Conditions for uniform circular motion are constant speed and circular path. (True or false)

Answers

Answer 1

Uniform circular motion is a motion that is uniform in terms of speed and circular in terms of its path.

Uniform means constant speed and its path is circular.

Thus, the statement is true.


Related Questions

what is the name of the side of angle x

Answers

It doesn’t say x anywere

A 40. 0-kg child stands at one end of a 40. 0-kg boat that is 4. 00 m in length. The boat is initially 3. 00 m from the pier. The child notices a turtle on a rock near the far end of the boat and proceeds to walk to that end to catch the turtle. Neglecting friction between the boat and the water, where is the child relative to the pier when he reaches the far end of the boat?.

Answers

When the boy reaches the far end of the boat, his position in relation to the pier is 61.5 m away.

Explain about the friction?

The force produced when two surfaces slide against and touch one another is referred to as frictional force. There are a few things that affect the frictional force: The surface texture of these forces and the amount of force pressing them together have the biggest impact.

The imperfections on the two surfaces in contact, friction is produced. Small irregularities can be found on even the smoothest surfaces, and when two surfaces interact with one another, they cause friction.

Two surfaces interacting produces the common force known as friction. This interaction raises the heat energy of the two surfaces as they slide against one another (the temperature goes up).

Boat mass M = 40 kg

The child weighs 40kg.

3 meters separate the boat's near end from the pier.

Boat length is 4 meters.

= 40 *(3/2) + 40 *3/ 40+ 40

= 60 +120/ 80

=61.5 meter

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general questions: a small car and a large suv are at a stoplight. the car has a mass equal to half that of the suv, and the suv can produce a maximum accelerating force equal to twice that of the car. when the light turns green, both drivers push their accelerators to the floor at the same time. which vehicle pulls ahead of the other vehicle after a few seconds?

Answers

After a few seconds, no vehicle will pull ahead, it is a tie because the acceleration for the small car and the SUV are the same.

According to Newton's second law F = ma where m is the mass of the object, F is the force that works on the object, and a is the acceleration.

Mass of the SUV = m₂ = mMass of the small car = m₁ = half of the SUV = 0.5mAccelerating of the small car = F₁ = FAccelerating of the SUV = F₂ = 2F

The bigger acceleration of a car, it will make the car move further and faster. So we have to calculate the ratio of acceleration for both cars.

F₁ : F₂ = m₁ a₁ : m₂ a₂

F : 2F = 0,5m a₁ : m a₂

1 : 2 = 0,5 a₁ : a₂

2 × 0,5 a₁ = 1 × a₂
a₁ = a₂

The acceleration for the small car is the same as the acceleration for the SUV. It is a tie.

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a certain planet has equatorial radius about 0.463 times that of the earth, and mass only 0.110 times that of the earth. calculate the free-fall acceleration due to gravity on this planet in units of gg (earth's gravitational acceleration).

Answers

Using the theories of gravitation, we got that  3.42×[tex]10^{11}[/tex]m/sec²  is the free-fall acceleration due to gravity on a a certain planet has equatorial radius about 0.463 times that of the earth, and mass only 0.110 times that of the earth.

We know that acceleration due to gravity on the planet is given by

=Gm/r²

where G is the earth's gravitational constant, m is the mass of the planet and r is the radius of the planet

We are given that mass of the planet is 0.110 times that of the earth.

and radius of the planet is 0.463 times that of the earth.

We know that value of G is 6.67×[tex]10^{11}[/tex].

So putting the values, we get

Acceleration of planet=[6.67×[tex]10^{11}[/tex]×0.110 Mass of the earth]/(0.463)² radius of the earth

=>Acceleration of planet=[(6.67×0.110)×    [tex]10^{11}[/tex]]/(0.463×0.463)

=>Acceleration of planet = (0.7337/0.2143)×[tex]10^{11}[/tex]

=>Acceleration of planet =3.42×[tex]10^{11}[/tex]m/sec²

Hence, for a certain planet has equatorial radius about 0.463 times that of the earth, and mass only 0.110 times that of the earth, the free-fall acceleration due to gravity on this planet is 3.42×[tex]10^{11}[/tex]m/sec².

