceleration is the speed at which a body falls freely in a void (and thus without experiencing drag). This is the constant acceleration brought on just by the gravitational pull. Gravimetry is the measurement and study of these rates. All bodies accelerate at the same rate in vacuum, independent of their masses or compositions.The combined effects of gravity and the centrifugal force from Earth's rotation determine the strength of Earth's gravity at a fixed place on its surface.

Let, gₙ be the acceleration due to gravity at height h.

gₓ be the acceleration due to gravity at depth x.

The acceleration due to gravity on the surface of Earth is

g= GM/R^2

where,R is the radius of Earth,M is mass of Earth and G is gravitational constant.

∴g ∝ 1/R^2

gₙ ∝ 1/(R+ h) ^2

thus gₙ/g = R^2/(R+ h) ^2

Hence

gₙ = g.R^2/(R+ h) ^2

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what is the difference between the speed of an object and the acceleration of an object?

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The difference between the speed of an object and the acceleration of an object are as follows:

Speed is the distance covered in the unit of time whereas acceleration is the rate of change in the speed.Speed is the scalar quantity on contrary acceleration is the vector quantity.Speed is determined by distance and time whereas acceleration is determined by the velocity and time.Speed can remain constant in every case but acceleration is not uniform in every case except for circular motion.Speed is related to the rate of motion only whereas acceleration is related to the direction of motion as well along with the rate of motion.Speed is calculated with displacement whereas acceleration is calculated with velocity. Speed = Distance/Time and Acceleration = Speed/TimeThe SI unit of speed is m/s and acceleration is m/s^2.

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If the forces acting on an object are balanced, what must be true about the motion of this object?.

Answers

If the forces acting on an object are balanced, so it doesn't cause a change in motion.

The effect of force on the motion of objects

1. Force on a stationary object

This force occurs when there is an impulse that is done in the opposite direction with the same force. Then each object emits a force. But because the directions of the forces are opposite to each other, the total force becomes smaller or cancels each other out.

2. Force on moving objects

In this style, when two people push an object together, the position of the object can shift. That's when there is motion caused by more than one force. The forces on objects become mutually reinforcing, so the resulting force becomes greater. Forces that are in the same direction will increase the total force.

3. Force on an object that causes a change in the direction of motion

When someone rides a bicycle then turns the direction of movement. It happens that there is a tensile force and muscle force that deflects the bicycle handlebar. When playing the ball can change the direction of the ball caused by kicks, throws, or punches from players. Then the player exerts a force on the ball that causes the ball to change direction. So here the force plays a role in changing the direction of a moving object.

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a converging lens made of crown glass has a focal length of 15.0 cm when used in air. if the lens is immersed in water, what is its focal length?

Answers

If the lens is immersed in water, its focal length will be 53.6 cm.

What is focal length of a converging lens?

A converging lens is that causes parallel rays (as of light) to come to a focus. By noticing that parallel light rays entering and leaving the lens would undergo fewer variations in index of refraction if it were surrounded by water, we may provide a conceptual response to this question. They would thus bend less and concentrate further away from the lens.

The focal length of a thin lens in air is the separation between its major foci, also known as focal points, and its center. The focal length is the distance at which a beam of collimated light will be concentrated to a single spot for a converging lens (for instance, a convex lens).

We can answer this question as follows;

1/f = (1.52−1)( 1/R1 - 1/R2) = 1/50

But lens surrounded by water n = 1.3333 we have

1/f = ((1.52/1.3333)−1)( 1/R1 - 1/R2)

Solving for f we get f=53.6cm

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Label the atmosphere layers of a star

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Answer:

The layers of a star's atmosphere can include the photosphere, the chromosphere, and the corona. The photosphere is the layer of the star's atmosphere that is visible to us and is the source of the star's light. The chromosphere is the layer above the photosphere and is characterized by its reddish color. The corona is the outermost layer of the star's atmosphere and is characterized by its high temperatures.

Explanation:

Calculate the velocity of a non-relativistic electron whose de broglie wavelength is 3.637 nm.

Answers

The velocity of a non-relativistic electron whose de Broglie wavelength is 3.637 nm is 5.82 x 10^6 m/s.

The velocity of a non-relativistic electron can be calculated using the formula

v = h / mλ

where

h  = Planck's constant

m  = the mass of the electron

λ  = the de Broglie wavelength of the electron.

