Physic question help

Physic Question Help

Answers

Answer 1

The good conductors of heat and electricity are Penny, and An aluminum soda can.

option A and B.

What are good conductors of electricity?

Good conductors of electricity are those materials that allow easy passage of electric current through them.

All metals are good conductors of electricity, and some of their examples include;

Aluminum

Copper

Silver

Zinc, etc

Poor conductors on the other hand do not allow easy passage of electric current through them.

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Related Questions

What would be the intensity of a sound wave produced by a 150 Watt speaker from a distance of 5.8 meters?  (write your answer to two digits)​

Answers

The intensity of the sound is determined as 0.36 W/m².

What is the intensity of the sound?

The intensity of a sound is defined as the amount of energy transmitted per unit area.

I = P/A

where;

I is the sound intensityA is the area

The area is calculated as follows;

A = 4πr²

A = 4 x π x (5.8²)

A = 422.73 m²

The intensity of the sound is calculated as follows;

I = 150 W / 422.73

I = 0.36 W/m²

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The intensity of a sound wave can be calculated using the formula:

Intensity = Power / Area

In this case, we are given that the power of the speaker is 150 Watts. To calculate the area, we need to consider the distance at which the sound wave is measured. The area of a sphere can be calculated using the formula:

Area = 4πr^2

where r is the radius of the sphere. In this case, the distance from the speaker to the measuring point is given as 5.8 meters. So, the radius of the sphere is half of this distance, which is 2.9 meters.

Plugging these values into the formula, we get:

Area = 4π(2.9)^2 = 105.52 square meters

Now we can calculate the intensity:

Intensity = 150 / 105.52 = 1.42 Watts per square meter

Therefore, the intensity of the sound wave produced by the 150 Watt speaker from a distance of 5.8 meters is approximately 1.42 Watts per square meter.

A 70.0kg stuntman jumps off a bridge spanning a river from a height of 50m. Calculate the gravitational
potential energy of the stuntman.

Answers

The value of the gravitational potential energy can be obtained as 35kJ

What is the gravitational potential energy?

Gravitational potential energy is the energy that an object has as a result of its position within a gravitational field.

Gravitational potential energy is most typically utilized for an object near the surface of the Earth when the gravitational acceleration may be considered to remain constant at around 9.8 m/s.

We can see that;

Gravitational potential energy = mgh

= 70 * 10 * 50

= 35kJ

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A roller-coaster car with a mass of 900 kg starts at rest from a point 22 m above the ground. At point B, it is 8 m above the ground. [Express your answers in kilojoules (kJ).]

What is the potential energy at point B?

Answers

Answer: 317.52

Explanation:

I'm just him, so I just know

An object that is 0.5 m above the ground has the same amount of potential energy as a spring that is stretched 0.5 m. Each distance is then doubled

Answers

Elastic potential energy of spring is twice the gravitational potential energy of the object.

Height of the object, h = 0.5 m

Displacement of the spring, x = 0.5 m

Given that,

Potential energy of the object = Elastic potential energy of spring

mgh = 1/2 kx² = E

When the distance and height are doubled,

GPE = 2 mgh = 2E

Elastic PE = 1/2 k(2x)²

Elastic PE = 4 x 1/2 kx² = 4E

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What is the intensity of the sound waves produced by a trumpet at a distance of 3.2 m when the power
output of the trumpet is 0.20 W? Assume that the sound waves are spherical.

CAN SOMEONE HELP I REALLY NEED IT THANK YOU SO MUCH

Answers

The intensity of the sound wave produced by the trumpet at a distance of 3.2 m is 1.56×10⁻³ W/m²

How do i determine the intensity of the sound wave?

From the question given above, the following data were obtained:

Distance from source (r) = 3.2 mPower output (P) = 0.20 WPi (π) = 3.14Intensity of sound wave (I) =?

