If a car is traveling at an average speed of 60 kilometers per hour, how long does it take to travel 12 kilometers?
a. 0.2 hour b. 0.5 hour c. 0.72 hour d. 5.0 hours

Answers

Answer 1

Answer: 0.2 hour

Explanation:

Speed = Distance / Time

Time = Distance / Speed

= 12/60

= 0.2 hour

Answer 2

The travel time for 12 kilometers at an average speed of 60 kilometers per hour, divide the distance by the speed, resulting in 0.2 hours, which is option (a).

If a car is traveling at an average speed of 60 kilometers per hour, to calculate how long it takes to travel a certain distance, you can use the formula: time = distance/speed.

To find out how long it takes to travel 12 kilometers:

Time = Distance/ Speed

= 12 km/60 km/h

= 0.2 hours

Therefore, the correct answer is (a) 0.2 hours.


Related Questions

Heated air moves from baseboard heaters to the rest of a room in a process called a radiation b conduction c insulation d convection

Answers

D. convection

Hope this helps :D

A remote control car is traveling at a velocity of 0.50 m/s when it hits a wall and comes to a stop in 0.050 seconds. What is the acceleration of the car?

Answers

Answer:0.50m/s divide by 0.050sec = 10m/s

Explanation: dividing the meter per second [m/s] by the second [s

Plate A and Plate B are both made of continental plate material where they touch. What will happen as the plates press together?

Answers

Answer:

Plate A and Plate B are both made of continental plate material where they touch. What will happen as the plates press together? The edges of both plates will be pushed upward as the plates continue to move toward each other.

Explanation:

When two continental plates collide with each other and they fold the rock at the boundary, lifting up, and leading to the formation of mountains and mountain ranges.

What are continental plates?

Tectonic plates are pieces of the crust of the earth and the uppermost mantle, together referred to as the lithosphere. The plates are around 100 km thick and consist of two types of material: oceanic crust and continental crust which generally have silicon and aluminum.

When two continental plates collide, the edge of one plate is thrust onto that of the other plate. The rocks in the lower slab undergo changes in their mineral content due to heat and pressure and will probably become exposed at the surface.

Rocks changed to new mineral assemblages due to changing temperatures and pressures are known as metamorphic. The regions of the crust undergo melting and subsequent extrusion of melt magma appears at the surface as volcanic rocks that rise to form granites at high crustal levels lead to the formation of mountains.

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A plastic-foam container used as a picnic cooler contains a block of ice at 0°C. If 225g of ice melts, how much heat passes through the walls of the container?

Answers

Final answer:

To determine the amount of heat passing through the walls of the container, we can calculate the rate of heat transfer through conduction using the formula q = k * A * (T2 - T1) / d. Once we have the rate of heat transfer, we can multiply it by the time to find the total heat transferred.

Explanation:

To determine how much heat passes through the walls of the container, we need to calculate the heat transfer through conduction. The rate of heat transfer can be calculated using the formula q = k * A * (T2 - T1) / d, where q is the heat transfer, k is the thermal conductivity of the material, A is the surface area, T2 is the temperature outside the container, T1 is the temperature inside the container, and d is the thickness of the walls. We can then multiply the rate of heat transfer by the time to find the total heat transferred. In this case, the temperature outside the container is 35.0°C and the temperature inside the container is 0°C.

Let's calculate the heat transfer rate:

q = k * A * (T2 - T1) / d

Assuming the thermal conductivity of the plastic-foam material is known and given, we can substitute the values into the equation and calculate the rate of heat transfer. Once we have the rate of heat transfer, we can multiply it by the time to find the total heat transferred.

A motorcycle is traveling along a highway at 26 m/s. How far does the motorcycle travel in 15 s?​

Answers

26 m/s for fifteen seconds. distance = rate times time, so distance = 26 m/s * 15 seconds. this gives you distance = 390 meters.

The total distance travelled will be 390 m.

We have a motorcycle travelling on a Highway.

We have to find the distance travelled by the motorcycle in 15 seconds.

What is distance ?

The distance covered by the body moving with speed 's' in time 't' is given by the relation -

Distance (d) = s x t

According to the question -

Average speed = s = 26 m/s

Time = t = 15 s

Distance = s x t = 26 x 15 = 390 m

Therefore, the total distance travelled will be 390 m.

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A cart rolling down an incline for 5.0 seconds has an acceleration of 4.0 m/s .If the cart has an initial speed of of 2.0 m/s ,what’s its final speed.