Now using the above formula, we can easily find the velocity.

We know that the mass of the electron is 9.11 x 10^-31 kg,

the velocity of the electron can be calculated as follows:

v = (6.63 x 10^-34 m^2 kg / s) / (9.11 x 10^-31 kg * 3.637 x 10^-9 m)

This comes out to be approximately 5.82 x 10^6 m/s.

Therefore, the velocity of a non-relativistic electron whose de Broglie wavelength is 3.637 nm is 5.82 x 10^6 m/s.

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according to kirchhoff's current law, the sum of the currents entering a closed surface must equal the sum of the currents leaving. explain how the law is satisfied for the closed surface shown when we use a real op amp in this circuit.

Answers

Taking into mind the OV 1 kNXų Closed Surface 2 mA currents in the ground connections and power supply connections of a real op amp, KCL is satisfied.

The algebraic sum of all currents entering and leaving a node must equal zero, according to Kirchhoff's Current Law, also known as KCL.

This law is used to explain how a charge travels to and from a wire junction or node. With this knowledge, let's look at an illustration of the legislation in action, its significance, and how it came to be.

Since no charge is lost, the total current flowing into a junction or node equals the charge leaving it. To put it another way, every current entering and leaving the node must have a zero algebraic sum. This Kirchhoff law property, where I(exit) + I(enter) = 0, is known as charge conservation.

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a 1.80-kg block slides on a rough, level surface. when it is traveling at 2.00 m/s, the block hits a linear, ideal spring and compresses it by a distance of 11 cm before (momentarily) coming to rest. the coefficient of kinetic friction between the block and the surface is 0.56. what is the force constant of the spring?

Answers

The force constant of the ideal spring sliding on a rough surface with a speed of 2m/s is 413.22 N/s.

Force constant:

The force constant or spring constant is a measure of the stiffness of a spring. It is the force per unit deformation of the spring. Its SI unit is N/m.

we need the concept of kinetic energy and work to solve this problem:

[tex]ke = \frac{1}{2} \times m{v}^{2} [/tex]

where, m is mass of the block and v is the velocity of the block.

[tex]ke = \frac{1}{2} \times 1.8 \times {2}^{2} [/tex]

ke = 3.6 J

now, work done by frictional force is:

work = Fd

W = Ukmgd

( where Uk is coefficient of kinetic friction)

W= 0.56× 1.8× 10× 0.11

W = 1.1 J

now, according to conservation of energy:

Work done = potential energy + kinetic energy

W= U + KE

U = KE - W

3.6J - 1.1J

2.5 J

now, potential energy of compressed spring:

[tex]u = \frac{1}{2} \times k {x}^{2} [/tex]

[tex]2.5 = \frac{1}{2} \times k \times {0.11}^{2} [/tex]

[tex]k = \frac{2.5 \times 2}{ {0.11}^{2} } [/tex]

k = 413.22

hence, force constant of the spring is 423.22 N/m

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is the sports car in question 9 has twice the speed of the minivan which vehicle has the higher kninetic energy wh

Answers

The sports car has more kinetic energy.

The sports car will have more kinetic energy as it has more mass than a minivan.

What is the relationship between kinetic energy and mass?

The equation for Kinetic Energy is

KE = 1/2 mv2.

Kinetic energy has a direct relationship with mass, meaning that as mass increases so does the Kinetic Energy of an object.

Objects with greater mass can have more kinetic energy even if they are moving more slowly, and objects moving at much greater speeds can have more kinetic energy even if they have less mass.

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Due to its higher mass than a minivan, the sports vehicle will contain more kinetic energy.

What are some instances of kinetic energy?

Kinetic energy, which may be seen in the mobility of an item or nuclear particle, is the fuel of motion. Kinetic energy is present in every particle and moving thing. Illustrations of kinetic energy in action include a person walking, a baseball soaring through the air, a piece of food sliding from a table, and then a charged molecule in an electric field.

What are the top 3 kinetic energy facts?

An object's kinetic energy multiplies by four when its speed doubles. The Greek word "kinesis," which implies motion, is where the word "kinetic" originates. A collision is one way that kinetic energy may be transmitted from one item to another.

