a saw blade accelerates from rest to 3000 rpm in 1.25s. if the blade has a radius of 15 cm and a mass of 300g, what is the torque of the motor? assume the blade to be a uniform disk.

Answers

Answer 1

To find the torque of the motor, we need to use the formula:

Torque = Moment of Inertia x Angular Acceleration

First, let's find the moment of inertia of the saw blade. Since it's a uniform disk, we can use the formula:

Moment of Inertia = (1/2) x Mass x Radius^2

Plugging in the given values, we get:

Moment of Inertia = (1/2) x 0.3 kg x (0.15 m)^2
Moment of Inertia = 0.003375 kg·m^2

Next, let's find the angular acceleration of the saw blade. We know that it accelerates from rest to 3000 rpm (or 314.16 rad/s) in 1.25 seconds, so:

Angular Acceleration = (Final Angular Velocity - Initial Angular Velocity) / Time
Angular Acceleration = (314.16 rad/s - 0 rad/s) / 1.25 s
Angular Acceleration = 251.328 rad/s^2

Now we can plug these values into the torque formula:

Torque = 0.003375 kg·m^2 x 251.328 rad/s^2
Torque = 0.848 N·m

Therefore, the torque of the motor is 0.848 N·m.

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Answer 2

The first step in solving this problem is to determine the angular acceleration of the saw blade. We can use the formula:

ωf = ωi + αt

where ωf is the final angular velocity, ωi is the initial angular velocity (which is zero in this case, as the blade starts from rest), α is the angular acceleration, and t is the time interval.

Substituting the given values, we get:

3000 rpm = 0 + α * 1.25 s

Converting the final angular velocity to radians per second:

3000 rpm = (3000 rpm) * (2π rad/rev) / 60 s

3000 rpm = 314.16 rad/s

So, we have:

314.16 rad/s = α * 1.25 s

α = 251.33 rad/s^2

Next, we can calculate the moment of inertia of the saw blade, assuming it is a uniform disk.

The moment of inertia of a uniform disk is given by the formula:

I = (1/2) * m * r^2

where m is the mass of the disk, and r is the radius of the disk.

Substituting the given values, we get:

I = (1/2) * 0.3 kg * (0.15 m)^2

I = 0.003375 kg m^2

Finally, we can use the formula for torque:

τ = I * α

Substituting the calculated values, we get:

τ = 0.003375 kg m^2 * 251.33 rad/s^2

τ = 0.848 Nm

Therefore, the torque of the motor is approximately 0.848 Nm.

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Related Questions

Question 35 Marks: 1 Radon is an alpha emitter; daughter decay products are alpha, beta, and gamma emitters.Choose one answer. a. True b. False

Answers

True,1 Radon is an alpha emitter; daughter decay products are alpha, beta, and gamma emitters.

Radon is a radioactive gas that has no smell, colour or taste. Radon is produced from the natural radioactive decay of uranium, which is found in all rocks and soils. Radon can also be found in water. Radon escapes from the ground into the air, where it decays and produces further radioactive particles. Radon was discovered by Friedrich Ernst Dorn, a German chemist, in 1900 while studying radium's decay chain. Originally named niton after the Latin word for shining, “nitens,” it has been known as radon since 1923.

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The grounded neutral of a balanced 3 wire wye circuit (is)(is not) considered a current carrying conductor. true or false

Answers

False. In a balanced 3 wire wye circuit, the grounded neutral conductor is not considered a current carrying conductor. The neutral conductor carries only the unbalanced current resulting from the difference in the currents flowing through the three phase conductors.

The neutral conductor is grounded to provide a reference point for the voltage of the circuit, and to provide a path for the unbalanced current to return to the source.

In a balanced 3 wire wye circuit, the three phase conductors carry equal currents that are 120 degrees out of phase with each other. The voltages of the three phase conductors also differ by 120 degrees, and when they are connected to a load, they produce a balanced three-phase voltage.