Answers

Applying

v=u+a.t

(all the symbols are bearing their conventional meaning)

Here,u=2ms−1,t=5,a=4ms−2

So,v=2+4⋅5=22ms−1

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Answer:

22m/s

Explanation:

V = u + at

= 2 + ( 4x5)

= 2 + 20

= 22m/s

The graph below shows the force required to stretch a spring various distances. Review the graph below.

A graph of Force versus Elongation. Elongation (m) is on the x axis and Force (N) is on the y axis. A straight line passes through the points 0 comma 0 and 10 comma 15.

What is the best approximate value for the elastic potential energy (EPE) of the spring elongated by 7.0 meters?

1.5 J
11 J
37 J
74 J

Answers

Answer:

37 J

Explanation:

Given:

A graph of force versus elongation in which a line passes through the points (0, 0) and (10, 15).

The x-axis represents elongation and y-axis represents force.

Elongation (x) = 7.0 m

Now, we know that the slope of a line of force versus elongation graph is the value of the spring constant.

Therefore, finding the slope of the line passing through (0, 0) and (10, 15), we get:

[tex]k=\frac{15-0}{10-0}=1.5\ N/m[/tex]

Therefore, the spring constant (k) = 1.5 N/m.

Now, the elastic potential energy (EPE) of the spring is given as:

[tex]EPE=\frac{1}{2}kx^2[/tex]

Plug in 1.5 for 'k' and 7.0 for 'x'. Solve for EPE.

[tex]EPE=\frac{1}{2}\times 1.5\times (7.0)^2\\\\EPE=\frac{1.5\times 49}{2}\\\\EPE=36.75\approx 37\ J[/tex]

Therefore, the best approximate value for the elastic potential energy (EPE) of the spring elongated by 7.0 meters is 37 J.

What is the fuel of an aeroplane.?

Answers

Answer:  Jet fuel

Explanation:

Jet fuel is a clear to straw-colored fuel, based on either an unleaded kerosene (Jet A-1), or a naphtha-kerosene blend (Jet B). Similar to diesel fuel, it can be used in either compression ignition engines or turbine engines.

Answer:

the fuel of an aeroplane is called gasoline

Sally and Conrad were arguing over the difference between a transverse wave and a longitudinal wave. Sally said that mechanical waves could be either transverse or longitudinal. Conrad said that sound waves were longitudinal and not transverse. Who is correct and why?
Group of answer choices

Neither are correct.

Only Conrad is correct because sound waves are not transverse waves.

Only Sally is correct because longitudinal waves and transverse waves are mechanical waves.

Both are correct since sound waves are mechanical waves.

Answers

Both are correct since sound waves are mechanical waves.

Option: D.

Explanation:

A wave is a recurring event that transfers energy through vibrations. It caused by the disturbance movement in a medium. The medium can be solid, liquid or gas and it can come in many forms and shapes.  

If the particles in the medium moved in the perpendicular direction to the wave is called transverse wave and if those particles moved in the parallel direction to the wave then it is a longitudinal wave.

Mechanical waves require a medium to transfer that energy. Moreover, based on the medium properties ( inertial and elastic) it can be changed as either transverse or longitude.  

In, sound wave the particles will move in the parallel direction to the wave. Also, it comes under mechanical wave since it requires an air medium to travel.  

A new ride being built at an amusement park includes a vertical drop of 71.6 meters. Starting from rest the ride vertically drops that distance before the track curves forward. If the velocity at the bottom of the drop is 10.0 m/s and the mass of the cart and passengers is 3,5x10^4kg, how much potential energy was converted into thermal energy? 2.3x10^7, 2.6x10^7, 4.3x107, 6.7x10^7

Answers

Answer:

We can conclude 2.3x10^7 J was converted to thermal energy

Explanation:

Energy Conservation

According to the law of conservation of energy, the total energy of an isolated system must be constant. If some kind of energy is 'lost', we know it was transformed into another type.

Let's check the conditions of the problem. The ride vertically drops a distance of 71.6 m starting from rest, and at the bottom of the drop, its speed is 10 m/s. Knowing the mass of the cart plus passengers is 3.5X10^4 kg, we compute the total energy at the top of the drop.

