what is the vertical component of the velocity just before the stone hits the ground, in meters per second?

Answers

Answer 1

The vertical component of velocity shortly before the stone reaches the ground equals the original vertical velocity ie, v m/s

The vertical component of an object's velocity right before impact can be computed using equations of motion. If we examine a gravity-affected item with a beginning velocity (v0) and no air resistance, its vertical velocity (v) may be given by the equation:

v = v0 - gt

where g is the gravitational acceleration (9.8 m/s2) and t is the time since the item was launched.

To calculate the vertical component of velocity immediately before the stone reaches the ground, we must first compute the time t required for the stone to reach the ground. The following equation may be used to compute this:

t = (v0 - v) / g

By reintroducing the value of t into the first equation, we obtain:

v = v0 - gt = v0 - g((v0 - v) / g) = v0 - (v0 - v) = v

It is crucial to note that this estimate assumes no air resistance and that the object is dropped from a height far lower than the radius of the Earth, allowing the curvature of the Earth to be ignored. In fact, air resistance may have a major impact on an object's velocity, particularly as it approaches the earth.

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Related Questions

A race car goes around a level, circular track with a diameter of 1.00 km at a constant speed of 76 km/h. What is the car's centripetal acceleration in m/s2?
m/s2

Answers

Answer:

0.89 m/s^2

Explanation:

Here we are given that,

diameter= 1km speed = 76 km/hacceleration= ?

As we know that in case of uniform circular motion , centripetal acceleration is given by,

[tex]\implies a_c =\dfrac{v^2}{r} \\[/tex]

And here ,

[tex]\implies v = 76km/h =\dfrac{5}{18}\times 76\ m/s \\[/tex]

[tex]\implies v = 21.1 \ m/s \\[/tex]

Also ,

[tex]\implies r =\dfrac{d}{2} \\[/tex]

[tex]\implies r = 0.5km =\boxed{500m} \\[/tex]

Now substitute the respective values,

[tex]\implies a_c = \dfrac{21.1\times 21.1 }{500} m/s^2 \\[/tex]

[tex]\implies\underline{\underline{ a_c = 0.89\ m/s^2}} \\[/tex]

and we are done!

if a curve is banked to accommodate cars traveling at 15 m/s, what will happen during an ice storm (no friction with the road) to a car moving at a slower speed?

Answers

A automobile will have trouble while going through a curve when there is little friction between the car's tyres and the road during an ice storm and the banking of the road allow vehicles to move at 15 m/s.

The lack of friction will still cause the car to tend to slide towards the outside of the curve even though it is going more slowly. If the car slides off the road or into oncoming traffic, it might be very dangerous.

When the surface of a curving road is inclined towards the horizontal to generate the required centripetal force for a safe turn, the phenomenon known as "banking of roads" takes place.

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2.2 Forces of 9 N acting horizontally to the right and 5 N in the opposite direction; 12 N acting vertically upwards and 6 N vertically downwards. Forces of 75 N acting vertically downwards and 50 N vertically upwards;
2.3 Forces of 75N acting vertically downwards and 50N vertically downwards;45 N horizontally towards the right and 23N in the opposite direction ​

Answers

(2.2 ) The resultant of the forces are 19 N downwards and 4 N to the right.

(2.3 ) The resultant of the forces are 125 N downwards and 22 N to the right.

What is the resultant force on the object?

The resultant force on the object is the sum of all the forces acting on the object in a particular direction.

for the first given forces,

sum of the vertical forces = 12 N + 50 N - 6 N - 75 N  = 19 N downwards

sum of horizontal forces = 9 N - 5 N = 4 N to the right

for the second given forces,

sum of the vertical forces = -75 N - 50 N = 125 N  downwards

sum of horizontal forces = 45 N - 23 N = 22 N to the right

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The complete question is below:

2.2 Forces of 9 N acting horizontally to the right and 5 N in the opposite direction; 12 N acting vertically upwards and 6 N vertically downwards. Forces of 75 N acting vertically downwards and 50 N vertically upwards;

2.3 Forces of 75N acting vertically downwards and 50N vertically downwards;45 N horizontally towards the right and 23N in the opposite direction . find the resultant of each forces

For question #1, what is the angle (magnitude only) of the resultant force?