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Astronomers have measured light from stars in galaxies that
are billions of years old. Which of the following must be true
about energy for this to be possible?

When stars emit energy in the form of light it travels to Earth faster
than other places in the Universe.

Energy in the form of light can only travel toward objects.

When energy in the form of light is redshifted it is no longer
measurable.

Energy in the form of light travels across space and cannot be
destroyed

Answers

The statement that is true about energy is that "energy in the form of light travels across space and cannot be destroyed" Option D.

What is energy?

We know that in physics, energy is generally defined as the ability to do work. There are several kinds of energy that are in existence and we know that light energy is only one of the kinds of energy.

Energy in the form of light is produced by stars and these stars have been in existence for several billion years and they are still able to produce light that can be visible to the astronomers that study the outer space.

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What is the wavelength of the wave in the string

Answers

The standing wave in the figure has 4 nodes and 3 antinodes.

The wavelength of a standing wave is given by,

[tex]\lambda=\frac{2}{n}L[/tex]

Where n=number of nodes-1

From the figure n=3

Therefore the wavelength is,

[tex]\lambda=\frac{2}{3}L[/tex]

Therefore the wavelength of the stationary wave produced in the given string of length L is (2/3)L.

Dominic made the table below to organize his notes about mixtures. A 1-column table. The first column labeled properties of mixtures has entries has no set composition, must have more than one state of matter, must have more than one substance. What mistake did Dominic make? The title should read “Properties of Solutions” because some mixtures do not have all of the properties listed. There is a definite recipe to make each mixture, so the composition of a mixture is set. Although it is possible to have more than one state, it is also possible to have only one state. A single substance can be used to make a mixture if the substance is composed of more than one element. Mark this and return

Answers

The mistake that Dominic made is that C. Although it is possible to have more than one state, it is also possible to have only one state

What exactly is a mixture?

A mixture in chemistry is a material composed of two or more simpler components that are not chemically linked.

Individual substances retain their properties in a mixture, but their properties may change if they form a compound; when mixed, individual substances retain their properties in a mixture, but their properties may change if they form a compound.

When matter is mixed, such as with clouds, it can take on characteristics from various states. As a result, while it is possible to have more than one state, it is also possible to have only one state.

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Which two substances are among the six most abundant elements in living things?

Answers

Answer:Oxygen. Oxygen is the most abundant element contained within living organisms, composing about 65% of the human body. ...

Carbon. ...

Hydrogen. ...

Nitrogen. ...

Sulfur. ...

Phosphorus.

Explanation:

a meter stick has a mass of 0.172 kg and balances at its center. when a small chain is suspended from one end, the balance point moves 21.8 cm toward the end with the chain. determine the mass of the chain.

Answers

If the stick stays in the above-shown horizontal position at rest, m is 5 kg.

What is meant by mass?The amount of matter in a substance or an object is measured by its mass. The kilogram (kg) is the fundamental SI unit of mass, while lower masses can also be measured in grams (g). A balance is what you would use to measure mass. In physics, mass is a quantitative measurement of inertia, a basic characteristic of all matter. It essentially refers to a body of matter's resistance to changing its speed or position in response to the application of a force.

In the event that the torques around the suspension point are balanced, the stick will stay at rest in the horizontal position.

[tex]\tau_{\mathrm{CCW}} &=\tau_{\mathrm{CW}} \\[/tex]

[tex]r_1 F_1 &=r_2 F_2 \\[/tex]

[tex]r_1 m_1 g &=r_2 m_2 g \\[/tex]

[tex]m_2 &=\frac{r_1 m_1}{r_2}=\frac{(50 \mathrm{~cm})(3 \mathrm{~kg})}{30 \mathrm{~cm}}=5 \mathrm{~kg}[/tex]

It should be noted that finding m2 could also be done using the center of mass formula, but doing so would require algebra. The balance point can typically be located using the center of mass formula. It is typically simpler to apply torque if the balance point is known.