[tex]E=U+K[/tex]

Where E is the total energy (which must be conserved) at the top of the drop, U is the gravitational potential energy and K is the kinetic energy. We use the equations for each:

[tex]U=m.g.h[/tex]

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

[tex]\displaystyle E=m.g.h+\frac{mv^2}{2}[/tex]

At the top, the speed is 0, thus

[tex]\displaystyle E=m.g.h=(35000)(9.8)(71.6)=2.5X10^7\ J[/tex]

Now we compute the 'total' energy at the bottom (quoted because we know there is some mechanical energy loss in the drop)

[tex]\displaystyle E'=m.g.h'+\frac{mv'^2}{2}[/tex]

This time h'=0 and v=10 m/s, thus

[tex]\displaystyle E'=\frac{(35000)10^2}{2}=1.8x10^6\ J[/tex]

The mechanical energy at the top and the bottom are not the same, thus we can know part of it was converted to heat or thermal energy. We compute the difference

[tex]2.5x10^7\ J-1.8x10^6\ J=2.3x10^7\ J[/tex]

We can conclude 2.3x10^7 J was converted to thermal energy

A wave with a high pitch and a quiet sound will have
Group of answer choices

a short wavelength and a low amplitude

a short wavelength and a high amplitude

a big wavelength and a high amplitude

a big wavelength and a low amplitude

Answers

Answer:

A)- SHORT WAVELENGTH AND LOW AMPLITUDE.

Explanation:

high pitch sound waves possess low wavelength and

quiet sound means that amplitue of the sound wave is low.

therefore option A matches the answer most.

Answer:

A)- SHORT WAVELENGTH AND LOW AMPLITUDE.

Explanation:

high pitch sound waves possess low wavelength and

quiet sound means that amplitue of the sound wave is low.

therefore option A matches the answer most.

What is the mass of a baseball thrown at 25 m/s resulting in a momentum of 10 kg·m/s?

Answers

Answer: m = 0.4 kg

Explanation: Momentum is the product of mass and velocity also expressed in this equation:

p = m x v

Derive to find m

m = p / v

= 10 kg•m/s / 25 m/s

= 0.4 kg

The mass of baseball is 0.4 kg.

Given data:

The velocity of the baseball is, v = 25 m/s.

The resulting momentum of baseball is, p = 10 kg-m/s.

The momentum of any object is defined as the impact produced by the applied force. Hence it is expressed at the product of mass and velocity. The expression for the momentum is,

[tex]p = mv[/tex]

here, m is the mass of baseball.

Solving as,

[tex]10 = m \times 25\\\\m = 0.4 \;\rm kg[/tex]

Thus, we can conclude that the mass of baseball is 0.4 kg.

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Picture attached please help! 2 different questions!

Answers

Wave A would have higher amplitude

Hope this helps :D

Wave A has higher amplitude because it is stretched out and the energy of the sound wave is loud

P.S. hope this is helpful

Explanation:

In which of these situations, is mechanical energy being conserved? (Neglect, air resistance, friction and breaking) Check all that apply.

Child on a swing


Pendulum


Bow and Arrow


Roller Coaster

Answers

Mechanical energy is conserved in all the four situations

Explanation:

The law of conservation of energy states that in absence of non-conservative forces (such as air resistance of friction), the mechanical energy of an object is conserved.

The mechanical energy of an object is the sum of its potential energy (PE) and its kinetic energy (KE):

E = PE + KE = const.

In all the situations described, there are no air resistance or friction acting on the system, therefore mechanical energy is conserved in all the four situations described.

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4. A ball has 17J of kinetic energy (KE) and its mechanical energy is 25J. What is the speed of the
ball? The ball has a mass of 3.2 kg.

Answers

Answer:3.25914099112

Explanation:

Do you have the formula? I pretty sure this is correct but I’m not sure

Speed of ball is 3.2 m/s (Approx.)

Given that;

Kinetic energy (KE) = 17 J

Mechanical energy = 25 J

Mass of ball = 3.2 kg

Find:

Speed of ball

Computation:

Kinetic energy (KE) = [1/2][mv²]

17 = [1/2][(3.2)v²]

17 = [1.6][v²]

v² = 17 / 1.6

v² = 10.625

v = √10.625

v = 3.2596

Speed of ball (v) = 3.2 m/s (Approx.)

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AS AIRPLANE WENT FROM 120 m/s to 180 m/s in 4.0 seconds what is the acceleration

Answers

Answer:15metre per second squ

I

Explanation:

acceleration=(final velocity-initial velocity)÷t

acceleration=(180-120)÷4

acceleration=60÷4

acceleration=15 metre per second square

Human impact on ecosystems would most likely lead to secondary succession over primary succession.
Please select the best answer from the choices provided
T
F

Answers

Answer:

True

Explanation:

The given statement is true.

