Part A: Calculate the work done (in SI units) when 1 mole of gas expands from 5 dmº to 10 dm2 against a constant pressure of 1 atmosphere. Part B: A steam turbine is operating under the following conditions: steam to the turbine at 900°F and 120 psia, velocity – 250 ft/s; steam exiting at 700°F and 1 atm, velocity = 100 fts. Under these conditions, the enthalpy rate in and out are given as 1478.8 Btu/lb and 1383.2 Btu/lb as read from the steam tables, respectively. Calculate the rate at which work (in horsepower, hp) can be obtained from the turbine if the steam flow is 25,000 lb/h and the turbine operation is steady stat adiabatic.

Answers

Answer 1

Part A: the work done by 1 mole of gas is 0.5065 J. Part B: the rate at which work can be obtained from the turbine is 9286.36 hp.

Part A:Work done by an ideal gas is given by W = pΔV. Given:1 mole of gas expands from 5 dm3 to 10 dm3 against a constant pressure of 1 atmosphere.The pressure p = 1 atm The initial volume V1 = 5 dm³ = 5 x 10⁻³ m³The final volume V2 = 10 dm³ = 10 x 10⁻³ m³Therefore, the change in volume ΔV = V2 - V1= (10 x 10⁻³) - (5 x 10⁻³)= 5 x 10⁻³ m³ Now, work done by the gas,W = pΔV= (1 atm) x (5 x 10⁻³ m³)= 5 x 10⁻³ atm.m³ But, 1 atm.m³ = 101.3 J Therefore, W = (5 x 10⁻³) x 101.3= 0.5065 J Hence, the work done by 1 mole of gas is 0.5065 J.

Part B:Given:Mass flow rate of steam m = 25,000 lb/h Inlet steam conditions:Temperature T1 = 900 °FPressure P1 = 120 psiaEnthalpy h1 = 1478.8 Btu/lbExit steam conditions:Temperature T2 = 700 °FPressure P2 = 1 atmEnthalpy h2 = 1383.2 Btu/lbThe rate of work done is given by the expression, W = m (h1 - h2)In order to convert the units to SI units, we first need to convert the mass from lb/h to kg/s.1 lb = 0.4536 kg; 1 h = 3600 sTherefore, 1 lb/h = 0.4536/3600 kg/s = 1.26 x 10⁻⁴ kg/s Mass flow rate of steam m = 25,000 lb/h = 3.15 kg/s.

Therefore, the rate of work done isW = m (h1 - h2) = (3.15) (h1 - h2) Let's convert the enthalpies from Btu/lb to J/kg,1 Btu = 1055.06 J; 1 lb = 0.4536 kg Therefore, 1 Btu/lb = 2326 J/kgEnthalpy h1 = 1478.8 Btu/lb = 1478.8 x 2326 J/kg= 3.44 x 10⁶ J/kgEnthalpy h2 = 1383.2 Btu/lb = 1383.2 x 2326 J/kg= 3.22 x 10⁶ J/kgSubstituting the values in the equation,W = m (h1 - h2) = (3.15) (3.44 x 10⁶ - 3.22 x 10⁶)= 6.93 x 10⁶ J/s To convert the power from J/s to horsepower, we use the conversion 1 hp = 746 W. Power P = W/746= (6.93 x 10⁶) / 746= 9286.36 hp .

Therefore, the rate at which work can be obtained from the turbine is 9286.36 hp.

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Related Questions

Question 32 (1 point) Vibrations at an angle of 90° to the direction of propagation are waves. Question 33 (1 point) The intensity of a sound at 200 m is A times less than the intensity of sound at 100 m. Question 34 (1 point) Sounds above the sonic frequency range of humans are known as A and below the sonic frequency range the sound are called A/ Question 35 (1 point) The number of cycles per second a sound wave delivers to the ear is its A to a physicist but musicians or the general public refer to this as Question 36 (1 point) The Doppler effect is associated with the difference in A heard when a source of sound and the ear are moving relative to each other.

Answers

Answer: Only statement 32 is false.

32: Vibrations at an angle of 90° to the direction of propagation are waves.

This statement is false. The vibrations which are perpendicular to the direction of propagation of the wave is known as a transverse wave. The vibrations which are in the direction of propagation of the wave are known as longitudinal waves.

33: The intensity of a sound at 200 m is A times less than the intensity of sound at 100 m.

This is true. The intensity of sound is inversely proportional to the square of the distance from the source. Therefore, if the distance is doubled, then the intensity decreases by four times, hence A times less than the intensity of the sound at 100 m.