The grounded neutral conductor in a 3 wire wye circuit is typically connected to earth ground at the transformer or generator supplying the circuit. The purpose of grounding the neutral conductor is to provide a reference point for the voltage of the circuit, and to provide a path for the return of unbalanced currents. Unbalanced currents can occur when the three phase loads are not equal or when there are single-phase loads connected to the circuit.

When the three-phase loads are balanced, the neutral conductor carries only the unbalanced current, which is the difference in current between the three phase conductors. The magnitude of the unbalanced current is typically small compared to the phase currents, and the neutral conductor is not considered a current-carrying conductor under normal operating conditions.

However, if the circuit becomes unbalanced due to a fault or other abnormal condition, the neutral conductor can carry significant currents that can cause overheating and other problems. For this reason, the neutral conductor must be sized appropriately to handle the maximum expected unbalanced current, and the grounding system must be designed to detect and clear faults quickly.

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Question 18
The direction of operation in involving a sanitary landfill should be:
a. with the prevailing wind
b. perpendicular to the wind
c. against the wind
d. does not matter

Answers

The direction of operation in involving a sanitary landfill should be perpendicular to the prevailing wind. This is because it helps to prevent the spread of odors and other matter that may be carried by the wind.

It also ensures that the wind does not cause litter and debris to be blown out of the landfill, which can contribute to environmental pollution. So, the correct answer is b. perpendicular to the wind .Pollution is the introduction of harmful materials into the environment. These harmful materials are called pollutants. Pollutants can be natural, such as volcanic ash. They can also be created by human activity, such as trash or runoff produced by factories. Pollutants damage the quality of air, water, and land.

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Any object that has mass and is in a gravitational field is subjected to a force called its ______

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Any object that has mass and is in a gravitational field is subjected to a force called its weight.

Weight is a force that results from the interaction between an object and the gravitational field of another object, such as the Earth. The weight of an object is proportional to its mass, which is a measure of the amount of matter it contains.

The formula for weight is W = m x g, where W is weight, m is mass, and g is the acceleration due to gravity. Weight is a vector quantity, meaning it has both magnitude and direction. In everyday life, weight is often used interchangeably with mass, but they are actually two different properties of matter.

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A ΔV = 2.7 V battery loses E = 6 J of energy each day (t = 24 hrs) powering a cell phone.
Part (a) Input an expression for the average current, I, supplied to the phone. Expression :
I = __________________________________________
Select from the variables below to write your expression. Note that all variables may not be required. α, β, ΔV, θ, a, d, E, g, h, j, k, m, P, S, t
Part (b) What is the current in Amperes?
Numeric : A numeric value is expected and not an expression. I =

Answers

The current supplied to the phone is 93.75 milliamperes (mA) or 0.09375 Amperes (A).

Part (a) Expression for the average current, I, supplied to the phone:

We can use the formula for electrical power:

Power = current x voltage

The energy lost by the battery each day is given by:

Energy = Power x time

E = P x t

Substituting Power = I x ΔV and time t = 24 hrs, we get:

E = I x ΔV x t

I = E / (ΔV x t)

Therefore, the expression for the average current supplied to the phone is:

I = E / (ΔV x t)

Part (b) Numeric value for the current in Amperes:

Substituting the given values, we get:

I = 6 J / (2.7 V x 24 hrs)

I = 0.09375 A or 93.75 mA

Therefore, the current supplied to the phone is 93.75 milliamperes (mA) or 0.09375 Amperes (A).

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a proton is not the only nucleus that has a magnetic dipole moment. another is the nucleus of the isotope 15n , which is sometimes imaged in mri. the gyromagnetic ratio of a 15n nucleus is 10.1% that of a proton. part a what is the precession frequency of a 15n nucleus in a 1.50 t mri machine? express your answer with the appropriate units.

Answers

Therefore, the precession frequency of a 15n nucleus in a 1.50 T MRI machine is 6.45 MHz. The appropriate units are megahertz (MHz).