Secondary succession refers to the series of community changes that take place on previously established but damaged or disturbed habitat.

It helps in reviving or re-establishment of the similar ecosystem that previously existed.

It starts by a disturbing event such as natural disaster (hurricane, tornado, earthquake et cetera) and human interventions (deforestation, accidental forest fires caused by human activities, habitat destruction due to mining or dam construction et cetera) which greatly reduce the ecosystem already established.

Final answer:

Human impact on ecosystems often leads to secondary succession rather than primary succession.

Explanation:

In ecosystems, primary succession occurs in areas that were previously devoid of life, such as newly formed volcanic islands or bare rock surfaces. Secondary succession, on the other hand, occurs in areas that have been disturbed but still retain some soil or remnants of the original community.

Human impact on ecosystems often leads to disturbances such as deforestation, fires, or agriculture. These disturbances create conditions for secondary succession rather than primary succession, as there is generally still some soil and seed bank present.

For example, if a forest is clear-cut, the remaining soil and seeds in the area can allow for the regrowth of vegetation, leading to secondary succession.

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If the sine of an angle is 4/7 what is the cosine of its complement.

Answers

Answer: 0.57

Explanation:

Let's begin by explaining that two angles are complementary when they sum is [tex]90\°[/tex]:

[tex]\theta + \alpha=90\°[/tex]

Having this clear, let's find [tex]\theta[/tex] from the following trigonometric function:

[tex]sin \theta=\frac{4}{7}[/tex]

[tex]\theta=sin^{-1} (\frac{4}{7})=34.84 \°[/tex]

Now that we have the value of [tex]\theta[/tex], let's find [tex]\alpha[/tex]:

[tex]\alpha=90\°-\theta[/tex]

[tex]\alpha=90\°-34.84 \°[/tex]

[tex]\alpha=55.15\°[/tex] This is the complement of angle [tex]\theta[/tex]

Then, the cosine of the complement [tex]\alpha[/tex] is:

[tex]cos \alpha=cos(55.15\°)[/tex]

[tex]cos \alpha=0.57[/tex] This is the answer

What is the relationship between the masses of the objects and the gravitational force between them?​

Answers

Answer:

Gravitational force is directly proportional to the masses of the objects.

Explanation:

if a mint is on a turn table that is rotating at 34 RPM’s, and is 23 (cm) away from the center of the record, what is the Tangential Acceleration?

Answers

Answer:

The tangential acceleration is zero

Explanation:

Tangential Acceleration

It's a measure of how fast is the tangential velocity changing when the object has rotational motion. It's perpendicular to the centripetal acceleration and equal to the product of the angular acceleration by the radius of rotation. In a uniform circular motion, the angular speed is constant, i.e. the angular acceleration is zero.

If the tangential acceleration was different from zero, the rotating object would change its angular and tangential velocities.

The turntable is rotating at a constant speed, so, regardless of the position of the mint, its tangential acceleration is zero


The Carbon-Oxygen cycle is regulated by three great reservoirs _____.
organisms
the atmosphere
the solar system
oceans
rocks.


multiple choice

Answers

The Carbon-Oxygen cycle is regulated by three great reservoirs "Organisms, Oceans and Rocks".

Answer: Option A, D and E

Explanation:

The steps of the carbon and oxygen cycle are:

In a process known as photosynthesis, plants consume carbon dioxide. The plants give off oxygen as a waste product during photosynthesis,thus respiration occur. The natural combustion processes are "volcanic eruptions" responsible for releasing carbon dioxide into the atmosphere due to burning, thus combustion occurs. After the death of unicellular or multicellular organism, finally decomposition take place.

The atmosphere is the reservoir and regulated by the terrestrial biosphere freshwater bodies and non-living organic material like soil carbon, the sediments like fossil fuels and the oceans which involve dissolved inorganic carbon also living and non-living marine biota.

Answer:

a

d

e

Explanation:

A test taker makes an estimate for a 30–second time interval. The estimate is 34.5 seconds. What is the percent error in this example?

Answers

Answer:

Its a 30 second interval

Explanation:

Which two Bible verses state that Jesus Christ holds together everything in the universe by His power?

John 3:16

Colossians 1:17

Psalm 119:56

Hebrews 13

Answers

Answer:

Colossians 1:17

Explanation:

He is before all things, and in him all things hold together.

Answer:

John 3:16

Colossians 1:17

Explanation:

Please help I don't know how to answer these questions!
discuss how energy conservation applies to a pendulum.