34: Sounds above the sonic frequency range of humans are known as ultrasonic and below the sonic frequency range the sound are called infrasonic.

This statement is true. Infrasonic waves are the waves with frequencies less than 20 Hz whereas the waves with frequencies greater than 20 kHz are known as ultrasonic waves.

35: The number of cycles per second a sound wave delivers to the ear is its frequency to a physicist but musicians or the general public refer to this as pitch.

This statement is true. The number of cycles per second of a sound wave is its frequency which is measured in hertz. Pitch is how high or low a sound is and it is usually associated with the frequency of the sound wave.

36: The Doppler effect is associated with the difference in frequency heard when a source of sound and the ear are moving relative to each other.

This statement is true. The Doppler effect is the change in frequency or wavelength of a wave in relation to an observer who is moving relative to the wave source. This effect is used in various applications like medical ultrasound, astronomical measurements, and weather radar systems.

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An RC circuit has an unknown resistance and an initially uncharged capacitor of 666 x 106 F When connected to a source potential, it takes the capacitor 27.6 s to become 85.6 % fully charged. What is the resistance of the circuit? Enter a number rounded to the nearest 100 place.

Answers

Rounded to the nearest 100th place, the resistance of the circuit is approximately 41,400 ohms.

To find the resistance of the RC circuit, we can use the time constant formula:

τ = R * C

where τ is the time constant, R is the resistance, and C is the capacitance.

In this case, the time constant is given by:

τ = 27.6 s

The capacitor reaches 85.6% of its full charge in the time constant, so we can write the equation:

0.856 = 1 - e^(-t/τ)

Simplifying, we have:

e^(-t/τ) = 1 - 0.856

e^(-t/τ) = 0.144

Taking the natural logarithm of both sides, we get:

-t/τ = ln(0.144)

Solving for t/τ, we have:

t/τ ≈ -1.942

Now, we can substitute the given values to solve for the resistance R:

τ = R * C

27.6 s = R * (666 x 10^(-6) F)

R = 27.6 s / (666 x 10^(-6) F)

R ≈ 41,441 ohms

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A particle m=0.0020kg, is moving (v=2.0m/s) in a direction that is perpendicular to a magnetic field (B=3.0T). The particle moves in a circular path with radius 0.12m. How much charge is on the particle? Please show your work.

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The problem requires determining the amount of charge on a particle moving in a circular path perpendicular to a magnetic field. The charge on the particle is approximately 0.0111 Coulombs.

When a charged particle moves in a magnetic field perpendicular to its velocity, it experiences a force that causes it to move in a circular path. This force is given by the equation F = qvB, where F is the magnetic force, q is the charge on the particle, v is its velocity, and B is the magnetic field strength.

In this case, the mass of the particle (m = 0.0020 kg), its velocity (v = 2.0 m/s), and the magnetic field strength (B = 3.0 T) is given. The centripetal force required to keep the particle in a circular path is given by:

[tex]F = mv^2/r[/tex], where r is the radius of the circular path.

By equating the magnetic force and the centripetal force,

[tex]qvB = mv^2/r[/tex]

Rearranging the equation gives [tex]q = (mv^2)/(rB)[/tex]

Plugging in the given values,

[tex]q = (0.0020 kg * (2.0 m/s)^2) / (0.12 m * 3.0 T)[/tex].

Calculating the expression yields q ≈ 0.0111 C.

Therefore, the charge on the particle is approximately 0.0111 Coulombs.

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Calculate the angular momenta of the earth due to its rotational motion about its own axis (effect days and nights) and due to its rotational motion around the sun (effect season change).

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The angular momenta about its own axis is7.2 *[tex]10^{33}[/tex] kg[tex]ms^{2}[/tex][tex]s^{-1}[/tex].The angular momenta of earth around the sun is 2.663x[tex]10^{40}[/tex] kg[tex]m^{2} s^{-1}[/tex]

To calculate the angular momenta of the Earth, we need to consider two components: Angular momentum due to the Earth's rotational motion about its own axis (causing day and night).

Angular momentum due to the Earth's rotational motion around the Sun (causing season change).Let's calculate each component separately:

Angular momentum due to the Earth's rotational motion about its own axis:The formula for angular momentum is given by L = Iω, where L is the angular momentum, I is the moment of inertia, and ω is the angular velocity.

The moment of inertia for a solid sphere rotating about its axis is given by I = (2/5) * M * R^2, where M is the mass of the Earth and R is the radius of the Earth.

The angular velocity of the Earth's rotation about its own axis is approximately ω = 2π/T, where T is the period of rotation. The period of rotation for the Earth is approximately 24 hours, which is equivalent to 86,400 seconds.