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Astronomers use the _______ of stars to determine how hot they are and their _______ to estimate how far away they are.

Answers

Astronomers use the colour of stars to determine how hot they are and their brightness to estimate how far they are.

When astronomers are in space and studying the nature of stars.

The colour of the star change according to the temperature of the star. If the star is more red in colour it is supposed to have more temperature that of a star which has a fade colour.

To estimate the distance of the stars from the astronomers, they use the brightness of the star as a factor to calculate the distance between them.

If the brightness of the star is less it is supposed to be more distant from the astronomers and vice versa.

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what is a name for the marked angle? five rays. one ray starts at point a, then points down and to the left through point b. a second ray starts at point a, then points up and to the left through point e. a third ray starts at point a, then points up through point f. a fourth ray starts at point a, then points up and to the right through point d. a fifth ray starts at point a, then points down and to the right through point c. an orange curved line connects ray ad to ray ac.

Answers

The marked angle is also known as an OBTUSE angle or an ACUTE angle.

What does an angle go by?

Basic angles are identified by their names: acute, obtuse, right, straight, reflex, and full rotation. By uniting two rays at their termini, a geometrical shape known as an angle is created.

What does an indicated angle go by?

One of three ways can be used to name an angle. An angle can be identified by one of three ways: by its vertex, by its three points (the middle point must be the vertex), or by a letter or number placed inside the angle's aperture.

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Answer:

/EAD

Explanation:

thats the answer if ur doing khan

If today is October 31st and we view a third quarter, on what date did we observe
the last new moon?

Answers

If it's October 31 and we can see a third quarter, then means we can see the last new moon, which was on October 10.

What does the moon mean?

The Moon, the largest and brightest satellite in our night sky, stabilizes the Earth's axial wobble, which results in a generally constant climate. This makes Earth a rather more livable planet. Moreover, it brings about tides, which produce a pattern that has aided people for countless years.

How is the moon made?

Approximately 43% of the moon's surface is made up of oxygen, 20% of it is silicon, 19% is magnesium, 10% is iron, 3% is calcium, 3% is aluminum, 0.42% is chromium, 0.18% is titanium, and 0.12% is manganese. Traces of water that may have come from far beneath have been discovered by orbiting spacecraft on the lunar surface.

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A piano tuner stretches a steel piano wire with a tension of 765 n. the steel wire has a length of 0.900 m and a mass of 6.75 g. a. What is the frequency f1 of the string's fundamental mode of vibration?b. What is the number n of the highest harmonic that could be heard by a person who is capable of hearing frequencies up to f = 16 kHz?

Answers

A)The frequency f1 of the string's fundamental mode of vibration is 177.42 Hz.

B) The number n of the highest harmonic is 90.

The Tension in the String is 765 N.

Steel wire length L is 0.900 m

The mass of the string m is 6.75 g = 6.75 × [tex]10^{-3}[/tex] kg.

Frequency of the string = n ×(Velocity of the wave on the String/(2L) )

The velocity of the wave on the string V=[tex]\sqrt{} \frac{T}{M/L}[/tex]

V= [tex]\sqrt{} \frac{765}{675 * 10^{-3}/0.9}[/tex]

v = 319.37 m/sec

For Fundamental Frequency n = 1

Frequency = V / 2L

f = 319.37 / (2*0.9)

f = 177.42 Hz

Therefore Fundamental Frequency of the String is 177.42 Hz.

Frequency f = 16 kHz

The velocity of the wave on the string v = 319.37 m/sec

Frequency of the string f = n ×(Velocity of the wave on the String v /(2L) )

n = f × (2L / v)

n = 16×10³ (2*0.9 / 319.37)

n = 90.17

n ≈ 90

The number of Harmonics is 90.

In physics, anxiety is described as the pulling pressure transmitted axially with the aid of the manner of a string, a rope, chain, or comparable object, or by way of each stop of a rod, truss member, or comparable three-dimensional object; anxiety may also be described because the action-response pair of forces acting at every end of said factors. tension might be the alternative to compression.

On the atomic level, whilst atoms or molecules are pulled other than every other and benefit potential electricity with a restoring force nevertheless present, the restoring force may create what is also referred to as tension. every stop of a string or rod under such anxiety ought to pull on the item it's far attached to, to be able to repair the string/rod to its secure length.