Answers

The resultant force subtracts the magnitude of the smaller force from the magnitude of the larger force. The direction of the resultant force is in the same direction as the larger force.

In physics, the resultant force is the net force acting on an object, which takes into account all the individual forces acting on the object. When multiple forces act on an object, they can either reinforce or oppose each other. The resultant force is the sum of all these individual forces, taking into account both their magnitudes and directions.

Mathematically, the resultant force can be found by using vector addition. Each force acting on an object can be represented as a vector with its magnitude and direction, and the resultant force is the vector sum of all these forces. If the resultant force is non-zero, it will cause the object to accelerate in the direction of the force.

The concept of the resultant force is important in many areas of physics, including mechanics, electromagnetism, and fluid dynamics. Understanding the resultant force is crucial in predicting and explaining the motion of objects, and it is a fundamental concept in the study of physics.

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an electric field is produced by the very long, uniformly charged rod drawn above. if the strength of the electric field is e1 at a distance r1 from the axis of the rod, at what distance from the axis is the field strength e1/4?

Answers

If the strength of the electric field is e1 at a distance r1 from the axis of the rod,  R2 = 4r1 distance from the axis is the field strength e1/4.

Electric field strength = F / q

we will assume the rod has an infinite length

For an infinitely charged rod

E ∝ 1/ r

considering two electric fields E1 and E2 at two different locations as described in the question

E1/E2 = r1/r2 ----- ( 2 )

Calculate for r2 when E2 = E1/4

back to equation 2

E1 / (E1/4) = r1 / r2

∴ r2 = 4r1

Distance is a numerical or on occasion qualitative size of ways a long way aside from objects or points. In physics or ordinary utilization, the distance may additionally confer with a bodily duration or an estimation primarily based on different standards (e.g. "two counties over"). for the reason that spatial cognition is a wealthy supply of conceptual metaphors in human ideas, the term is likewise regularly used metaphorically to mean size of the quantity of difference between similar items (consisting of statistical distance among chance distributions or edit distance among strings of text) or a diploma of separation (as exemplified with the aid of distance between human beings in a social community).

Maximum such notions of distance, each bodily and metaphorical, are formalized in mathematics through the use of the belief of a metric area. In the social sciences, distance can consult with a qualitative size of separation, such as social distance or mental distance.

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A man expends energy at the rate of 200J/s in ascending a vertical height of 44m. If his mass is 75Kg,determine the time taken​

Answers

Answer:

165s

Explanation:

see attachment.

Hope this helps!

discuss the significance of the law of energy conservation in relation to the flashlight as well as express some new energy sources that are being researched for the near future.

Answers

The law of energy conservation states that energy can be neither created nor destroyed, only converted from one form to another. This law is particularly relevant to the flashlight, as it explains why the flashlight needs a power source in order to operate. Without a power source, the flashlight cannot convert electrical energy into light energy.

In terms of new energy sources, research into renewable sources of energy such as solar, wind, and geothermal is becoming increasingly popular. Solar power is the most promising of these sources, as it can provide a clean and renewable form of energy with no emissions. Wind energy is also becoming more popular, as the technology for harnessing wind energy has improved significantly in recent years.

Geothermal energy is also being explored as a potential source of renewable energy, as it has the potential to provide a steady and reliable form of energy. Additionally, research into energy conservation technologies such as LED lighting and energy efficient appliances is being conducted in order to reduce energy consumption and increase energy efficiency.

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a car accelerates from 10 m/s to 30 m/s at a rate of 3.00 m/s2. how far does the car travel while accelerating?

Answers

The vehicle travels 126.7 meters while increasing its speed by 3.00 m/s2 from 10 m/s to 30 m/s.

What is speed?

Speed is a scalar variable that quantifies how quickly an object's position changes in a particular direction. It is a way to gauge how far you've come in a certain amount of time.

How do you determine it?