Substituting the values into the formula, we have:

L1 = I * ω = (2/5) * M * R^2 * (2π / T)=7.2 *[tex]10^{33}[/tex] kg[tex]ms^{2}[/tex][tex]s^{-1}[/tex]

Angular momentum due to the Earth's rotational motion around the Sun:The formula for angular momentum in this case is also L = Iω, but the moment of inertia and angular velocity are different.

The moment of inertia for a planet rotating around an axis passing through its center and perpendicular to its orbital plane is given by I = M * R^2, where M is the mass of the Earth and R is the average distance from the Earth to the Sun (approximately 149.6 million kilometers).

The angular velocity for the Earth's rotation around the Sun is approximately ω = 2π / T', where T' is the period of revolution. The period of revolution for the Earth around the Sun is approximately 365.25 days, which is equivalent to approximately 31,557,600 seconds.

Substituting the values into the formula, we have:

L2 = I * ω = M * R^2 * (2π / T')=2.663x[tex]10^{40}[/tex] kg[tex]m^{2} s^{-1}[/tex]

Please note that the above calculations assume certain idealized conditions and do not take into account factors such as the Earth's axial tilt or variations in orbital speed due to elliptical orbits.

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A 30-kg boy puts his entire weight on the small plunger of a hydraulic press. What weight can the larger piston lift if the diameters of both pistons are 1 cm and 12 cm?

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The larger piston can lift a weight of 1686.42 N

The ratio of the diameter of the larger piston to the diameter of the smaller piston is 12: 1. So the ratio of the area of the larger piston to the area of the smaller piston will be (12/1)² : 1² = 144:1.

Therefore, the larger piston can lift a weight that is 144 times heavier than the weight placed on the smaller piston. Now, the smaller piston has a surface area of: (1/2)²π = 0.785 sq cm. So, if the 30 kg boy puts his entire weight on the small plunger, then the force exerted on the small plunger will be 30 kg x 9.8 m/s² = 294 N. And, this force will act over the surface area of the small plunger.

Thus, the pressure in the system will be: Pressure = Force / Area of the small piston = 294 N / 0.785 sq cm = 374.52 N/sq cm. And, this pressure will be transmitted uniformly throughout the hydraulic system.

Finally, using the formula: Pressure = Force / Area of the large piston, we can calculate the weight that the larger piston can lift.

So, the weight that the larger piston can lift will be:

Force = Pressure x Area of the large piston = 374.52 N/sq cm x (6 cm)²π / 4 = 1686.42 N.

So, the larger piston can lift a weight of 1686.42 N if the diameters of both pistons are 1 cm and 12 cm.

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6. An airplane heads from Calgary, Alberta to Sante Fe, New Mexico at [S 28.0° E] with an airspeed of 662 km/hr (relative to the air). The wind at the altitude of the plane is 77.5 km/hr [S 75 W) relative to the ground. Use a trigonometric approach to answer the following. (4 marks) a. What is the resultant velocity of the plane, relative to the ground (groundspeed)?

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The resultant velocity of the plane, relative to the ground (groundspeed) is approximately 315.82 km/hr which is calculated using a trigonometric approach.

To find the groundspeed of the plane, we need to calculate the resultant velocity by considering the vector addition of the plane's airspeed and the wind velocity.

First, we decompose the airspeed into its components. The southward component of the airspeed can be found by multiplying the airspeed (662 km/hr) by the sine of the angle between the direction of the airspeed and the south direction ([tex]28.0^0[/tex]). This gives us a southward airspeed component of approximately 309.81 km/hr.

Next, we decompose the wind velocity into its components. The westward component of the wind velocity is obtained by multiplying the wind velocity (77.5 km/hr) by the cosine of the angle between the wind direction and the east direction ([tex]180^0 - 75^0 = 105^0[/tex]). This gives us a westward wind component of approximately 31.59 km/hr.

Now, we can find the resultant velocity by adding the components. The groundspeed is the magnitude of the resultant velocity and can be calculated using the Pythagorean theorem. The groundspeed is approximately 315.82 km/hr.

To summarize, the resultant velocity of the plane, relative to the ground, is approximately 315.82 km/hr. This is obtained by considering the vector addition of the plane's airspeed and the wind velocity.

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1- The motion of a star caused by an orbiting planet is called a "wobble."
Why does the star wobble when it has an orbiting planet?
2- Based on your observations, what is the relationship between the movement of the star and the mass of the planet?
3- What happens to the wobble motion of the star when the planet has a very low mass?
a) the star continues to wobble
b) the star stops wobbling
4- Explain your answer
5- How certain are you about your claim based on your explanation? Select an option
(1) Not at all certain, (2), (3), (4), (5) Very Certain
6- Explain what influenced your certainty rating.