The intensity of the sound wave can be obtained as illustrated below:

Intensity (I) = P / 4πr²

Inputting the various parameters, we have:

I = 0.2 / (4 × 3.14 × 3.2²)

I = 0.2 / 128.6144

I = 1.56×10⁻³ W/m²

Thus, we can conclude from the above calculation that the intensity of the sound wave is 1.56×10⁻³ W/m²

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After an unfortunate accident occurred at a local warehouse, you were contracted to determine the cause. A jib crane collapsed and injured a worker. An image of this type of crane is shown in the figure. The horizontal steel beam had a mass of 86.80 kg per meter of length, and the tension in the cable was =12170 N. The crane was rated for a maximum load of 500 kg. The acceleration due to gravity is =9.810 m/s2.

B) If =6.160 m, =0.450 m, =1.500 m, and ℎ=1.980 m, what was the magnitude of L (the load on the crane) before the collapse?

C) What was the magnitude of force p at the attachment point P?

Answers

The load of the crane before collapse is 3942.8 N.

Mass per meter of length of the beam, m = 86.80 kg

Tension in the cable, T = 12170 N

Maximum load of the crane, M = 500 kg

Length of the beam, d = 6.16 m

Distance between the end point of beam and attachment end, s = 0.45m

Distance between the end point of the beam and point of inclination,

x = 1.5 m

Height between point P and top of attachment, h = 1.98 m

The moment about the point P,

[T(d - s) sinθ] - [W(L) (d - x)] - mg(d/2) = 0

So,

W(L) = [T(d - s) sinθ - mg(d/2)] / (d - x)

where θ is the angle made by the connecting line with the beam.

tanθ = h/(d - s)

tanθ = 1.98/(6.16 - 0.45)

tanθ = 0.3467

So, θ = 19.12°

Therefore, the load of the crane before collapse,

W(L) = [12170 (6.16 - 0.45)sin19.12°- 86.8 x 9.8(0.45/2) / (6.16 - 1.5)

W(L) = (18565.1 - 191.394) / 4.66

W(L) = 3942.8 N

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Gustave Eiffel built the Eiffel Tower (1887-89) for the______In 1889.

World's Fair

Panama Pacific Exhibition

Salon

Great Exhibition

Answers

Gustave Eiffel built the Eiffel Tower (1887-89) for the World's Fair in 1889.

Who is Gustave Eiffel ?

The edifice as we know it was built in the city of Paris in the country that we call France to commemorate the 100th anniversary of the French Revolution.

The Eiffel Tower was initially intended to be a temporary project, but because of its popularity, it was permitted to stand after the exhibition was over.

It can be seen in the contemporary times as a symbol of Paris and one of the most recognizable landmarks in the entire globe.

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20.
is a measure of its change over a single period..
a. Frequency
b. Amplitude
c. Hertz

Answers

Answer:

The Correct answer is A

frequency

An ideal gas, initially at a volume of 6 L and
pressure of 8 kPa, undergoes isothermal expansion until its volume is 8 L and its pressure
is 6 kPa.

1): Calculate the work done by the gas during
this process.
Answer in units of J.

2): Find the heat added to the gas during this
process.
Answer in units of J.

Answers

The work done by the gas during the isothermal expansion is 421 J, and the heat added to the gas during the isothermal expansion is 421 J.

Isothermal expansion refers to a thermodynamic process in which a gas expands at a constant temperature. During this process, the gas absorbs heat from its surroundings, which is converted into work done by the gas as it expands. The pressure and volume of the gas change, but the temperature remains constant throughout the process.

1. We can use the ideal gas law and the formula for work done in isothermal expansion to solve this problem:

The work done by the gas during the isothermal expansion is given by:

W = nRT ln(V2/V1)

where W is the work done, n is the number of moles of gas, R is the gas constant, T is the temperature, V1 is the initial volume, and V2 is the final volume.

Since the process is isothermal, the temperature remains constant, so we can simplify the equation to:

W = nRT ln(V2/V1)

We can find n by using the ideal gas law:

PV = nRT

where P is the pressure, V is the volume, and T is the temperature.

Solving for n, we get:

n = PV/RT

Substituting the given values, we get:

n = (8 kPa x 6 L) / (8.31 J/mol·K x 273 K)

n = 0.164 mol

Now we can calculate the work done:

W = nRT ln(V2/V1)

W = (0.164 mol)(8.31 J/mol·K)(273 K) ln(8 L / 6 L)

W = 421 J

Therefore, the work done by the gas during the isothermal expansion is 421 J.