The precession frequency of a 15n nucleus can be calculated using the formula:
frequency = gyromagnetic ratio x magnetic field strength
In this case, the gyromagnetic ratio of a 15n nucleus is 10.1% that of a proton, so we can write:
gyromagnetic ratio = 0.101 x gyromagnetic ratio of a proton
The gyromagnetic ratio of a proton is approximately 42.58 MHz/T, so the gyromagnetic ratio of a 15n nucleus is:
gyromagnetic ratio = 0.101 x 42.58 MHz/T = 4.30 MHz/T
The magnetic field strength of a 1.50 T MRI machine is 1.50 T, so the precession frequency of a 15n nucleus in this machine is:
frequency = 4.30 MHz/T x 1.50 T = 6.45 MHz
Therefore, the precession frequency of a 15n nucleus in a 1.50 T MRI machine is 6.45 MHz. The appropriate units are megahertz (MHz).

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What is the wavelength of a radio wave traveling in a vacuum that has a frequency of 7.75x107Hz?
(Choose from the following units: m, hz, m/s, s, degrees, dB)
Your Answer:

Answers

The wavelength of the radio wave is approximately 3.87 meters.

The speed of light in a vacuum is a constant value, which is approximately 3.00 x 10⁸ meters per second. The wavelength of a wave can be calculated by dividing the speed of light by the frequency of the wave.

λ = c / f

Where λ is the wavelength, c is the speed of light, and f is the frequency.

Substituting the given values into the formula, we get:

λ = c / f = 3.00 x 10⁸ m/s / 7.75 x 10⁷ Hz = 3.87 m

Therefore, the wavelength of the radio wave is approximately 3.87 meters.

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Torque Equilibrium: ICA 1
1. In the image above a force of 2.5 N is being applied to the wrench. Calculate the torque. (Remember we should
only use units of meters)
15 cm
25N

Answers

The torque applied to the wrench is 0.375 Nm.

To calculate the torque, we need to know the distance between the force and the pivot point, and the magnitude of the force. The torque can be calculated using the formula:

Torque = Force x Distance x sin(theta)

where theta is the angle between the force vector and the line connecting the force to the pivot point. In this case, the force is applied perpendicular to the wrench, so theta is 90 degrees and sin(theta) is 1. Therefore, we can simplify the formula to:

Torque = Force x Distance

We are given the magnitude of the force as 2.5 N, and the distance from the force to the pivot point (the nut) as 15 cm. To use the formula, we need to convert the distance to meters:

Distance = 15 cm = 0.15 m

Now we can calculate the torque:

Torque = Force x Distance

= 2.5 N x 0.15 m

= 0.375 Nm

Therefore, the torque applied to the wrench is 0.375 Nm.

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(398-19) Open conductors shall be separated at least ______ inches from metal raceways, piping, or other conducting material, and from any exposed lighting, power, or signaling conductor, or shall be separated by a continuous and firmly fixed nonconductor in addition to the nsulation of the conductor.

Answers

The minimum separation distance required is 1 inch, or a continuous and firmly fixed nonconductor may be used in addition to the insulation of the conductor.

According to the National Electrical Code (NEC) Article 300.2, open conductors are defined as conductors that are not covered by any insulation or are only covered by a thin covering of insulation. These conductors must be kept at a safe distance from other conductors or conducting materials to prevent electrical arcing or short circuits.

NEC Section 394.15 provides the minimum separation requirements for open conductors. It states that open conductors must be separated from metal raceways, piping, or other conducting material, as well as any exposed lighting, power, or signaling conductors. The minimum separation distance is 1 inch, unless the conductors are separated by a continuous and firmly fixed nonconductor in addition to the insulation of the conductor.

This means that if the open conductor is separated from the other conductors or materials by a continuous and firmly fixed nonconductor in addition to the insulation of the conductor, the minimum separation distance of 1 inch may not be required.