Answers

1. The motion of a star caused by an orbiting planet is called a "wobble" because of the gravitational pull of the planet on the star. This gravitational pull causes the star to move back and forth as the planet orbits around it. This motion can be detected by observing the light emitted by the star. The wavelength of the light will change as the star moves towards or away from the observer. This is known as the Doppler effect.

2. The movement of the star is directly related to the mass of the

planet

. The more massive the planet, the stronger the gravitational pull, and the greater the wobble of the star. The opposite is also true; the less massive the planet, the weaker the gravitational pull, and the smaller the wobble of the star.

3. When the planet has a very low mass, the wobble motion of the

star

continues, albeit with a much smaller amplitude. Therefore, the answer is (a) the star continues to wobble.

4. The wobbling motion of the star is caused by the

gravitational pull

of the planet. The larger the planet, the stronger the gravitational pull, and the greater the wobble of the star. The opposite is true for smaller planets. Therefore, when the planet has a very low mass, the wobble motion of the star continues but with a much smaller amplitude.

5. I am (5) very certain about my claim based on the scientific explanation provided.

6. My certainty rating is influenced by the fact that the explanation is based on scientific principles and has been widely accepted by the scientific community. The

Doppler effect

is well-established, and the relationship between the mass of the planet and the movement of the star is well-understood. Therefore, I am very confident in my answer.

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When an orbiting planet interacts with a star, it causes the star to wobble due to gravitational forces. The wobble's magnitude depends on the planet's mass, with more massive planets causing larger wobbles.

1- The star wobbles when it has an orbiting planet because of the gravitational interaction between the two objects. As the planet orbits the star, it exerts a gravitational force on the star, causing it to move slightly. This motion is known as the "wobble" of the star.

2- The movement of the star is directly related to the mass of the planet. A more massive planet will exert a stronger gravitational force on the star, causing a larger wobble. Conversely, a less massive planet will exert a weaker gravitational force, resulting in a smaller wobble.

3- When the planet has a very low mass, the star continues to wobble. The gravitational force between the star and the planet is still present, although it is relatively weaker compared to the wobble caused by a more massive planet.

4- The star continues to wobble even with a low-mass planet because gravity is always present and exerts a force on both objects. The wobble may be smaller, but it is still observable.

5- I am very certain about this claim based on the fundamental principles of gravity and the understanding that even objects with very small masses can exert gravitational forces.

6- My certainty is influenced by the well-established laws of gravity and the extensive observations and research conducted in the field of astrophysics, which support the relationship between the mass of the planet and the wobble of the star. Additionally, this explanation is consistent with the known behavior of celestial objects in similar situations.

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An ocean-going research submarine has a 20-cm-diameter window 8.0 cm thick. The manufacturer says the window can withstand forces up to 1.0 X 100 N. What is the submarine's maximum safe depth? The pressure inside the submarine is maintained at 1.0 atm.

Answers

The maximum safe depth of the submarine is approximately 10,317 meters can be determined by calculating the pressure exerted on the window and comparing it to the manufacturer's stated limit.

To calculate the maximum safe depth of the submarine, we need to consider the pressure exerted on the window. The pressure exerted by a fluid is given by the equation P = ρgh, where P is the pressure, ρ is the density of the fluid, g is the acceleration due to gravity, and h is the depth. In this case, the fluid is seawater.

First, we need to determine the pressure exerted on the window at the maximum safe depth. The pressure inside the submarine is maintained at 1.0 atm, which is equivalent to 101,325 Pa. We can assume that the density of seawater is approximately [tex]1,030 kg/m^3[/tex] and the acceleration due to gravity is [tex]9.8 m/s^2[/tex].

Using the equation P = ρgh, we can rearrange it to solve for h: h = P / (ρg). Plugging in the values, we have h = [tex]101,325 Pa / (1,030 kg/m^3 * 9.8 m/s^2)[/tex], which gives us the maximum safe depth of the submarine.

To find out the numerical value, we need to evaluate the expression. The maximum safe depth of the submarine is approximately 10,317 meters.