The complete question is:

A uniform meter stick of mass 1 kg is hanging from a thread attached at the stick’s midpoint. One block of mass m = 3 kg hangs from the left end of the stick, and another block, of unknown mass m, hangs below the 80 cm mark on the meter stick. If the stick remains at rest in the horizontal position shown above, what is m ?

A. 4 kg

B. 5 kg

C. 6 kg

D. 8 kg

E. 9 kg

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Energy can be transferred between objects or systems; momentum cannot be transferred and is only gained or lost from an object or system.

Answers

In a collision when two or more objects collide, the momentum will be transferred between the objects involved in the collision. But the total momentum of a system will always be conserved. Thus the system will never lose or gain momentum.

Thus the given statement is false.

ill give brainliest if you help me

Answers

G is the right answer.
Stay blessed

if the uncertainty in the position of a wave packet representing the state of a quantumsystem particle is equal to its de broglie wavelength, how does the uncertainty in momentum compare with the value of the momentum of the particle?

Answers

The uncertainty of momentum compared to the value of the momentum of the particle is Δp ≈ p/2π

In 1924 Louis de Broglie proposed the hypothesis that a moving particle having momentum p could behave as a wave. It is characterized by the presence of a wavelength known as the wavelength of a particle.

The uncertainty in a position is:

ΔxΔp ≈ h

If Δx = λ, the above equity on become as

ΔxΔp ≈ h

  λΔp ≈ h

  λΔp ≈ h/2π

    Δp ≈ h/2πλ

    Δp ≈ (h/λ)/2π

    Δp ≈ p/2π

With:

p is momentum

h is Planck's constant

λ is the wavelength

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momentum problems practice class

Answers

The answers to the momentum questions with given velocity and mass attached as an image are as follows:

70,000kgm/s35,000kgm/s2m/s5kg40,000kgm/s28.57m/s

What is momentum in physics?

Momentum is the tendency of a body to maintain its inertial motion. It is the product of a body's mass and velocity, or the vector sum of the products of its masses and velocities.

Momentum = mass × velocity

According to the questions asked in the attached image, a tractor-trailer truck has a velocity of 35m/s. The momentum at different masses can be calculated as follows:

Truck of 2000kg, momentum = 2000 × 35 = 70,000kgm/s.

Car of 1000kg, momentum = 1000 × 35 = 35,000kgm/s

Velocity of a bowling ball: 16kgm/s ÷ 8kg = 2m/s

mass of beach ball: 0.25kgm/s ÷ 0.5m/s = 5kg

momentum of a truck: 4000kg × 10m/s = 40,000kgm/s

velocity of a car: 40,000kgm/s ÷ 1,400kg = 28.57m/s

The 4kilogram ball rolling along the same path at speed of 1m/s will take more force to stop in 10s than the 8kg ball traveling at a speed of 0.2m/s because the former has more momentum.

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What is the mass of an object that has 795J of moving kinetic energy and is moving at 3.5 m/s ?

Answers

Given data

*The given energy is k = 795 J

*The speed of the object is v = 3.5 m/s

The formula for the kinetic energy of the object is given as

[tex]k=\frac{1}{2}mv^2[/tex]

*Here m is the mass of the object

Substitute the known values in the above expression as

[tex]\begin{gathered} 795=\frac{1}{2}m(3.5)^2 \\ m=129.79\text{ kg} \end{gathered}[/tex]

Hence, the mass of the object is m = 129.79 kg

How much energy is stored in a spring with a spring constant of 150 N/m when it is compressed 2 cm?

Answers

The energy stored in a spring is elastic potential energy. The formula for calculating the elastic potential energy is expressed as

elastic potential energy = 1/2kx^2

where

k represents spring constant

x represents the distance through which the spring was compressed

From the information given,

k = 150 N/m

x = 2cm

we would convert 2cm to m

recall, 100cm = 1 m

2 cm = 2/100 = 0.02 m

By substituting these values into the formula,

elastic potential energy = 1/2 x 150 x 0.02^2

elastic potential energy = 0.03 J

A rocket moving upward at 2.50 km/s
discards its first stage and continues to
accelerate upward at 40.0 m/s² for
another 120 s. How much altitude does it
gain during this time (km)?
[?] km

Answers

The altitude gained by the rocket is 588km

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.