2. Since the process is isothermal, the temperature remains constant and the change in internal energy is zero. So, the heat added to the gas is equal to the work done on the gas:

Q = W

Q = 421 J

So, the heat added to the gas during the isothermal expansion is 421 J.

Therefore, The gas expands 421 J of work during isothermal expansion, and the gas absorbs 421 J of heat during the process.

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You want to push a car with a dead battery. You apply 200 N of force. The car does not move. Was your force balanced or unbalanced?

Answers

The force you applied to the car is balanced since the car does not move.

What is balanced and unbalanced force?

A force is said to be balanced when the sum of all the forces acting on object is equal to zero.

A force is said to be unbalanced when sum of all the firces acting on object is not equal to zero.

In other words, some of the force applied is greater than others.

So when you want to push a car with a dead battery and you apply 200 N of force, yet the car does not move, we can conclude that all the forces acting on the car are equal since the car is at equilibrium.

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What is true about the requirements of your academic care plan

Answers

Care plans are a technique to approach academic tasks strategically and make them run more quickly. They also make it possible for an academic team to communicate effectively.

A nursing care plan's goal is to list the patient's needs, preferences, and the nursing interventions (or implementations) that are planned to address those goals.

The care plan is intended to guarantee continuity of care and is kept as a part of the patient's medical file.

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1. Which mathematical function models the shape of a transverse wave?
a. Sine
b. Cosine
c. Tangent

2. What is the relationship between period and frequency?
a. Period is the inverse of frequency
b. Period is a multiple of frequency
c. Period is the quotient of frequency
d. Period is the sum of all the frequencies

Answers

A transverse wave can be modelled by a sine function

Period is the inverse of frequency

What is a wave?

A wave's period is the length of time it takes to complete one cycle, whereas its frequency is the number of times it cycles through in a second.

The relationship can be expressed mathematically as T = 1/f, where T is the period in seconds and f is the frequency in hertz (Hz).

This indicates that as a wave's frequency increases, so does its period, and the opposite is also true.

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A battery has 2 cells .Each of the potential difference 1.2v.If the cells are connected in parallel and the total current flowing through is 4.0A.Draw a circuit diagram to show the circuit arrangement

Answers

The connection of the circuit is shown in the image attached here.

What is a parallel?

When we heat that a connection is done in parallel our minds would have to go to a connection that is made to common junction. The implication of this is that there are wires that would come out from each of the cells and that the wires would be joined at a common point.

Many different applications, including electric automobiles where many batteries may be connected in parallel to enhance the range and power output of the vehicle, can benefit from the parallel connection of cells.

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How far, and in what direction, should a cellist move her finger to adjust a string's tone from an out-of-tune 454 Hz to an in-tune 440 Hz? The string is 68.0 cm long, and the finger is 19.2 cm from the nut for the 454-Hz tone. (Assume the tone comes from the portion of the string between the cellist's finger and the end opposite the nut. Assume the string vibrates in the fundamental mode. Take the direction towards the nut to be positive. Indicate the direction with the sign of your answer.)

Answers

The cellist should move her finger in the negative direction by 3.17 cm to adjust the string's tone from 454 Hz to 440 Hz.

To adjust the string's tone from 454 Hz to 440 Hz, the cellist needs to increase the tension in the string. This can be achieved by shortening the length of the string, which the cellist can do by moving her finger closer to the nut.

We can use the formula for the fundamental frequency of a vibrating string to calculate the required change in length:

[tex]f = (1/2L)*\sqrt{T/u}[/tex]

where f is the frequency, L is the length of the string, T is the tension in the string, and μ is the linear mass density of the string.

Since the string length and tension are constant, we can write:

f ∝ 1/√μ

So the frequency is inversely proportional to the square root of the linear mass density.

We can use the known frequency ratio to find the required change in linear mass density:

454 Hz / 440 Hz = sqrt(μ₂/μ₁)

where μ₁ is the initial linear mass density and μ₂ is the final linear mass density.

Solving for μ₂, we get:

μ₂ = μ₁ * [tex](454/440)^2[/tex]

μ₂ = 1.065 * μ₁

So the linear mass density needs to increase by 6.5%.