Where is the potential energy the most?
Where is the potential energy the least?
Where is kinetic energy the most?
Where is kinetic energy the least?

Answers

1) The potential energy is the most at the highest position and the least at the equilibrium position

2) The kinetic energy is the most at the equilibrium position and  the least at the highest position

Explanation:

1)

The potential energy of an object is the energy possessed by the object due to its position in a gravitational field; mathematically, it is given by

[tex]PE=mgh[/tex]

where

m is the mass of the object

g is the strength of the gravitational field

h is the height of the object relative to the ground

For the pendulum in this problem, m is the mass of the bob, and h is the height of the above relative to the ground. We see from the formula that the potential energy is directly proportional to the height:

[tex]PE\propto h[/tex]

This means that:

The potential energy is the most when the bob is at the highest positionThe potential energy is the least when the bob is at the equilibrium position,  which is the lowest position

2)

We can solve this part by applying the law of conservation of energy: in fact, the total mechanical energy of the pendulum (sum of potential and kinetic energy) is constant at any time during the motion,

[tex]E=KE+PE=const.[/tex]

where KE is the kinetic energy.

From the equation above, we observe that:

When PE is maximum, KE must be at minimumWhen PE is minimum, KE must be maximum

Therefore, this implies that:

The kinetic energy is the most when the potential energy is the least, i.e. at the equilibrium positionThe kinetic energy is the least when the potential energy is the most, i.e. at the highest position

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The amount of gravity between 1kg of lead and Earth is ___ the amount of gravity between 1kg of marshmallows and Earth.

a. greater than
b. less than
c. the same as
d. none of the above

Answers

The amount of gravity between 1 kg of lead and Earth is the same as the amount of gravity between 1 kg of marshmallows and Earth.

Answer: Option C

Explanation:

According to universal law of gravity, the gravitational force is directly proportionate to the product of masses of the interacting objects and inversely proportionate to its distance squared between them.

Since the mass of Earth is very high compared to the mass of the other objects, be it lead or marshmallows, and the distance will be mostly same. Thus, there will be no change in the amount of gravity acting between them. Thus, the amount of gravity between 1 kg of lead and Earth is the same as the amount of gravity between 1 kg of marshmallows and Earth.

Final answer:

The amount of gravity between 1kg of lead and the Earth is the same as between 1kg of marshmallows and the Earth. The amount of gravity depends on the mass and distance, not on the material of the objects. This is based on Newton's law of universal gravitation.

Explanation:

The amount of gravity that the Earth exerts on an object doesn't depend on the material of the object, but it does depend on the mass. Since both the 1kg of lead and the 1kg of marshmallows have the same mass, then the amount of gravity between them and the Earth is the same.

This principle is reflected in Newton's universal law of gravitation, expressed as F=G*(m1*m2)/r^2, where F is the force of gravity, m1 and m2 are the masses of the two objects, r is the distance between their centers, and G is the gravitational constant. Regardless of whether the object is made of lead or marshmallows, if the mass remains the same as 1kg, then the gravitational force, hence the gravity between the Earth and the object, will also be the same.

So, to answer your question, the amount of gravity between 1kg of lead and Earth is the same as the amount of gravity between 1kg of marshmallows and Earth.

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why is it important for digestive system functions that mucous membranes can secrete and absorb susbstances?

Answers

Answer:

It pushes food through the GI tract. The inside of GI tract is lined with mucous membranes. Mucous membranes are moist tissues that can secrete and absorb substances. The ability to secrete and absorb substances is necessary for the functions of the digestive system.

Explanation:

Can I have brainliest?

Final answer:

Mucous membranes in the digestive system secrete mucus and absorb nutrients, which is vital for its functioning.

Explanation:

The mucous membranes lining the digestive system have the ability to secrete and absorb substances, which is important for the functioning of the digestive system.

They secrete mucus that lubricates and protects the digestive tract, preventing damage from harsh stomach acids and facilitating the smooth movement of food.

They also absorb nutrients and water from the digested food, allowing the body to efficiently extract energy and essential substances.

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Two cans of spam with identical masses collide. Before the collision, the hickory smoke flavor is moving to the left at 4m/s while the hot and spicy flavor is moving to the right at 2 m/s. After the collision, the hickory smoke is moving to the left at 1.2 m/s. What is their final velocity of the hot and spicy? Is this collision elastic?

Answers

1) Final velocity: 0.8 m/s to the left

2) This is not an elastic collision

Explanation:

1)

We can solve this problem by applying the law of conservation of momentum: in fact, if there are no external forces, the total momentum of the two cans must be conserved before and after the collision.