The following equation can be used to determine how far the car drove while accelerating:

d = v0 * t + 0.5 * a * t^2

where d is the distance traveled, v0 is the starting speed (10 m/s in this example), a is the acceleration (3.00 m/s2), and t is the amount of time that has passed.

In order to calculate the passing of time, we can apply the equation:

v = v0 + a * t

Considering that v = 30 m/s and v0 = 10 m/s, calculate t as follows:

30 = 10 + a * t

t = (30 - 10) / a = 20 / 3 = 6.67 s

Adding the values for v0, a, and t to the first equation yields the following results:

d = 10 * 6.67 + 0.5 * 3.00 * 6.67^2

   = 66.7 + 60 = 126.7 m

As a result, the vehicle travels 126.7 meters while increasing its speed by 3.00 m/s2 from 10 m/s to 30 m/s.

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You are looking at two bars made of solid gold. The first one has a temperature of 20 °C, while the second one has a temperature of 80 °C. Gold has a melting point of 1948 °C. Which of the following statements are correct?



I The particles in the 20 °C bar are vibrating faster than the particles in the 80 °C bar.
II The particles in both bars are moving around randomly.
III The particles in the 80 °C bar have a higher average kinetic energy.

Group of answer choices

I, II, and III

I and III only

I only

III only

Answers

The particles in the 80 °C bar are vibrating faster than the particles in the 20 °C bar.

What is solid?

One of the four basic states of matter is solid (the others being liquid, gas, and plasma). The least energetic molecules are those that are tightly packed together and make up solids. A solid is distinguished by its structural rigidity and resistance to external forces.

As the temperature of a solid increases, the vibration of atoms of solid bar increases. Hence, the particles in the 80 °C bar are vibrating faster than the particles in the 20 °C bar.

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Identify the color of the starch-iodine complex.
O Pink color
O Purple color
O Brown color
Black color

Answers

Color of starch iodine complex is blue-black

a small mass m on a string is rotating without friction in a circle. what happens to the tangential velocity of the object

Answers

When a small mass m on a string is rotating without friction in a circle, the tangential velocity of the object increases.

How does tangential velocity affect circular motion?

Tangential velocity is the linear speed of any object that moving along a circular path. A point on the outside edge of a turntable moves a larger distance in one complete rotation than a point near to the center. In uniform circular motion, the direction of the velocity changes continually, so there is always an associated acceleration, although the speed might be constant.

In this case, work is done on the object, and so its kinetic energy increased. Thus, the tangential velocity had to increase. Another way to consider the problem is that kinetic energy (KE) = L2 / 2I. Thus, the kinetic energy (and so the speed) had to increase. Translational kinetic energy = 1/2Mv cm², so if kinetic energy (KE) increases, so must V (velocity).

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if you increase the temperature of a given amount of an ideal gas, what happens to the gas pressure p and the volume v of the gas?

Answers

According to Gay Lussac's Law, a gas's pressure is precisely proportional to its Kelvin temperature when kept at a constant volume.The molecules of a gas receive more energ

What happens to an ideal gas's volume as the temperature rises?

These instances of how temperature can change a confined gas's volume while maintaining a constant pressure are typical:The volume rises with rising temperature and falls with falling temperature.

when an ideal gas's temperature is raised by?

Since internal energy was directly proportional to the temperature, an adiabatic compression raises the temperature of the an ideal gas.

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You kick a soccer with an initial vertical velocity of 64.1 m/s. How high will it be after 4.5 s?

Answers

The maximum height travelled by the ball is 189.23 m.

What is the maximum height travelled by the ball?

The maximum height travelled by the ball is calculated by applying the following kinematic equation as shown below.

h = vt + ¹/₂gt²

where;

v is the initial vertical velocityg is acceleration due to gravityt is the time of motion

h = ( 64.1 m/s x 4.5 s )  -  ¹/₂ ( 9.8 m/s² ) ( 4.5 s )²

h = 189.23 m

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a hiker walks 6.7 miles to the east in 5.1 hours then turns around and walks 1.1 miles to the west in 1.0 hours. what was her average velocity during the trip?