The cellist's finger is initially 19.2 cm from the nut for the 454 Hz tone. To adjust the string to the 440 Hz tone, the cellist needs to move her finger closer to the nut by a distance that shortens the vibrating portion of the string by 6.5%.

The total length of the string is 68.0 cm, so the portion of the string between the nut and the finger is initially 68.0 cm - 19.2 cm = 48.8 cm.

To shorten the vibrating portion of the string by 6.5%, the cellist needs to move her finger by a distance of:

Δx = 0.065 * 48.8 cm

Δx ≈ 3.17 cm

Since the direction towards the nut is defined as positive, the cellist should move her finger in the negative direction by 3.17 cm to adjust the string's tone from 454 Hz to 440 Hz.

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Help need asap need 13 and 14

Answers

13a. The height needed to obtain a potential energy of 2.2×10³ J is 0.18 m

13b. The height needed to obtain a potential energy of 2.8×10⁵ J is 22.86 m

14. The kinetic energy of the rock is 0.12 J

13a. How do i determine the height?

The height needed can be obtained as follow:

Mass of car (m) = 1250 KgPotential energy (PE) = 2.2×10³ JAcceleration due to gravity (g) = 9.8 m/s² Height (h) =?

PE = mgh

2.2×10³ = 1250 × 9.8 × h

2.2×10³ = 12250 × h

Divide both sides by 12250

h = 2.2×10³ / 12250

h = 0.18 m

Thus, the height needed is 0.18 m

13a. How do i determine the height?

The height needed can be obtained as follow:

Mass of car (m) = 1250 KgPotential energy (PE) = 2.8×10⁵ JAcceleration due to gravity (g) = 9.8 m/s² Height (h) =?

PE = mgh

2.8×10⁵ = 1250 × 9.8 × h

2.8×10⁵ = 12250 × h

Divide both sides by 12250

h = 2.8×10⁵ / 12250

h = 22.86 m

Thus, the height needed is 22.86 m

14. How do i determine the kinetic energy?

The kinetic energy can be obtained as shown below:

Mass (m) = 8.5 lb = 8.5 / 2.205 = 3.85 KgVelocity (v) = 25 cm/s = 25 / 100 = 0.25 m/sKinetic energy (KE) =?

KE = ½mv²

KE = ½ × 3.85 × 0.25²

KE = 0.12 J

Thus, the kinetic energy is 0.12 J

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If light goes through a single slit, what will be the pattern that will appear on the target screen?
a. A large bright band will appear directly across from the slit, that gets dimmer farther away from the center
b. Two large bright bands will appear on the target screen, with less bright bands in between them
c. Two large bright bands appear very distant from each other on the target with nothing but dark bands in between them

Answers

If the light goes through a single slit, the pattern that will appear on the target screen is: "A large bright band will appear directly across from the slit, that gets dimmer farther away from the center." The correct option is option A.

When light passes through a single slit, it diffracts and spreads out. This means that the light waves bend and interfere with each other as they pass through the slit, creating a pattern of bright and dark fringes on a screen behind the slit.

The central fringe is bright, with the maximum intensity of the light, and is surrounded by smaller and dimmer fringes on either side. These fringes are the result of constructive and destructive interference between the light waves passing through the slit.

The width of the slit plays an important role in determining the pattern of the fringes. If the slit is narrow, the diffraction of light will be more pronounced, resulting in a wider central fringe and smaller, more numerous side fringes. If the slit is wider, the central fringe will be narrower and the side fringes will be wider.

The distance between the slit and the screen also affects the pattern of the fringes. The closer the screen is to the slit, the wider the fringes will be, and the farther away the screen is from the slit, the narrower the fringes will be.

The diffraction of light through a single slit is an important phenomenon in physics and is used in various applications such as optical spectroscopy and the study of crystal structures.

Option B, "Two large bright bands will appear on the target screen, with less bright bands in between them," is incorrect. This pattern is actually the interference pattern that occurs when light passes through two parallel slits. When light passes through a single slit, the pattern is a central bright band with smaller, dimmer bands on either side.

Option C, "Two large bright bands appear very distant from each other on the target with nothing but dark bands in between them," is also incorrect. This pattern is the interference pattern that occurs when light passes through multiple slits, such as in a diffraction grating. When light passes through a single slit, the pattern is a central bright band with smaller, dimmer bands on either side.