In summary, open conductors must be separated from other conductors or conducting materials to avoid electrical arcing or short circuits. The minimum separation distance required is 1 inch, or a continuous and firmly fixed nonconductor may be used in addition to the insulation of the conductor.

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During which type of chemical process does the temperature decrease?

Answers

Answer: During an endothermic chemical process, the temperature of the system typically decreases.

Explanation: Chemical processes can be both exothermic or endothermic, it actually depends on whether heat is released or absorbed during the reaction. In an endothermic reaction, energy is absorbed from the surroundings, mostly in the form of heat, causing the temperature of the system to decrease. This is because the reaction requires energy to break the bonds of the reactants and form new bonds in the products. Examples of endothermic reactions include melting ice, evaporating water, and cooking an egg  

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when the object is at a distance that is exactly twice the focal length, or the radius of curvature, the magnification is

Answers

The magnification of an object at a distance of twice the focal length is 1. This means that the object appears the same size as it would if it were viewed without any optical device.

What is focal length?

Focal length is the distance between the center of a lens and the point where light rays converge to form a sharp image. It is measured in millimeters and is a critical factor in determining the angle of view of the lens, or how wide or narrow the field of view will be. A shorter focal length will produce a wider angle of view and a longer focal length will produce a narrower angle of view. For example, a wide angle lens typically has a focal length from 8mm to 35mm, while a telephoto lens has a focal length from 70mm to 300mm.

This is because the light rays that are refracted by the lens are spread out evenly so that no magnification occurs.

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Object 1 of mass 0.25 kg moves at 10 m/s towards Object 2 initially at rest of mass 0.25 kg. The resulting collision is perfectly inelastic, what is the speed of the objects after the collision

Answers

After a perfectly inelastic collision, the combined objects move at 5 m/s.


In a perfectly inelastic collision, the two objects stick together after colliding.

To find the final speed, we can use the conservation of momentum principle, which states that the total momentum before the collision equals the total momentum after the collision.

The initial momentum is (0.25 kg × 10 m/s) + (0.25 kg × 0 m/s) = 2.5 kg m/s.

After the collision, the combined mass is 0.5 kg.

To find the final velocity (v), we can use the formula:

total momentum = combined mass × final velocity, so 2.5 kg m/s = 0.5 kg × v, which gives v = 5 m/s.

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14. A grindstone, initially at rest, is given a constant angular acceleration so that it makes 20.0 rev in the first 8.00 s. What is its angular acceleration?
A) 0.313 rad/s2
B) 0.625 rad/s2
C) 2.50 rad/s2
D) 1.97 rad/s2
E) 3.93 rad/s2

Answers

A grindstone, initially at rest, is given a constant angular acceleration so that it makes 20.0 rev in the first 8.00 s. Its angular acceleration is E) 3.93 rad/s²

To find the angular acceleration of the grindstone, we can use the following equations:
1. θ = ω₀t + (1/2)αt², where θ is the angular displacement, ω₀ is the initial angular velocity, t is the time, and α is the angular acceleration.
2. 20 rev = 20(2π) rad, to convert revolutions to radians.
Given that the grindstone is initially at rest, ω₀ = 0. We are also given that the grindstone makes 20 revolutions in 8 seconds, so θ = 20(2π) rad and t = 8 s.
Using the equation θ = (1/2)αt², we can solve for α:
20(2π) = (1/2)α(8²)
40π = 32α
Now, divide both sides by 32 to find the angular acceleration:
α = 40π/32 = 5π/4
α ≈ 3.93 rad/s²
Therefore, the angular acceleration of the grindstone is approximately 3.93 rad/s², which corresponds to option E.

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pleaseeee helpp quickkkk
A skateboarder starts at the top of a halfpipe ramp, skates through the middle, and up the other side.
Match the following to describe what is happening at each of the three points in the skater's movement.