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Learning Goal: Photoelectric Effect The work function of calcium metal is W 0

=2.71eV. 1 electron volt (eV)=1.6×10 −19
J. Use h=6.626×10 −34
J⋅s for Planck's constant and c= 3.00×10 8
m/s for the speed of light in a vacuum. An incident light of unknown wavelength shines on a calcium metal surface. The max kinetic energy of the photoelectrons is 9.518×10 −20
J. Part A - What is the energy of each photon in the incident light? Use scientific notations, format 1.234 ∗
10 n,⋅
unit is Joules photon energy = J Part B - What is the wavelength of the incident light? Enter a regular number with 1 digit after the decimal point, in nm.1 nm=10 −9
m

Answers

A.The energy of each photon in the incident light is approximately 1.1854 × 10^-19 J

B.The wavelength of the incident light is approximately 1993 nm.

Work function (W₀) = 2.71 eV

1 electron volt (eV) = 1.6 × 10^−19 J

Max kinetic energy of photoelectrons = 9.518 × 10^−20 J

Planck's constant (h) = 6.626 × 10^−34 J·s

Speed of light in a vacuum (c) = 3.00 × 10^8 m/s

Part A: Calculating the energy of each photon in the incident light.

We know that the maximum kinetic energy (K.E.) of the photoelectrons is given by the equation:

K.E. = Energy of incident photon - Work function

Let's denote the energy of each photon as E and rearrange the equation:

E = K.E. + Work function

Substituting the given values:

E = 9.518 × 10^−20 J + 2.71 eV × 1.6 × 10^−19 J/eV

Converting eV to joules:

E = 9.518 × 10^−20 J + (2.71 eV × 1.6 × 10^−19 J/eV)

E = 9.518 × 10^−20 J + 4.336 × 10^−20 J

E = 1.1854 × 10^−19 J

So, the energy of each photon in the incident light is approximately 1.1854 × 10^−19 J.

Now, let's move on to Part B: Calculating the wavelength of the incident light.

We can use the equation E = hc/λ, where λ represents the wavelength.

Rearranging the equation, we have:

λ = hc/E

Substituting the given values:

λ = (6.626 × 10^−34 J·s × 3.00 × 10^8 m/s) / (1.1854 × 10^−19 J)

Calculating the value:

λ = 1.993 × 10^−6 m

Converting meters to nanometers:

λ = 1.993 × 10^−6 m × 10^9 nm/m

λ ≈ 1993 nm

Rounding to one decimal place, the wavelength of the incident light is approximately 1993 nm.

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A perfectly elastic collision conserves Select all that apply. mass mechanical energy momentum

Answers

In a perfectly elastic collision, mass, mechanical energy, and momentum are conserved.

In a perfectly elastic collision, two objects collide and then separate without any loss of kinetic energy. This means that the total mechanical energy of the system remains constant before and after the collision. The conservation of mechanical energy implies that no energy is lost to other forms, such as heat or sound, during the collision.

Additionally, the law of conservation of momentum holds true in a perfectly elastic collision. Momentum, which is the product of an object's mass and velocity, is conserved before and after the collision. This means that the total momentum of the system remains constant, even though the individual objects involved in the collision may experience changes in their velocities.

Lastly, the conservation of mass is another important aspect of a perfectly elastic collision. The total mass of the system, which includes all the objects involved in the collision, remains constant throughout the collision. This principle holds true as long as there is no external force acting on the system that could change the mass.

In conclusion, a perfectly elastic collision conserves mass, mechanical energy, and momentum. These principles are fundamental to understanding the behavior of objects interacting through collisions, and they provide valuable insights into the dynamics of physical systems.

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Sound level of fireworks At a fireworks show, a mortar shell explodes 25 m above the ground, momentarily radiating 75 kW of power as sound. The sound radiates from the explosion equally efficiently in all directions. You are on the ground, directly below the explosion. Calculate the sound level produced by the explosion, at your location.

Answers

The sound level produced by the fireworks explosion at your location is approximately 104.8 dB that can be calculated using the given information of power and distance.

To calculate the sound level produced by the fireworks explosion, we can use the formula for sound intensity level (L), which is given by L = 10 log(I/I0), where I is the sound intensity and I0 is the reference intensity [tex](10^{(-12)} W/m^2)[/tex].

First, we need to calculate the sound intensity (I) at the location directly below the explosion. Since the sound radiates equally in all directions, we can assume that the sound energy is spread over the surface of a sphere with a radius equal to the distance from the explosion.

The power (P) of the sound is given as 75 kW. We can use the formula [tex]P = 4\pi r^2I[/tex], where r is the distance from the explosion (25 m in this case), to calculate the sound intensity (I). Rearranging the formula, we have [tex]I = P / (4\pi r^2)[/tex].