Answers

To find the average velocity of the hiker during the trip, we need to find the total distance covered and the total time taken 1.28 mph

First, let's find the total distance covered:

6.7 miles to the east

1.1 miles to the west

So, the total distance covered is

6.7 + 1.1 = 7.8 miles.

Next, let's find the total time taken:

5.1 hours to the east

1.0 hours to the west

So, the total time taken is

5.1 + 1.0

= 6.1 hours.

Finally, to find the average velocity, we divide the total distance by the total time:

7.8 miles / 6.1 hours

= 1.28 mph

So, the average velocity of the hiker during the trip was 1.28 mph.

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What is the threshold velocity vthreshold(water) (i. E. , the minimum velocity) for creating Cherenkov light from a charged particle as it travels through water (which has an index of refraction of n=1. 33)?

Answers

The threshold velocity (v_threshold) for creating Cherenkov light from a charged particle traveling through water (n=1.33) is  225000000 m/s.

It can be calculated using the formula:

v_threshold = c/n,

where c is the speed of light in a vacuum (approx. 299792458 m/s).

Therefore, v_threshold = 299792458 m/s / 1.33 = 225000000 m/s.

Cherenkov radiation is the emission of electromagnetic radiation when a charged particle travels through a dielectric medium at a velocity greater than the phase velocity of light in that medium.

The Cherenkov effect occurs because when a charged particle moves through a medium, it causes the electromagnetic field in the medium to oscillate.

If the velocity of the charged particle is greater than the phase velocity of light in the medium, the oscillating electromagnetic field creates a cone of radiation known as Cherenkov radiation.

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the ceiling of an arena is 19 m above the floor. what is the minimum speed that a thrown ball would need to just reach the ceiling?

Answers

The minimum speed that  a ball should be thrown  to reach ceiling is 19.29m/sec.

In regular use and in kinematics, the speed of an article is the extent of the difference in its situation over the long run or the greatness of the difference in its position per unit of time; it is hence a scalar amount. The typical speed of an item in a time period is the distance gone by the article partitioned by the length of the stretch; the immediate speed is the constraint of the typical speed as the span of the time stretch methodologies zero. Speed isn't equivalent to velocity.

We know that to to find the minimum speed at the base location,we need to use third equation of motion which is

v²-u²=2as

Here,v is final velocity which will be zero,u=?,a=9.8m/sec²,S=-19m

So,on putting we get

=>0² - (u²)=2×(-9.8)×19

=>u²=19.6×19

=>u²=372.4

=>u=√372.4

=>u=19.29m/sec.

Hence,minimum speed to throw a ball is 19.29m/sec

.

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a particle has 1672 mev rest energy, and a mean liftime of 8.2*10^-11 s. it is created and leaves a track 24mm. what is the particles total energy

Answers

Total energy of particle is 609.7644meV if its rest energy is 1672meV and mean lifetime is  8.2 ˣ 10⁻¹¹sec.

Rest Energy is a 1980 presentation craftsmanship piece made, established, and recorded by execution craftsman team Marina Abramović and Ulay in Amsterdam, the Netherlands.[1][2][3] Four minutes in length, Abramović has portrayed it as perhaps of the most troublesome piece she has at any point finished, saying -I was not in control.

In Rest Energy we really held a bolt on the heaviness of our bodies, and the bolt is pointed squarely into my heart. We had two little mouthpieces close to our souls, so we could hear our pulses. As our exhibition was advancing, pulses were turning out to be increasingly serious, and however it endured only four minutes and ten seconds, I'm telling you, for me it was for eternity. It was an exhibition about the total and complete trust.[4]

We know very well that rest energy is given by the relation

E=E₀ √(1-v²/c²)

where E₀=rest energy,v is the speed of particle and c is the velocity of light in vacuum and E is the total energy.

So,we have E₀=1672meV,c=3ˣ10⁸m/sec.

v=Total distance/total time

v=(2ˣ3.14ˣ24/1000) /8.2 ˣ 10⁻¹¹

=>v=8.38ˣ10⁸m/sec.