Therefore, The correct answer is option A.

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what might happen if the DMV closed and we let private companies offer their own driver licenses on the free market?

Answers

If the DMV closed and we let private companies offer their own driver licenses on the free market then the competition in the market will increase.

What would happen?

If the DMV (Department of Motor Vehicles) were to close and private companies were allowed to offer their own driver licenses on the free market, then private companies are competing to offer the best driver's licenses, they may innovate, run more efficiently, and offer better customer service.

As a result, license application processes might become simpler, quicker, and perhaps even less expensive.

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A racing car has a mass of 1530 kg. What is its kinetic energy if it has a speed of 120 km/h? Assume that air resistance is negligible.

Answers

The kinetic energy of the racing car is approximately 849952.4 J joules.

What is its kinetic energy of the car?

Kinetic energy is simply a form of energy a particle or object possesses due to its motion.

It is expressed as;

K = (1/2)mv²

Where m is mass of the object and v is its velocity.

Convert the speed from kilometers per hour to meters per second since the units of mass and velocity need to be consistent.

We know that 1 km/h = 0.27777 m/s, so:

120 km/h x (0.27777 m/s/km/h) = 33.3336 m/s (rounded to 4 decimal places)

Now we can substitute the values into the formula:

Kinetic Energy = (1/2) × 1530 kg x (33.3336 m/s)²

Kinetic Energy = 849952.4 J

Therefore, the kinetic energy is approximately 849952.4 joules.

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What is the style of Thomas Eakins's Max Schmitt in a Single Scull (1871)?

Naturalism

Pictorialism

Realism

Romanticism

Answers

The style of Thomas Eakins's Max Schmitt in a Single Scull (1871) is Realism.

Two moles of helium gas initially at 170 K
and 0.23 atm are compressed isothermally to
1.78 atm.

1): Find the final volume of the gas. Assume
that helium behaves as an ideal gas. The
universal gas constant is 8.31451 J/K · mol.
Answer in units of m3

2): Find the work done by the gas.
Answer in units of kJ.

3): Find the thermal energy transferred.
Answer in units of kJ.

Answers

The final volume of the gas is  9.16 × 10⁻³ m³, the work done by the gas is -0.0147 kJ, and the thermal energy transferred is  0.0147 kJ.

We can use the following equations to solve this problem:

Boyle's Law: PV = constant at constant temperature (isothermally)

Work done by a gas: W = -P∆V

Thermal energy transferred: Q = -W (assuming no heat transfer between the gas and its surroundings)

1. Given:

n = 2 mol (number of moles of helium gas)

T = 170 K (initial temperature)

P1 = 0.23 atm (initial pressure)

P2 = 1.78 atm (final pressure)

R = 8.31451 J/K·mol (universal gas constant)

Using Boyle's Law, we can write:

P1V1 = P2V2

V2 = (P1V1) / P2

V1 = (nRT) / P1 (using PV = nRT)

Substituting the given values:

V2 = (0.23 mol/m3 × 2 mol × 8.31451 J/K·mol × 170 K) / 1.78 atm

V2 ≈ 9.16 × 10⁻³ m³

Therefore, the final volume of the gas is approximately 9.16 × 10⁻³ m³.

2. The work done by the gas can be calculated using the equation:

W = -P∆V

Substituting the given values:

W = -(1.78 atm - 0.23 atm) × (9.16 × 10⁻³ m³)

W ≈ -0.0147 kJ

Therefore, the work done by the gas is approximately -0.0147 kJ.

3. The thermal energy transferred can be calculated using the equation:

Q = -W

Substituting the value of W obtained in part 2:

Q = -(-0.0147 kJ)

Q ≈ 0.0147 kJ

So, the thermal energy transferred is approximately 0.0147 kJ.

Hence, The gas has a final volume of 9.16 × 10⁻³ m³, does work of -0.0147 kJ, and transfers thermal energy of 0.0147 kJ.

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What is the term for the basic unit of electric current?
The basic unit of electric current is the

Answers

The term for basic unit of electric current is called the ampere

What is Electricity?