Substituting the values into the formula, we get [tex]I = 75,000 / (4\pi(25^2)) = 75,000 / (4\pi(625)) = 0.03 W/m^2.[/tex]

Now, we can calculate the sound level (L) using the formula L = 10 log(I/I0). Substituting the values, we have[tex]L = 10 log(0.03 / 10^{(-12)}) = 10 log(3 * 10^1^0) ≈ 10 * 10.48 = 104.8 dB.[/tex]

Therefore, the sound level produced by the fireworks explosion at your location is approximately 104.8 dB.

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A heat engine does 180 JJ of work per cycle while exhausting 610 JJ of heat to the cold reservoir.
Part A: What is the engine's thermal efficiency? Express your answer using two significant figures.
Part B: A Carnot engine with a hot-reservoir temperature of 390 ∘C∘C has the same thermal efficiency. What is the cold-reservoir temperature in ∘C∘C?
Express your answer using two significant figures.

Answers

The thermal efficiency of the engine is 23% and the cold reservoir temperature of the carrot engine is approx. 511 °C.

Part A: The thermal efficiency of an engine can be defined as the ratio of work done by the engine to the heat energy supplied to it. It is given as: thermal efficiency = work done by the engine/heat energy supplied to the engine. From the question, work done by the engine = 180 J and heat energy exhausted to the cold reservoir = 610 J. Hence, the thermal efficiency of the engine = work done by the engine/heat energy supplied to the engine= (work done by the engine)/(heat energy supplied - heat energy exhausted to the cold reservoir)= (180 J)/(Q_h - 610 J) ... equation (1)Now, to calculate the value of Q_h, we can use the first law of thermodynamics, which states that the energy supplied to the engine is equal to the sum of work done by the engine and heat energy exhausted to the cold reservoir. Mathematically, it can be represented as: energy supplied to the engine = work done by the engine + heat energy exhausted to the cold reservoir Q_h = work done by the engine + heat energy exhausted to the cold reservoir= 180 J + 610 J= 790 J. Now, substituting this value in equation (1), we get: thermal efficiency = (180 J)/(790 J)= 0.23 or 23% (approx). Hence, the thermal efficiency of the engine is 23% (approx).

Part B: Let T_h and T_c be the hot and cold reservoir temperatures of the Carnot engine, respectively. Then, the thermal efficiency of a Carnot engine is given by: thermal efficiency = (T_h - T_c)/T_h= (T_h/T_h) - (T_c/T_h)= 1 - (T_c/T_h)Since the Carnot engine has the same thermal efficiency as the given engine, we can equate the two expressions and solve for T_c. That is,0.23 = 1 - (T_c/T_h)T_c/T_h = 1 - 0.23 = 0.77T_c = 0.77 × T_h. Now, given that T_h = 390 °C (note that the temperature must be converted to Kelvin), we can calculate the value of T_c as:T_c = 0.77 × T_h= 0.77 × (390 + 273) K= 0.77 × 663 K= 511 K (approx)Thus, the cold-reservoir temperature of the Carnot engine is approximately 511 °C.

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A point source that is stationary on an x axis emits a sinusoidal sound wave at a frequency of 874 Hz and speed 343 m/s. The wave travels radially outward from the source, causing air molecules to oscillate radially inward and outward. Let us define a wavefront as a line that connects points where the air molecules have the maximum, radially outward displacement. At any given instant, the wavefronts are concentric circles that are centered on the source. (a) Along x, what is the adjacent wavefront separation? Next, the source moves along x at a speed of 134 m/s. Along x, what are the wavefront separations (b) in front of and (c) behind the source?

Answers

The adjacent wavefront separation is 39.24 centimeters. The spacetime submanifolds whose normals n annul the characteristic determinant are the wave fronts of a differential system. Wave fronts are used to propagate discontinuities.

(a) The adjacent wavefront separation along the x-axis can be determined using the formula:

λ = v/f

where λ is the wavelength, v is the speed of the wave, and f is the frequency.

Given that the frequency is 874 Hz and the speed is 343 m/s, we can calculate the wavelength:

λ = 343 m/s / 874 Hz = 39.24 centimeters

(b) When the source is moving along the x-axis at a speed of 134 m/s, the wavefront separation in front of the source can be calculated by considering the relative motion between the source and the wavefront. In this case, the source is moving towards the wavefront, which causes a Doppler shift.

The formula for the Doppler shift in frequency when the source is moving towards the observer is:

f' = (v + v_s) / (v + v_o) * f

where f' is the observed frequency, v is the speed of the wave, v_s is the speed of the source, v_o is the speed of the observer, and f is the original frequency.