Question 1 options:

Middle


End


Beginning

1.
Maximum kinetic energy

2.
Potential and kinetic energy equal

3.
Maximum potential energy

Answers

Answer:

Explanation:

1=3

1 would be the best

What device did Faraday invent that harnessed the power of electric current

Answers

Faraday invented the electric generator that harnessed the power of the electric current.

Michael Faraday, a British scientist, is credited with the invention of the electric generator, also known as the dynamo. In 1831, Faraday discovered that a changing magnetic field could induce an electric current in a wire. He then designed a machine that utilized this principle to generate electricity.

Faraday's generator consisted of a rotating disk of copper wire near a stationary magnet. As the disk rotated, the magnetic field induced a current in the wire, producing electricity.

Faraday's invention was a major breakthrough in the field of electromagnetism and paved the way for the development of modern electrical power systems. Today, electric generators are widely used to produce the electricity that powers homes, businesses, and industries around the world.

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in the future, a pair of astronauts are sent on a mission to the planet mercury. they watch the sun set one mercurian evening and decide they will go exploring in opposite directions and meet again the next time the sun is setting in the spot where they started. how long will they have to wait for the next sunset at that spot? a. one mercury year, 88 earth days b. two mercury years, 176 earth days c. one earth day d. one mercury rotation period, 59 earth days e. two mercury rotation periods, 119 earth days

Answers

The answer is d. one mercury rotation period, 59 earth days.

This is because Mercury rotates very slowly compared to its orbit around the sun, so it takes 59 Earth days for Mercury to complete one rotation on its axis and experience one day/night cycle. Therefore, the astronauts will have to wait for one Mercury rotation period or 59 Earth days to see the sunset at the same spot where they started.
In the future, when astronauts are exploring Mercury, they will have to wait for two Mercury rotation periods, or 119 Earth days (option E), to see the next sunset at the same spot.

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Question 26 Marks: 1 Background radiation cannot be eliminated.Choose one answer. a. True b. False

Answers

The actual amount of radiation that a person is exposed to depends on where they live, what job they do and many other things. Scientists must always take into consideration the amount of background radiation when working or experimenting with radioactive sources and discount it from their results.

Background radiation is the radiation that is present in the environment naturally and cannot be eliminated completely. However, it can be reduced through various measures such as limiting exposure to sources of radiation, using protective gear, and adopting safe practices.A source that emits one particle per second has an activity of one Bq. However, this particle could be alpha or beta and would, therefore, have a different effect on a person’s body.

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which of the following statements regarding kinetic energy and linear momentum is/are true? choose all that apply. a. the total kinetic energy of two moving objects can be zero. b. the total momentum of two moving objects can be zero. c. the kinetic energy of an object doubles if the speed of an object doubles. d. if the kinetic energy of a system increases, the momentum of the system also must increase.

Answers

a. The total kinetic energy of two moving objects can be zero. This is true because the kinetic energy depends on the mass and speed of the objects. If two objects with equal mass move in opposite directions with the same speed, their kinetic energies will cancel out, resulting in a total kinetic energy of zero.

b. The total momentum of two moving objects can be zero. This is also true because momentum is the product of an object's mass and velocity. If two objects with equal mass move in opposite directions with the same velocity, their momenta will cancel out, resulting in a total momentum of zero.

c. The kinetic energy of an object doubles if the speed of an object doubles. This statement is not true. The kinetic energy of an object is proportional to the square of its speed, which means that if the speed of an object doubles, its kinetic energy increases by a factor of four.

d. If the kinetic energy of a system increases, the momentum of the system also must increase. This statement is not necessarily true. The momentum of a system depends on the mass and velocity of the objects in the system, while the kinetic energy depends only on the speed of the objects. It is possible for the kinetic energy of a system to increase without a corresponding increase in momentum, or vice versa.
Hello! Here's an analysis of the given statements:

a. The total kinetic energy of two moving objects can be zero: False. Kinetic energy is always positive, so the sum of two positive values cannot be zero.

b. The total momentum of two moving objects can be zero: True. If the magnitudes of their momenta are equal and opposite, they can cancel each other out, resulting in a total momentum of zero.

c. The kinetic energy of an object doubles if the speed of an object doubles: False. Kinetic energy is proportional to the square of the speed (KE = 0.5 * m * v^2), so if the speed doubles, the kinetic energy will increase by a factor of 4, not 2.

d. If the kinetic energy of a system increases, the momentum of the system also must increase: False. It is possible for the kinetic energy to increase without a change in the total momentum (e.g., in a collision where the final velocities are equal and opposite).