So,E=1672ˣ √1-(8.38)² /3²

=>E=1672× √(1-(0.866)

=>E=1672×0.364

=>E=609.764meV.

Hence,particle total energy is 609.764meV.

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in this experiment, you learned that the acceleration due to gravity is a constant that does not depend on the initial velocity. equation (2.3), however, has a v0 in it. are these two facts consistent? why?

Answers

These two facts are consistent because in calculating the value of acceleration due to gravity all other variables are constant.

Equation is derives using

v = u + at

[tex]a=\frac{v-u}{t}[/tex]

This is the equation for an object's final velocity or the velocity at time t when it accelerates with "a." In equation, a does not equal g; rather, it refers to the acceleration of an object that was initially travelling at a speed of u and has since acquired an acceleration.

Since a projectile only experiences the acceleration caused by gravity, we use a = g = 9.81 [tex]\frac{m}{s^{2} }[/tex] in all motion equations for a projectile.

The method used to compute the gravitational acceleration is

g = [tex]\frac{G\times M}{R^{2} }[/tex]; where R is the earth's radius and M is its mass, and G is the gravitational constant of the universe.

As a result, g will always have a constant value of a planet because all of the parameters used to calculate it are constants. similar to earth g = 9.81  [tex]\frac{m}{s^{2} }[/tex] .

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8. A 5000 kg open railroad car coasts along with a constant speed of 7.0 m/s on a level
track. Snow begins to fall vertically and fills the car at a rate of 2.6 kg/min. Ignoring
friction with the tracks, what is the speed of the car after 100 min?

Answers

Answer:

The problem involves finding the effect of added mass on the speed of a moving object, which can be determined using the law of conservation of momentum.

Before the snow starts falling, the initial momentum of the car is 5000 kg * 7.0 m/s = 35000 kg m/s.

As the snow falls, it adds mass to the car, and its momentum increases. The increase in momentum can be calculated as follows:

2.6 kg/min * 100 min = 260 kg

The final momentum of the system (car + snow) is given by:

35000 kg m/s + 260 kg * 0 m/s (since the snow is falling vertically and has no initial velocity relative to the car) = 35000 kg m/s + 260 kg * 0 m/s = 35000 kg m/s

The final velocity of the system (car + snow) can be determined by dividing the final momentum by the total mass:

35000 kg m/s / (5000 kg + 260 kg) = 35000 kg m/s / 5260 kg = 6.64 m/s

So the speed of the car after 100 minutes is 6.64 m/s.

Identify an environmental hazard that you would like to use for this activity. Explain why you chose this risk.

Answers

An environmental hazard is a threat posed by natural or human-made conditions that may have a negative impact on the environment, human health or other living organisms.

One example of an environmental hazard is air pollution which can be caused by a range of factors including industrial emissions, vehicle exhaust, and wildfires. Air pollution can have a range of harmful effects on human health including respiratory problems, heart disease and cancer. It can also have negative impacts on wildlife, ecosystems and natural resources.

Other examples of environmental hazards may include toxic waste, climate change, deforestation & water pollution. These hazards may have a range of short and long-term effects on the environment and may require coordinated efforts from governments, individuals and organizations to address and mitigate their impact.

The answer is general because no context is provided.

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Please Help And Fast!!!!
A boat’s velocity changes as it reaches the dock.
Which situations would cause the boat’s velocity to change?

Select three that apply.

A. The boat is slowing down.
B. The boat is speeding up.
C. The boat is changing direction.
D. The boat is not changing direction.

Answers

If the velocity of the boat is changing, then the boat is changing direction.

option C.

What situations would cause the boat’s velocity to change?

The velocity of a boat can change due to various factors such as;

wind resistance, water currents, engine power, and the boat's interaction with the dock.

Additionally, the boat's velocity can change if the boat's pilot applies the brakes or changes the direction of the boat. The boat's velocity can also be influenced by the shape and weight distribution of the boat, the speed of the water, and the presence of other boats and objects in the water.