In this case, the observer is stationary, so v_o = 0. We can substitute the given values into the formula to find the observed frequency. Then, we can use the observed frequency and the speed of the wave to calculate the wavefront separation.

(c) Similarly, when the source is moving along the x-axis at a speed of 134 m/s, the wavefront separation behind the source can be calculated using the same method as in part (b). The only difference is that the source is moving away from the observer, which will cause a Doppler shift in the opposite direction.

By considering the Doppler shift, we can calculate the observed frequency and then use it with the speed of the wave to determine the wavefront separation behind the source.

Note: The specific values of wavefront separations in front of and behind the source would require numerical calculations using the given values for the speed of the source, speed of the wave, and original frequency.

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An insulated beaker with negligible mass contains liquid water with a mass of 0.230 kg and a temperature of 83.7°C. Part A
How much ice at a temperature of −10.2°C must be dropped into the water so that the final temperature of the system will be 29.0°C ? Take the specific heat of liquid water to be 4190 J/kg. K, the specific heat of ice to be 2100 J/kg−K, and the heat of fusion for water to be 3.34×10⁵/kg.

Answers

The mass of ice to be added is 0.0685 kg.

Mass of water in the beaker = m1 = 0.230 kg

Temperature of water = T1 = 83.7 °C

Specific heat of liquid water = c1 = 4190 J/kg. K

Mass of ice to be added = m2

Temperature of ice = T2 = −10.2 °C

Specific heat of ice = c2 = 2100 J/kg. K

Heat of fusion for water = L = 3.34 × 10⁵ /kg

Final temperature of the system = T3 = 29.0 °C

Since the system is insulated, heat gained by ice will be equal to the heat lost by water. So,

m1c1(T1 - T3) = mL + m2c2(T3 - T2)

{Let L be the heat of fusion for water.}

m1c1T1 - m1c1T3 = mL + m2c2T3 - m2c2

T2m2 = [m1c1(T1 - T3) - mL] / [c2(T3 - T2)]

m2 = [(0.230 kg) × (4190 J/kg. K) × (83.7 - 29.0) °C - (0.230 kg) × (3.34 × 10⁵ /kg)] / [(2100 J/kg. K) × (29.0 - (-10.2)) °C)]≈ 0.0685 kg

Therefore, the mass of ice to be added is 0.0685 kg.

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A shoe sits on a ramp without moving. As the angle of the ramp is increased, the shoe starts to move. This is because A) the component of gravity acting along the plane of the ramp has increased. B) the component of the normal force along the ramp has increased. C) the normal force has increased. D) the coefficient of static friction has decreased.

Answers

The correct answer is A) the component of gravity acting along the plane of the ramp has increased.

When an object sits on a ramp, its weight (which is the force due to gravity) can be resolved into two components: one perpendicular to the ramp (the normal force) and one parallel to the ramp. The parallel component of the weight, often referred to as the force of gravity acting along the ramp, determines the frictional force between the shoe and the ramp. For the shoe to remain at rest, the force of static friction between the shoe and the ramp must be equal to or greater than the parallel component of the weight. This static friction counteracts the tendency of the shoe to slide down the ramp.

As the angle of the ramp is increased, the ramp becomes steeper, and the angle between the ramp and the vertical direction increases. Consequently, the parallel component of the weight, which is responsible for the frictional force, increases. This increase in the parallel component of the weight provides a greater force to overcome static friction, allowing the shoe to start moving. Therefore, the shoe starts to move because the component of gravity acting along the plane of the ramp (parallel to the ramp) has increased.

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The work function of a metal surface is 4.80 x 10⁻¹⁹ J. The maximum speed of the emitted electrons is va = 730 km/s when the wavelength of the light is λA. However, a maximum speed of vB = 500 km/s is observed when the wavelength is λB. Find the wavelengths.

Answers

The wavelengths of the electrons at maximum speed 730km/s and 500 km/s are 1.008 × 10^-12 km and 6.9× 10^-13 km respectively.

What is wavelength?

Wavelength is the distance between identical points (adjacent crests) in the adjacent cycles of a waveform signal propagated in space or along a wire.

Wavelength can also be defined as the distance between two successive crest or trough.

Work function of a surface is the minimum energy required to a free electrons to come out of the metal surface.