So, the true statement among the options is: (b) The total momentum of two moving objects can be zero.

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the maximum output of the chlorinator at a well is 100 pounds per day. if this well requires a dosage of 3.75 mg/L. what is the maximum flow rate allowed for this well, expressed in MGD

Answers

The maximum flow rate allowed for the well, expressed in MGD, is 3.01.

To calculate the maximum flow rate allowed for the well, we need to use the following formula:

Maximum Flow Rate = (Maximum Chlorine Output in Pounds per Day) / (Dosage in mg/L x 8.34)

Here, the maximum chlorine output is given as 100 pounds per day, and the dosage required is 3.75 mg/L. Plugging these values into the formula, we get:

Maximum Flow Rate = (100 pounds/day) / (3.75 mg/L x 8.34)

Maximum Flow Rate = 3.01 MGD (rounded to two decimal places)

Therefore, the maximum flow rate allowed for the well, expressed in MGD, is 3.01.

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A series RLC circuit has resistance R = 75. 0 Ω and inductance L = 0. 440 H. The voltage source operates at a frequency of f = 50. 0 Hz and the reactance is Z = R = 75. 0 Ω.

(a)Find the circuit's capacitance C (in F).

(b)What is the phase angle (in degrees) between the current and the voltage?

Answers

A series RLC circuit has resistance R = 75. 0 Ω and inductance L = 0. 440 H. The voltage source operates at a frequency of f = 50. 0 Hz and the reactance is Z = R = 75. 0 Ω.

(a) The capacitance of the circuit is 5.33 × [tex]10^{-5}[/tex] F.

(b) The phase angle is 0 degrees.

(a) The reactance of the circuit is given by

X = Z - R = 0 Ω

At resonance, the reactance is zero, so we can find the capacitance using

X = 1/(2πfC) = 0 Ω

Solving for C, we get

C = 1/(2πfX) = 5.33 × [tex]10^{-5}[/tex] F

Therefore, the capacitance of the circuit is 5.33 × [tex]10^{-5}[/tex] F.

(b) At resonance, the impedance of the circuit is purely resistive, so the phase angle between the current and voltage is zero. Therefore, the phase angle is 0 degrees.

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Chapter 2section 2.21. In a cathode ray tubeA) electrons pass from the anode to the cathode.B) electrons pass from the cathode to the anode.C) protons pass from the anode to the cathode.D) protons pass from the cathode to the anode.

Answers

In Chapter 2 section 2.21, it is stated that in a cathode ray tube, electrons pass from the cathode to the anode. This is because the cathode is negatively charged, while the anode is positively charged.

The flow of electrons is controlled by an electric field between the cathode and anode, which causes the electrons to move towards the anode. Therefore, the correct answer to the question is option B) electrons pass from the cathode to the anode.


In Chapter 2, Section 2.21, regarding a cathode ray tube, the correct answer is B) electrons pass from the cathode to the anode. The cathode emits electrons, which are attracted to the positively charged anode, resulting in the flow of electrons in the tube.

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alt is now added to the water in the bucket, increasing the density of the liquid. What happens to the tension in the string

Answers

When salt is added to the water, density increases, causing buoyancy force to rise, and the string tension to decrease.

When salt is added to the water in the bucket, the density of the liquid increases.

As a result, the buoyancy force experienced by the object submerged in the saltwater also increases due to the higher density.