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

We know that the second equation of motion is

h = ut + 1/2 at²

Initial speed, u = 2.50km/s

acceleration, a = 40m/s² = 0.04km/s²   [1m = 0.001km]

time, t = 120s

Altitude gain during this time, h

h = ut + 1/2 at²

h = 2.50 * 120 + 1/2 * 0.04 * 120²

h = 588km

Hence, the altitude gained by the rocket is 588km

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A car tyre has a constant volume. Why does the pressure of the air in the tyre increase when its
temperature increases?

A) The air molecules hit each other less often.
B) The air molecules hit the inside of the tyre less often.

C) The average speed of the air molecules in the tyre is greater.

D) There are more air molecules in the tyre

Answers

Answer:

C) The average speed of the air molecules in the tyre is greater.

Explanation:

As temperature increases the speed of the molecule increases too.

A 55 kg ice skater is gliding along at 3. 5 m/s. Five seconds later her speed has dropped to 2. 8m/s.

Answers

If a 55 kg ice skater is gliding along at 3. 5 m / s has her speed has dropped to 2.8 m / s in 5 s, the force required is - 7.7 N

a = v - u / t

a = Acceleration

v = Final velocity

u = Initial velocity

t = Time

u = 3.5 m / s

v = 2.8 m / s

t = 5 s

a = ( 2.8 - 3.5 ) / 5

a = - 0.7 / 5

a = - 0.14 m / s²

According to Newton's second law of motion,

F = m a

F = Force

m = Mass

a = Acceleration

m = 55 kg

F = 55 * - 0.14

F = - 7.7 N

The negative sign indicates that the force is applied on the opposite direction of motion

Therefore, the force required to drop the speed is - 7.7 N

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A rock is thrown upward with a velocity of 27 meters per second from the top of a 35 meter high cliff on the way back down. When will the Rick be 5 meters from ground level? Round your answer to two decimal places

Answers

Given data

*The given veloicty of the rock is u = 27 m/s

*The given height of the cliff is h = 35 m

*The given height of the Rick from the ground level is s = 5 m

*The value of the acceleration doue to gravity is g = 9.8 m/s^2

The formukla for the time taken by the Rick at 5 meters from the ground level is given as

[tex]s=h+ut+\frac{1}{2}at^2[/tex]

Substitute the known values in the above expression as

[tex]\begin{gathered} 5=(35)+(27)(t)+\frac{1}{2}(9.8)t^2 \\ 4.9t^2-27t-30=0 \\ t=6.45\text{ s} \end{gathered}[/tex]

Hence, the time taken by the Ric at 5 meters above the ground lel is t = 6.45 s

Answer:

6.45 s

Explanation:

df = final position = 5 m              a = accel of gravity = -9.81 m/s^2

do = original position = 35 m         vo = original velocity  = 27m/s

df = do + vot + 1/2 at^2

5 = 35 + 27t - (1/2)9.81t^2  

-4.905 t^2+ 27t +30 = 0  

               Use quadratic formula  a = -4.905    b = 27     c = 30

                                            to find t = 6.45 s

(Ignore the negative value found with the Quadratic Formula)              

a constant force is applied to a body that is already moving. the force is directed at an angle of 60 degrees to the direction of the body's velocity. what is most likely to happen is that group of answer choices

Answers

the body will gradually change direction more and more toward that of the force while speeding up.

In physics, pressure is a power that may trade the movement of an object. A pressure can purpose an object with mass to exchange its speed (e.g. transferring from a country of relaxation), i.e., to boost up. pressure also can be defined intuitively as a push or a pull. A force has each importance and direction, making it a vector quantity. Its miles are measured within the SI unit of newton (N). force is represented via the symbol F (formerly P).

The authentic shape of Newton's second law states that the internet pressure acting upon an object is the same as the fee at which its momentum changes with time. If the mass of the item is steady, this regulation implies that the acceleration of an item is immediately proportional to the internet pressure acting at the item, is in the route of the net force, and is inversely proportional to the mass of the object.