Electricity is a collection of physical phenomena related to the presence and motion of matter having an electric charge. Both electricity and magnetism are related to the phenomenon of electromagnetic, as defined by Maxwell's equations.

For electricity generation, the three basic forms of energy are fossil fuels (coal, natural gas, and petroleum), nuclear energy, and renewable energy sources. The majority of electricity is produced by steam turbines powered by fossil fuels, nuclear, biofuels, geothermal, and solar thermal energy.

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Fill in the blanks to complete each statement about the age of Earth.

According to scientific evidence, Earth is approximately 4.6
years old.

Scientists used
dating to determine Earth’s age.

Answers

The age of the earth is 4.6 billion years old. and scientist used radioactive dating to determine the Earth’s age.

Scientists used radiometric dating to determine Earth's age. Radiometric dating is a technique that uses the decay of radioactive isotopes to determine the age of rocks and other materials. By measuring the ratio of parent isotopes to daughter isotopes, scientists can calculate how long ago a rock or mineral formed. This method has been used to estimate the age of the Earth and other objects in the solar system.

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Answer: billion, radioactive

Explanation:

The drawing shows four situations in which two very long wires are carrying the samecurrent, although the direction of the currents may be different. The point P in the drawings is equidistant from each wire. Which one (or more) of these situations gives rise to a zero net magnetic field at P?​

Answers

Situation (a) results in a zero net magnetic field at point P. Option 1 is correct.

In situation (a), the two wires are carrying currents in opposite directions. At point P, the magnetic field due to one wire will be in the opposite direction of the magnetic field due to the other wire. Since the two fields are equal in magnitude and opposite in direction, they cancel each other out, resulting in a net magnetic field of zero at point P.

In situations (b), (c), and (d), the currents are either in the same direction or the wires are at different distances from point P. In these situations, the magnetic fields due to the wires do not cancel each other out at point P, resulting in a nonzero net magnetic field. Therefore, only situation (a) gives rise to a zero net magnetic field at point P. Option 1 is correct.

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1. Where is the magnetic field the strongest on a bar magnet?
a. Closest to the poles
b. A medium distance away from the poles

2. If a step-down transformer has 220 V coming into the primary coil of 30 turns and 140 V is coming out of the second coil, how many turns in are in the secondary coil?
a. 30
b. 19
c. 0.05
d. 7

Answers

1. The magnetic field the strongest on a bar magnet Closest to the poles.

2. There are 19 turns  in the secondary coil

How do you calculate the turns in the secondary coil?

To find the number of turns  in the secondary coil, we say

Vp/Vs = Np/ Ns

Vp is for the primary voltage

Vs is for secondary voltage

Np is for primary turns

Ns is for secondary turns

This translates to;

220/140 = 30/ Ns

1.571 = 30/Ns

To find Ns, we say

Ns = 30/1.571

= 19

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An ideal gas, initially at a volume of 6 L and
pressure of 8 kPa, undergoes isothermal expansion until its volume is 8 L and its pressure
is 6 kPa.

1): Calculate the work done by the gas during
this process.
Answer in units of J.

2): Find the heat added to the gas during this
process.
Answer in units of J.

Answers

(1) The work done by the gas during this process is -13.71 J.

(2) The heat added to the gas during this process 13.71 J.

What is the work done by the gas?

The work done by the gas is calculated as follows;

W = -nRT ln(V₂/V)

Where;

V₁ is the initial volume of the gasV₂ is the final volume of the gasn is the number of molesR is the ideal gas constant

The number of moles of gas is calculated as follows;

n = PV/RT

n = (8 kPa x 6 L) / (8.314 J/mol.K x 273 K)

n = 0.021 mol

The work done by the gas is calculated as follows;

W = -nRT ln(V₂/V)

W = -(0.021 x 8.314 x 273) ln(8/6)

W = -13.71 J

For isothermal process, the change in internal energy is zero.

So, the heat added to the gas is equal to the work done on the gas.

Q = -W = 13.71 J

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describe a process that would satisfy the conservation of energy principle but does not actually occur in nature

Answers

The perpetual machine would satisfy the conservation of energy principle but does not actually occur in nature

What is the energy conservation principle?