This increased buoyancy force opposes the gravitational force acting on the object, making it effectively "lighter" in the saltwater.

Consequently, the tension in the string holding the object will decrease, as it needs to counterbalance less weight.

In summary, the addition of salt to water increases the liquid's density, leading to a decrease in the string's tension.

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A ball is dropped from the top of a building and lands on the ground without bouncing.
When does the ball have the least kinetic energy?
O after it has hit the ground
O half way through the fall
O iust after it is released
O just before it hits the ground

Answers

The correct answer is A. After it has hit the ground

object a has mass 7 kg and initial momentum <20, -6, 0> kg·m/s, just before it strikes object b, which has mass 9 kg. just before the collision object b has initial momentum <3, 6, 0> kg·m/s.

Answers

We can use the law of conservation of momentum to determine the final momenta of both objects after the collision. The law states that the total momentum before a collision equals the total momentum after the collision.

So, the initial total momentum before the collision is:

<20, -6, 0> kg·m/s + <3, 6, 0> kg·m/s = <23, 0, 0> kg·m/s

After the collision, we can denote the final momenta of objects a and b as and, respectively. Using the law of conservation of momentum, we have:

+  = <23, 0, 0> kg·m/s

We can also use the fact that momentum is mass times velocity (p = mv) to relate the momenta to the velocities of the objects. Specifically, we can write:

= 7 kg *  = 9 kg *

where and are the final velocities of objects a and b, respectively.

We also know that the collision object b has initial momentum <3, 6, 0> kg·m/s, which we can again relate to its initial velocity using the fact that momentum is mass times velocity. Specifically, we have:

<3, 6, 0> kg·m/s = 9 kg *

Now, we can solve for the final velocities of the objects using the above equations. Since we have three unknowns (v1x, v1y, v1z), we need three equations. One equation comes from the law of conservation of momentum, and the other two come from the fact that the relative velocity between the objects before and after the collision is reversed along the line of impact.

Along the x-axis, the relative velocity between the objects before the collision is:

20 kg·m/s / 7 kg - 3 kg·m/s / 9 kg = 2.4286 m/s

After the collision, the relative velocity is:

v1x - v2x = -2.4286 m/s

Similarly, along the y-axis, we have:

-6 kg·m/s / 7 kg - 6 kg·m/s / 9 kg = -1.4521 m/s

v1y - v2y = 1.4521 m/s

We can use these two equations to solve for v1x and v1y, and then use the law of conservation of momentum to solve for v1z. The final velocities of the objects are:

v1x = -0.2452 m/s
v1y = 3.5413 m/s
v1z = 0 kg·m/s

v2x = 1.3683 m/s
v2y = 1.3011 m/s
v2z = 0 kg·m/s

Therefore, object a has a final momentum of:

7 kg * <-0.2452, 3.5413, 0> kg·m/s = <-1.7164, 24.7891, 0> kg·m/s

and object b has a final momentum of:

9 kg * <1.3683, 1.3011, 0> kg·m/s = <12.3147, 11.7100, 0> kg·m/s.

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#18. What is the period of the voltage source that operates the plasma pencil?

Answers

The period of the voltage source that operates the plasma pencil is the time it takes to complete one cycle of oscillation.

The plasma pencil is a device that uses a high-voltage source to generate plasma, which can be used for various applications such as sterilization and surface modification. The period of the voltage source that operates the plasma pencil is the time it takes for the voltage to complete one cycle of oscillation. In general, the period of a voltage source is determined by the frequency of the alternating current (AC) that it generates. The frequency is measured in Hertz (Hz), which represents the number of cycles per second.


The specific period of the voltage source that operates the plasma pencil depends on the design and specifications of the device. Typically, plasma pencils operate at high frequencies ranging from tens of kilohertz to several megahertz. This high frequency allows for efficient plasma generation and control. The period of the voltage source that operates the plasma pencil is determined by the frequency of the AC it generates and can vary depending on the design and specifications of the device.