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a figure skater can increase her spin rotation rate from an initial spin rotation rate from an initial rate of 1.0 rev every 1.5 seconds, to a final rate of 2.5 rev/s. if her initial moment of inertia was 4.6 kgm2, what is her final moment of inertia?

Answers

The final moment of inertia of the figure skater is approximately 1.23 kgm².

What is the Moment ?

Moment is a concept that refers to a single point in time at which an event or decision must be made. It is often used to describe a critical moment of opportunity or a crucial decision that needs to be made. It can also refer to a specific moment of clarity, when a person suddenly has a realization or an epiphany. The Moment can also refer to a feeling or emotion that can be experienced at a particular time and place. It can be a feeling of joy, love, peace, or sorrow. Whatever the feeling is, it can be a powerful experience that can leave a lasting impression.

We can use the conservation of angular momentum to relate the initial and final moment of inertia of the figure skater:

I_i ω_i = I_f ω_f

where I_i is the initial moment of inertia, ω_i is the initial angular velocity, I_f is the final moment of inertia, and ω_f is the final angular velocity.

We are given that the initial angular velocity is 1.0 rev every 1.5 seconds, which can be converted to radians per second by multiplying by 2π/1 rev:

ω_i = (1.0 rev/1.5 s) * (2π/1 rev) ≈ 4.19 rad/s

We are also given that the final angular velocity is 2.5 rev/s, which can be converted to radians per second by multiplying by 2π/1 rev:

ω_f = 2.5 rev/s * (2π/1 rev) ≈ 15.71 rad/s

Substituting these values into the conservation of angular momentum equation and solving for I_f, we get:

I_f = I_i * (ω_i / ω_f)

I_f = 4.6 kgm² * (4.19 rad/s / 15.71 rad/s)

I_f = 1.23 kgm²

Therefore, the final moment of inertia of the figure skater is approximately 1.23 kgm².

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earth gains and loses mass true or false

Answers

Answer: Earth loses several hundred tons of mass to space every day, significantly more than what we're gaining from dust. So, overall, Earth is getting smaller.

Explanation:

Answer:

true

Explanation:

becuase of the gravity of earth

when is it appropriate to describe a charged object as a point charge, and when is it not appropriate?

Answers

Answer: When it slows down or speeds up. Depending on which, it is appropiate.

Explanation:

a capacitor drawing 8 kvar is placed parallel with an electromagnet that draws 3kw of active power and 4 kvar of reactive power. what effect does this have on the reactive power q provided by the ac power source and the power factor cos.

Answers

The power factor is now 0.6, which is an improvement over previous value (which would be lower than 0.6 due to the higher reactive power demand).

Capacitor of 8 kVAR is placed parallel with an electromagnet that draws 3 kW of active power and 4 kVAR of reactive power, resulting circuit becomes a combination of a capacitive and an inductive load.

Net reactive power = [tex]8 kVAR - 4 kVAR = 4 kVAR[/tex]

So, the resulting circuit will have a net reactive power of [tex]4 kVAR[/tex].

The power factor (cos) of the circuit can be calculated as ratio of active power to  apparent power:

cos = Active power / Apparent power

The apparent power can be calculated as:

Apparent power = [tex]sqrt(Active power^2 + Reactive power^2)[/tex]

Apparent power = [tex]sqrt(3^2 + 4^2) kVA = 5 kVA[/tex]

So, the power factor of the circuit can be calculated as:

[tex]cos = 3 kW / 5 kVA = 0.6[/tex]

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at a certain time a particle had a speed of 16.0 m/s in the positive x direction, and 4.200 s later its speed was 27.0 m/s in the opposite direction. what is the average acceleration in m/s of the particle during this 4.200 s interval?

Answers

The required average acceleration of the particle during this 4.200 s interval is calculated to be 10.23 m/s² and in the opposite direction to the particle's initial velocity.

The speed of the particle is given as 16 m/s.

v₁ = 16 m/s

And t₁ = 0

The speed of the particle in the opposite direction is 27 m/s.

v₂ = - 27 m/s

The average acceleration at t₂ = 4.2 s is to be found out.