Mathematically:

[tex]p_i = p_f\\mu_1 + mu_2 = mv_1 + mv_2[/tex]  

where:  

m is the mass of each can

[tex]u_1 = -4 m/s[/tex] is the initial velocity of the first can (we take to the left as negative direction)

[tex]u_2 = 2 m/s[/tex] is the initial velocity of the second can (to the right, positive)

[tex]v_1 = -1.2 m/s[/tex] is the final velocity of the first can (the hickory one)

[tex]v_2[/tex] is the final velocity of the 2nd can (the hot and spicy one)

Re-arranging the equation and solving for v2, we find:  

[tex]v_2 = u_1 + u_2 - v_1 = (-4) + (+2) - (-1.2)=-0.8 m/s[/tex]

So, the final velocity of the hot and spicy can is 0.8 m/s to the left.

2)

There are two types of collisions in physics:

Elastic collision: the total kinetic energy is conservedInelastic  collision: the total kinetic energy is not conserved

In order to check if this collision is elastic or not, we need to compare the kinetic energy before the collision to the kinetic energy after the collision.

Before the collision:

[tex]K_i = \frac{1}{2}mu_1^2 + \frac{1}{2}mu_2^2 = \frac{1}{2}m(-4)^2+\frac{1}{2}m(2)^2=10m[/tex]

After the collision:

[tex]K_f = \frac{1}{2}mv_1^2 + \frac{1}{2}mv_2^2 = \frac{1}{2}m(-1.2)^2+\frac{1}{2}m(-0.8)^2=1.04m[/tex]

We see that the final kinetic energy is less than the initial kinetic energy: part of the kinetic energy has been converted into other forms of energy during the collision, therefore this is NOT an elastic collision.

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What does the electron do in an atom?

Answers

Answer:

Electrons are the negatively charged particles of an atom.Together,all of the electrons of a atom create a negitive charge that balances the positive charge of the protons

Explanation:

Which forces affect a baseball's speed as it rises after being hit by a bat?
A. net force and drag
B. applied force and net force
C. gravity and drag
D. applied force and gravity

Answers

C) Gravity and drag

Explanation:

Here we are considering the ball after it has been hit by a bat.

When the ball is in the air, there are only two forces acting on it:

The weight of the ball (force of gravity), acting downward. Its magnitude is given by [tex]F_g = mg[/tex], where m is the mass of the ball and g is the acceleration of gravityThe air drag, which is the resistance of the air on the ball, acting downward as well (it acts against the direction of motion of the ball). The magnitude of this force is proportional to the speed of the ball

There is no applied force on the ball, since that one only acts on the ball when it is in contact with the bat - however, when the ball is in the air, the applied force no longer acts on the ball.

Therefore, the correct answer is

C. gravity and drag

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Answer:

C) Gravity and drag

Explanation:

Here we are considering the ball after it has been hit by a bat.

When the ball is in the air, there are only two forces acting on it:

The weight of the ball (force of gravity), acting downward. Its magnitude is given by , where m is the mass of the ball and g is the acceleration of gravity

The air drag, which is the resistance of the air on the ball, acting downward as well (it acts against the direction of motion of the ball). The magnitude of this force is proportional to the speed of the ball

There is no applied force on the ball, since that one only acts on the ball when it is in contact with the bat - however, when the ball is in the air, the applied force no longer acts on the ball.

Therefore, the correct answer is

C. gravity and drag

A ball is being thrown straight upward and rises to a maximum height of 12.0m above its launch point. At what height above it’s launch point has the speed of the ball decreased to one-half of its initial value

Answers

Final answer:

To determine the height at which the speed of the ball decreases to one-half of its initial value, we need to consider the vertical motion of the ball. By finding the time it takes for the ball to reach its maximum height and the time it takes for the speed to decrease on its way down, we can calculate the height above the launch point.

Explanation:

The question is asking at what height above its launch point the speed of the ball decreases to one-half of its initial value. To determine this, we need to consider the vertical motion of the ball. Let's assume the launch point is at a height of 0 m.

Using the given information, we can find the time it takes for the ball to reach its maximum height using Equation 4.22. Then, we can calculate the time it takes for the speed of the ball to decrease to one-half of its initial value by finding the time it takes for the ball to reach the same height on its way down.

By considering the time it takes for the ball to reach its maximum height and the time it takes for the speed to decrease, we can determine the height above the launch point at which the speed is one-half of its initial value.

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