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Which one of the following materials is not ferromagnetic?a. Feb. Coc. Nid. Ai

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The material that is not ferromagnetic is d. Ai (aluminium). While iron (Fe), cobalt (Co), and nickel (Ni) are ferromagnetic metals, aluminium is a non-magnetic metal.

Ferromagnetism is the ability of a material to become permanently magnetized when exposed to an external magnetic field. Ferromagnetic materials include iron (Fe), nickel (Ni), cobalt (Co), and some of their alloys, such as FeCo, FeNi, and FeCoNi. These materials have a magnetic moment that aligns with an external magnetic field, resulting in a net magnetic moment and magnetic behaviour. Aluminium, on the other hand, is not ferromagnetic and does not exhibit this type of behaviour.

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Question 15 Marks: 1 If 10 decibels is 10 times more intense than one decibel, how many times more intense is 20 decibels than one decibel?Choose one answer. a. 20 b. 30 c. 100 d. 1000

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If 10 decibels is 10 times more intense than one decibel, then 20 decibels would be 100 times more intense than one decibel (10 times more intense than 10 decibels). Therefore, the answer is c. 100.

Sound is measured in decibels (dB). A whisper is about 30 decibels, a normal conversation is about 60 decibels, and a motorcycle engine runs about 95 decibels.

Noise levels above 70 decibels for long periods of time can begin to damage your hearing. Noise above 120 decibels can damage your hearing.

A 20 dB increase in noise represents a 100-fold increase in noise. This is because dB is a logarithmic unit, and an increase of 20 dB corresponds to a positive factor of 10^ (20/10) = 100.

Therefore, a sound that is 20 dB louder than another sound is 100 times stronger. Likewise, a 40-decibel increase in noise means one sound is 10,000 times louder than another, and so on.

Therefore, the correct answer is 100.

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Question 5 Marks: 1 The recommended maximum length of the system materials for a gravity flow absorption field is 75 feet.Choose one answer. a. True b. False

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This statement is true. The question mentions the terms "recommended", "maximum", "length", and "gravity", which all relate to the design and installation of a gravity flow absorption field.

The answer is true because the recommended maximum length for the system materials is 75 feet, which means that if the length exceeds this limit, it may affect the absorption capacity and efficiency of the system. This highlights the importance of following the recommended guidelines and standards to ensure the proper functioning and longevity of the absorption field.
The statement "The recommended maximum length of the system materials for a gravity flow absorption field is 75 feet" is true. This length ensures proper functioning and efficiency of the system, taking into consideration gravity and absorption processes.

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6.) A disk and a hoop of the same mass and radius are released at the same time at the top of an inclined plane. If both are uniform, which one reaches the bottom of the incline first if there is no slipping?
A.) The hoop
B.) The disk
C.) Both reach the bottom at the same time

Answers

The correct solution to this question here is option C.) Both reach the bottom at the same time.

This is because both the disk and hoop have the same mass and radius, and there is no slipping involved. Therefore, they will have the same acceleration down the inclined plane and will reach the bottom at the same time. B.) The disk

The disk reaches the bottom of the incline first because it has a smaller moment of inertia compared to the hoop. This results in the disk having a greater acceleration down the inclined plane, allowing it to reach the bottom faster than the hoop.

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ASAP PLEASE!!!!!!
Please select the word from the list that best fits the definition
Value that is measured by the slope of a position-time graph
Distance
Velocity
Vectors
Displacement

Answers

The word from the list that best fits the definition Value that is measured by the slope of a position-time graph is

Velocity

What is  position-time graph

A position-time graph, also known as a displacement-time graph, is a graph that shows the position or displacement of an object on the vertical axis versus time on the horizontal axis.

It is a graphical representation of an object's motion with respect to time, where the slope of the line represents the object's velocity at any given point.

The position-time graph is commonly used in physics to analyze an object's motion and to determine important parameters such as velocity, acceleration, and displacement.

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