The expression to find average acceleration is,

a avg = [v(t₂) - v(t₁)]/(t₂ - t₁) = (-27 - 16)/(4.2 - 0) = 43/4.2 = -10.23 m/s²

Thus, the required average acceleration of the particle during this 4.200 s interval is 10.23 m/s² and in the opposite direction to the particle's initial velocity.

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a ball with mass 0.48 kg moves at a constant speed. a centripetal force of 23 n acts on the ball, causing it to move in a circle with radius 1.7 m. what is the speed of the ball?

Answers

Answer:

The speed of the ball can be found using the formula:

v = sqrt(Fc / m) = sqrt(23 N / 0.48 kg) = sqrt(23 / 0.48) m/s

v = approximately 4.53 m/s

The speed of the ball is approximately 9.01 m/s.

The centripetal force acting on a moving object in a circular path is given by the formula:

F = (mv²) / r

where F is the force, m is the mass of the object, v is its speed, and r is the radius of the circular path.

In this case, we know the mass of the ball is 0.48 kg, the centripetal force acting on the ball is 23 N, and the radius of the circular path is 1.7 m. Solving the formula for v, we get:

v = sqrt((Fr) / m)

Plugging in the given values, we get:

v = sqrt((23 N * 1.7 m) / 0.48 kg)

v = sqrt(81.167) m/s

v ≈ 9.01 m/s

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if you heed the sign and slow to 35 mph , what will be your acceleration going around the curve at this constant speed? give your answer in m/s2 .

Answers

The acceleration going around the curve at a constant speed of 35 mph is 0 [tex]m/s^2[/tex].

When an object moves at a constant speed in a circular path, it experiences an acceleration known as centripetal acceleration. This acceleration is directed toward the center of the circle and is given by the formula:

acceleration = [tex]v^2[/tex] / r

where v is the velocity of the object and r is the radius of the circular path.

However, if the object is moving at a constant speed, its velocity does not change with respect to time and the acceleration is zero. This means that the car's acceleration going around the curve at a constant speed of 35 mph (15.56 m/s) would be 0 [tex]m/s^2[/tex]. The car's velocity is not changing, so there is no net force causing the car to accelerate.

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free fall objects in free fall will accelerate only due to gravity. the kinematic equation for constant acceleration can be used:

Answers

Its value is 9.8 ms-2 when it is close to the earth's surface. Therefore, the acceleration due to gravity (g) is given by = GM/r2.Because kinematics equations are used when the acceleration of the object is constant.

Do the kinematics equations apply to motion in free fall?

Therefore, acceleration owing to gravity is the name given to the acceleration of falling objects in free fall.The kinematic equations can be used to analyze any falling object if friction and air resistance are minimal since the acceleration caused by gravity is constant.

Does kinematics include free fall?

Therefore, acceleration owing to gravity is the name given to the acceleration of falling objects in free fall.The kinematic equations can be used to analyze any falling object if friction and air resistance are minimal since the acceleration caused by gravity is constant.

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a 10.0 kg experimental rocket is catapulted from kennedy space center. it leaves the launch pad with kinetic energy of 1960 j. a) what elements comprise the closed system in this problem and what is the conservative force acting on the experimental rocket? b) how high will the rocket rise?

Answers

a). The elements that comprise the system in the question above are kinetic energy and potential energy.

b). The rocket will rise to 20 m high.

Given:

Rocket mass (m) = 10.0 kgInitial kinetic energy (K1) = 1960 J

b)

To calculate the height of the rocket rise, we can use the law of conservation of mechanical energy equation:

  K1 + U1 = K2 + U2

U is the potential energy that the rocket has. Its formula is

  U = m * g * h

Since we have the mass and acceleration due to gravity, we can calculate the height using that formula.

So,

  K1 + U1 = K2 + U2

1960 + U1 = 0 + U2    -> K2 = 0 because at max height, kinetic energy is 0.

         U2 = 1960 J

1960 = m * g * h

1960 = 10 * 9.8 * h

    h = 20 m

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