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An organ pipe closed at one end and open at the other has a length of 1.8 m.

Answers

Given,

The length of the pipe, L=1.8 m

Speed of the sound, v=340 m/s

To form the standing wave with the longest wavelength, the number of nodes of the thus formed standing wave should be equal to 1.

The wavelength of the standing wave created in a closed-end pipe is given by,

[tex]\lambda=\frac{4}{1}L[/tex]

On substituting the known values,

[tex]\begin{gathered} \lambda=\frac{4}{1}\times1.8 \\ =7.2\text{ m} \end{gathered}[/tex]

Thus the longest possible wavelength is 7.2 m

The frequency of this standing wave is given by,

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

On substituting the known values,

[tex]\begin{gathered} f=\frac{340}{7.2} \\ =47.22\text{ Hz} \end{gathered}[/tex]

Thus the frequency of this standing wave is 47.22 Hz.

A current of 11.37 A passes through a wire. How many electrons pass through the wire in 18.19 seconds ?

Answers

[tex]\begin{equation*} =1.29*10^{21}\text{ electrons} \end{equation*}[/tex]

Explanation

An Ampere is in the SI base unit of electric current equal to one coulomb per second.

[tex]\text{ 1 Ampere=}\frac{1\text{ C}}{s}[/tex]

and remember that the charge of an electron is

[tex]Q_e=-1.6*10^{-19\text{ }}C[/tex]

Step 1

a) let

[tex]\begin{gathered} I=11.37\text{ Amperes} \\ I=11.37\text{ A}*(\frac{\frac{1C}{s}}{A})=11.37\frac{C}{s} \\ also \\ time\text{ =}18.9\text{ s} \end{gathered}[/tex]

so

[tex]\begin{gathered} I=\frac{Q}{time} \\ replace \\ 11.37A=\frac{Q}{18.19} \\ multiply\text{ both sides by 18.19} \\ 11.37A*18.19=\frac{Q}{18.19}*18.19 \\ 206.8206\text{ C}=Q \end{gathered}[/tex]

b) now , to find the number o f electrons , divide the total a}charge by the charge of an electron

[tex]Number\text{ of electrons=}\frac{206.8206C}{\lvert{-1.6*10^{-19\text{ }}C}\rvert}=1.29*10^{21}\text{ electrons}[/tex]

therefore, the answer is

[tex]\begin{equation*} =1.29*10^{21}\text{ electrons} \end{equation*}[/tex]

I hope this helps you

Energy is produced in the Sun’s...
A. corona
B. photosphere
C. chromosphere
D. core

Answers

The real correct answer is A

What causes a ship carrying heavy cargo to take more time to come to a stop than an identical ship carrying lighter cargo if both ships are traveling at the same speed?.

Answers

The greater momentum causes a ship carrying heavy cargo to take more time to come to a stop than an identical ship carrying lighter cargo if both ships are traveling at the same speed.

The amount of motion has momentum. If a thing is moving and has mass, it has momentum. If an object is stationary, it has no momentum. A body's motion is defined by its intensity as momentum. As the body's motion depends on both velocity and direction, momentum also depends on both. Momentum is a vector quantity. For instance, a baseball with a small mass thrown quickly can have the same momentum as a bowling ball with a big mass that is moving slowly. Another example is a big truck moving.

Mathematically,

p = mv

Momentum = Mass × Velocity

Its SI Unit is Kg.m.s⁻¹

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The current theory of the structure of the
Earth, called plate tectonics, tells us that the
continents are in constant motion.
Assume that the North American continent
can be represented by a slab of rock 5500 km
on a side and 29 km deep and that the rock
has an average mass density of 2960 kg/m3
.
The continent is moving at the rate of about
5 cm/year.What is the mass of the continent?
Answer in units of kg.What is the kinetic energy of the continent?
Answer in units of J.A jogger (of mass 73 kg) has the same kinetic
energy as that of the continent.
What would his speed be?
Answer in units of m/s.