We have to note that energy can not be created nor destroyed but we can be able to convert energy from one form to the other. This is the principle that we call the principle of conservation of energy.

The concept of a "perpetual motion machine," a hypothetical apparatus that would continue to function endlessly without any external energy input, is one example of a process that would satisfy the conservation of energy principle but does not really exist in nature.

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What is the Main impact that tsunamis have on humans? (Science)

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Answer:

Explanation:

Tsunamis can have a devastating impact on human populations. The primary impact of a tsunami is the destruction of coastal communities and infrastructure. The powerful waves can inundate low-lying areas, destroying buildings, homes, and infrastructure such as roads, bridges, and ports. The destruction caused by tsunamis can result in the loss of life, injury, displacement, and economic disruption.

Tsunamis can also have secondary impacts on human populations, such as the disruption of essential services like water and electricity, which can exacerbate the already difficult living conditions in affected areas. The destruction of crops and fisheries can also have long-term economic impacts on affected communities.

It is essential to note that the impact of a tsunami can vary greatly depending on a range of factors, such as the size of the wave, the distance from the epicenter of the earthquake that caused the tsunami, and the preparedness and resilience of the affected communities. Therefore, it is crucial to have effective early warning systems and evacuation plans in place to minimize the impact of a tsunami on human populations.


In a non-uniform electric field, an electric dipole experiences ___ .

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In a non-uniform electric field, an electric dipole experiences both a torque and a net force.

What more should you know about a non-uniform electric field?

In a non-uniform electric field, the electric field lines are not parallel nor are they evenly spaced out. What this translates to is different parts of an electric dipole experience uneven magnitudes and directions of the electric field.

An electric dipole is a pair of opposite charges separated by a distance, which creates a dipole moment.

When there is a non-uniform electric field, the charges in the dipole have different forces in opposite directions.

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Have you ever seen long trains snake through the countryside? Sometimes a train will have two or more locomotives, or engines, pulling it. And, occasionally, a train will have one or more locomotives at the very end. Why would a train need more than one locomotive? Apply what you have learned about forces and net forces to explain what problems might be solved by adding locomotives to a train.

Help please D:

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Trains with multiple locomotives are often used to address two primary issues related to forces and net forces: the need for additional power to pull a heavy load, and the need to distribute that pulling power more evenly across the length of the train.

A locomotive, also known as a "locomotive engine" or simply a "loco," is a type of railway vehicle that provides the motive power for a train. It is essentially a self-propelled engine that generates the power necessary to move the train along the tracks. Locomotives can be powered by various means, including steam, diesel, or electricity, and they typically feature a large, distinctive shape with a cylindrical body and a smokestack. The locomotive is often considered the most important part of a train, as it is responsible for providing the power and control needed to move the train safely and efficiently along the tracks.

First, trains carrying heavy loads such as coal, ore, or shipping containers require a lot of pulling power to get moving and keep moving at a steady speed. If a single locomotive isn't powerful enough to provide the necessary force to pull the entire train, additional locomotives can be added to increase the pulling power. This is known as "doubling up" or "tripling up" the locomotives, and it allows the train to move heavy loads more efficiently.

Second, adding locomotives to the front and back of a long train helps to distribute the pulling power more evenly across the length of the train. A long train can experience significant resistance or drag, which can slow down the train or even cause it to come to a stop. By adding locomotives at both ends, the pulling force is distributed more evenly throughout the length of the train, reducing the overall drag and making it easier to maintain a steady speed.

Therefore, adding locomotives to a train can help to provide additional power to pull a heavy load and distribute that pulling power more evenly across the length of the train. This allows the train to move more efficiently and maintain a steady speed, ultimately making it more productive and cost-effective for the transportation of goods.

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how do rainbows form in the sky

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Answer:

Rainbows form in the sky when sunlight is refracted, or bent, as it enters a raindrop. This bending causes the different colors in the light to separate and spread out, forming the characteristic arc of a rainbow. The colors are arranged in a specific order, with red on the outer edge of the arc and violet on the inner edge. The colors are also more vivid when the sun is lower in the sky, such as during sunrise or sunset, because the light has to travel through more of the Earth's atmosphere to reach your eyes.

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