Anxiety (as a transmitted force, as a motion-response pair of forces, or as a restoring pressure) is measured in newtons in the international system of gadgets (or pounds-pressure in Imperial devices). The ends of a string or different object transmitting tension will exert forces on the gadgets to which the string or rod is attached, inside the route of the string on the factor of attachment. these forces because of tension also are called "passive forces". There are fundamental opportunities for structures of items held through strings: both accelerations are 0 and the system is therefore in equilibrium, or there may be acceleration, and consequently, an internet force is present in the gadget.

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Tsunamis begin when some kind of trigger, such as an earthquake, landslide, or volcano, causes a large part of the surface of the water to rise or fall. True or false: after this sudden displacement of water, gravity acts to balance the water levels back, resulting in a tsunami.

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It is true that a huge portion of the water's surface rises or falls when a trigger, such as an earthquake, landslide, or volcano, causes a tsunami to occur.

An approaching tide may initially resemble a tsunami more than a breaking wave. As a result, it is frequently referred to as a tidal wave, even though the scientific community opposes this terminology because it may give the incorrect idea that tides and tsunamis are directly associated.

Tsunamis frequently consist of a series of waves that travel together in a "wave train" and last anywhere from a few minutes to several hours. Large events could result in waves that are tens of meters high.                                                                                             Although tsunamis only have an influence on coastal areas, they can have a tremendous impact on the entire planet due to their powerful destructive energy.

This proves that the statement that tsunamis start when some sort of trigger, such as an earthquake, landslide, or volcano, causes a significant portion of the water's surface to rise or fall is true.

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A 70-kg base runner begins his slide into second base when he is moving at a speed of 4. 0 m/s. The coefficient of friction between his clothes and earth is 0. 70. He slides so that his speed is zero just as he reaches the base. (a) how much mechanical energy is lost due to friction acting on the runner? (b) how far does he slide?.

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a. The runner loses 560 J of mechanical energy as a result of friction.

b. the distance that the runner slides is equivalent to J. 1.2 m.

Mass = 70.0 kg

Speed = 4.0 m/s

Coefficient of friction = 0.70.

Acceleration due to gravity, g = 9.8 m/s².

a. We would compute the change in kinetic energy to estimate the amount of mechanical energy lost due to friction acting on the runner:

The formula: gives the shift in kinetic energy mathematically.

ΔK.E. = 1 ÷ 2 m(v - u)²

When the parameters are added to the formula, we get,

ΔK.E. = 1 ÷ 2 × 70 × (4 - 0)²

ΔK.E. = 1 ÷ 2 × 70 × (4)²

ΔK.E. = 35 × 16

ΔK.E. = 560 Joules

560 Joules of mechanical energy

b. To gauge the runner's slide's distance:

We would first determine the runner's acceleration.

Acceleration = ug

Acceleration = 0.70 × 9.8

Acceleration = 6.86 m/s²

For distance,

V² + U² = 2as

4² + 0² = 2(6.86)s

16 = 13.72s

Distance, S = 1.2 meters.

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What makes infrared waves different from other waves?

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Infrared rays have longer wavelengths than visible light and can pass through dense regions of gas and dust in space with less scattering and absorption. So, infrared objects can reveal objects in the universe that cannot be seen in visible light using optical telescopes.

The wavelengths of infrared waves range between 700 nm to 1 mm. They are longer than visible rays but shorter than radio waves. They are not visible by human eye.

Infrared radiation can promote local blood circulation and reduce muscle tension. Examples of traditional medical applications of infrared radiation include the relief of muscle pain and tension, as well as auto immune diseases or wound healing disorders.

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If the coefficient of kinetic friction between the floor and bag is 0. 15, how much thermal energy does marissa create?.

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If Marissa drags a 23kg duffel bag 18m to the gym. The thermal energy Marisa will produce is 608.58.

The energy in a system that determines its temperature is referred to as thermal energy. Thermal energy flows as heat. Thermodynamics is a subfield of physics that examines how work is done as a result of heat being exchanged across various systems.

Friction would provide work that is equal to heat energy.

The force of friction is 225.4 x 0.15, or 33.81 N, which is equal to 23 x 9.8 N.

The frictional effort of 33.81 x 18 = 608.58 J is now converted into thermal energy of 608.58 J.

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