Answers

Based on the data provided:

The mass of the continent is 2.596 * 10²¹ kgThe kinetic energy of the continent is 6525 J

What is the mass of the rock?

The mass of the rock is determined using the formula below:

Mass = density * volume

The density of the rock = 2960 kg/m³

The volume of the rock = area of side * depth of rock

Volume of the rock = 5.5 * 10⁶ m x 5.5 * 10⁶ m x 2.9 * 10⁴ m

Volume of the rock = 8.77 * 10¹⁷ m³

Mass of the rock = 8.77 * 10¹⁷ m³ * 2960 kg/m³

Mass of the rock = 2.596 * 10²¹ kg

B) The kinetic energy is found using the formula below:

Kinetic Energy = ½mv²

Kinetic Energy  = ½ x 2.596 * 10²¹ kg x (5.0 cm/year x 1m/100cm x 1yr/365 day x 1day/24hr x 1hr/3600s)²

Kinetic Energy = 6525 J

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How does earthing provides safety to electrical appliances?​

Answers

Answer:

The act of immediately discharging electrical energy into the Earth directly with the aid of a low-resistance wire is known as earthing. Electrical earthing is accomplished by attaching the equipment's non-current-carrying component or the supply system's neutral section to the ground.

Four reasons why it's crucial to ground electrical equipment:

1. Increased longevity of appliances: Grounding electrical appliances results in less stress on the equipment and a reduction in the exposure of the appliances to hazardous currents.

2. Eradication of fire risk: If there is a problem with the insulation, there may be a spark, which could cause a fire and damage to property. The risk of fire is decreased by grounding electrical equipment by sending leakage current from insulation faults to the ground.

3. Protection from electrical surges: Electrical surges, whether brought on by lightning or for other reasons, produce dangerously high voltage. All the hazardous electricity will flow to the ground rather than causing harm to the electrical system if your appliances or electrical system as a whole is grounded.

4. Voltage Stabilization: Ideally, the ground's potential is zero. Therefore, all electrical devices use the earth as a point of reference. Calculating the required potential for each electrical appliance would be challenging without a reference point.

Electrocution is the term for when electricity enters the body. Burns, respiratory failure, neurological effects, and heart failure are all results of high-current electric shock. It might even result in death. Therefore, in the event of an insulation fault, a safe path for the current to flow must be provided via earthing.

Explanation:

The Earth serves as an efficient pathway for the flow of electrons that escape the insulation because it is a good conductor of electricity. Additionally, the Earth's enormous size creates a pathway for the safe discharge of electric charge. No current escapes from a device that is properly grounded. In the event that the device develops an internal problem, this stops people from being shocked or electrocuted. Electronic equipment is stabilized by earthing. It shields appliances from over-current or excessive voltage. Earthing is another fire safety measure. Overvoltage can cause a device to spontaneously combust due to overheating.

A 6.25-gram bullet travelling at 365 m/s strikes and enters a 4.50-kg crate. The crate slides 0.15 m along a wood floor until it comes to rest.1. Find the friction force between the crate and the floor.

Answers

In order to determine the friction force, proceed as follow:

Take into account that total momentum of the system must conserve, then, you have:

m*v = (m + M)v'

where,

m: mass of the bullet = 6.25g = 0.00625kg

v: initial speed of the bullet = 365m/s

M: mass of the crate = 4.50kg

v': speed of both crate and bullet after the impact = ?

Solve the equation above for v', replace tha values of the other parameters and simplify:

[tex]\begin{gathered} v^{\prime}=\frac{mv}{m+M} \\ v^{\prime}=\frac{(0.00625kg)(365\frac{m}{s})}{0.00625\operatorname{kg}+4.50\operatorname{kg}} \\ v^{\prime}\approx0.506\frac{m}{s} \end{gathered}[/tex]

Now, consider that the work done by the friction force is given by:

W = Fr*d

where,

Fr: friction force = ?

d: distance = 0.15m

Furthermore, the work done is equal to:

W = 1/2*(m+M)v'^2 that is, the change in kinetic energy is equal to the work

Then, you can equal the previous expressions for W, solve for Fr, replace and simplify:

[tex]\begin{gathered} F_rd=\frac{1}{2}(m+M)v^{\prime}^2 \\ F_r=\frac{1}{2}\frac{(m+M)v^{\prime2}}{d} \\ F_r=\frac{1}{2}\frac{(0.00625kg+4.50kg)(0.506\frac{m}{s})^2}{0.15m} \\ F_r\approx3.846N \end{gathered}[/tex]

Now, take into account that the friction force can be written as follow:

Fr = μN = μ(m+M)g

where,

μ: coefficient of kinetic friction between crate and floor

g: gravitational acceleration constant = 9.8m/s^2

Solve the equatio above for μ, replace the values of the other parameters and simplify:

[tex]\begin{gathered} \mu=\frac{F_r}{(m+M)g} \\ \mu=\frac{3.846N}{(0.00625kg+4.50kg)(9.8\frac{m}{s^2})} \\ \mu\approx0.087 \end{gathered}[/tex]

Hence, the coefficient of kinetic friction is approximately 0.087

a collection of hydrogen atoms in the ground state is illuminated with ultraviolet light of wavelength 75.0 nm. find the kinetic energy of the emitted electrons.

Answers

The kinetic energy of the emitted electrons is 11.24 eV.

What is kinetic energy?

The following is the physics definition of kinetic energy:

The amount of effort that a moving object may accomplish is measured by its kinetic energy.

Kinetic energy is a scalar quantity that can only be fully explained by its magnitude.

Given parameters:

Wavelength of ultraviolet light : λ = 75.0 nm.

Energy of the ultraviolet light: E = hc/λ = 1242/75.0 eV= 22.84 eV

Potential energy of a electron of   hydrogen atoms in the ground state is -13.6 eV.

This energy of light supplies required potential energy to the emitted electron and kinetic energy of electron.

So,  the kinetic energy of the emitted electrons = 22.84 eV - 13.6 eV = 11.24 eV.

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Fully explain step-by-step Questions number one a,b,c,d solve for all required

Answers

(1) The equation is

[tex]v_2=v_1+a\Delta t[/tex]

For v_1,

[tex]\begin{gathered} v_2=v_1+a\Delta t \\ Subtract\text{ a}\Delta t\text{ on both sides.} \\ v_2-a\Delta t=v_1+a\Delta t-a\Delta t \\ v_2-a\Delta t=v_1 \end{gathered}[/tex]

For a,

[tex]\begin{gathered} v_2=v_1+a\Delta t \\ \text{Subtract v}_1\text{ on both sides} \\ v_2-v_1=v_1-v_1+a\Delta t \\ v_2-v_1=a\Delta t \\ \text{Divide }\Delta t\text{ on both sides.} \\ \frac{v_2-v_1}{\Delta t}=a\frac{\Delta t}{\Delta t} \\ \frac{v_2-v_1}{\Delta t}=a \end{gathered}[/tex]

For time,

[tex]\begin{gathered} v_2=v_1+a\Delta t \\ \text{Subtract v}_1\text{ on both sides} \\ v_2-v_1=v_1-v_1+a\Delta t \\ v_2-v_1=a\Delta t \\ \text{Divide }a\text{ on both sides.} \\ \frac{v_2-v_1}{a}=\frac{a}{a}\Delta t \\ \frac{v_2-v_1}{a}=\Delta t \end{gathered}[/tex]

When a block of steel at 90 degrees celsius is placed in a bucket of water at 30 degrees celsius, what happens?.

Answers

When a block of steel at 90 degrees Celsius is placed in a pail of water at 30 degrees Celsius, there is a differential in temperature.

What is the formula for temperature change?

Where T is the final temperature and Ti is the initial temperature, gives the change in temperature. Every substance has a unique specific heat that is measured in either K units depending on how T is expressed.

What causes changes in temperature?

The balance between energy entering and leaving the planet's system determines the temperature of Earth. The Earth warms as incoming solar energy is absorbed by the Earth system. Earth does not warm when solar energy is reflected back into space.

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