W = h( v/λ)

where h is the Planck constant = 6.63 × 10^-34 J/s

Therefore;

4.80 × 10^-19 = 6.63 × 10^-34 × 730/λ

λ = 6.63 × 10^-34 × 730)/4.80 × 10^-19

λ = 1.008 × 10^-12 km

Also

4.80 × 10^-19 = 6.63 × 10^-34 × 500/λ

λ = 6.63 × 10^-34 × 500)/4.80 × 10^-19

λ = 6.9× 10^-13 km

Therefore the wavelengths are 1.008 × 10^-12 km and 6.9× 10^-13 km

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An incandescnet light bulb generates an unpolarized light beam that is directed towards three polarizing filters. The first one is oriented with a horizontal transmission axis. The second and third filters have transmission axis 20.0° and 40.0°from the horizontal, respectively. What percent of the light gets through this combination of filters?

Answers

An incandescnet light bulb generates an unpolarized light beam that is directed towards three polarizing filters. Percent transmitted =is given by (Total intensity / I₀) * 100

When an unpolarized light beam passes through a polarizing filter, it becomes partially polarized, meaning its electric field vectors align in a specific direction. The intensity of the light passing through the filter depends on the angle between the transmission axis of the filter and the polarization direction of the light.

In this case, we have three polarizing filters:

1. First filter: Transmission axis is horizontal (0° from the horizontal).

2. Second filter: Transmission axis is 20.0° from the horizontal.

3. Third filter: Transmission axis is 40.0° from the horizontal.

The intensity of light passing through each filter is given by Malus' Law:

I = I₀ * cos²(θ)

Where I₀ is the initial intensity of the light, and θ is the angle between the polarization direction of the light and the transmission axis of the filter.

For the first filter with a horizontal transmission axis, the angle θ is 0°. Therefore, the intensity remains unchanged: I₁ = I₀.

For the second filter with a transmission axis 20.0° from the horizontal, the angle θ is 20.0°. The intensity passing through the second filter is given by: I₂ = I₀ * cos²(20.0°).

For the third filter with a transmission axis 40.0° from the horizontal, the angle θ is 40.0°. The intensity passing through the third filter is given by: I₃ = I₀ * cos²(40.0°).

To find the total intensity of light passing through the combination of filters, we multiply the intensities of each filter together:

Total intensity = I₁ * I₂ * I₃ = I₀ * cos²(20.0°) * cos²(40.0°)

To find the percentage of light transmitted, we divide the total intensity by the initial intensity I₀ and multiply by 100:

Percent transmitted = (Total intensity / I₀) * 100

By substituting the values and calculating, we can determine the percentage of light that gets through the combination of filters.

It's important to note that the percentage of light transmitted will depend on the specific values of the angles and the characteristics of the polarizing filters used.

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An electron moves along the z-axis with v. = 5.5 x 107 m/s. As it passes the origin, what are the strength and direction of the magnetic field at the following (x, y, z) positions? (0 cm, 2.0 cm , 1.0 cm) Express your answers in teslas separated by commas.

Answers

At the position (0 cm, 2.0 cm, 1.0 cm), the magnetic field strength is approximately -8.22 × 10^-13 T in the x-direction, and the magnetic field is zero in the y and z-directions.

To calculate the strength and direction of the magnetic field at a given point due to the motion of an electron, we can use the Biot-Savart law. The Biot-Savart law states that the magnetic field at a point due to a moving charged particle is given by:

B = (μ₀ / 4π) * (q * v × r) / r³

Where:

B is the magnetic field

μ₀ is the permeability of free space (4π × 10^-7 T·m/A)

q is the charge of the electron (-1.6 × 10^-19 C)

v is the velocity vector of the electron

r is the vector pointing from the electron to the point of interest

Let's calculate the magnetic field at the given point (0 cm, 2.0 cm, 1.0 cm):

Position vector r = (0 cm, 2.0 cm, 1.0 cm)

First, let's convert the position vector from centimeters to meters:

r = (0.00 m, 0.02 m, 0.01 m)

Now we can calculate the magnetic field using the given velocity vector:

v = 5.5 × 10^7 m/s in the z-direction

Plugging the values into the Biot-Savart law equation:

B = (μ₀ / 4π) * (q * v × r) / r³

B = (4π × 10^-7 T·m/A / 4π) * (-1.6 × 10^-19 C * (0, 0, 5.5 × 10^7 m/s) × (0.00, 0.02, 0.01) / (0.00² + 0.02² + 0.01²)^(3/2)

B = (-1.6 × 10^-19 C * (0, 0, 5.5 × 10^7 m/s) × (0.00, 0.02, 0.01) / (0.0005)^(3/2)

B = (-1.6 × 10^-19 C * (0, 0, 5.5 × 10^7 m/s) × (0.00, 0.02, 0.01) / 0.00353553

B = (-1.6 × 10^-19 C * (0, 0, 5.5 × 10^7 m/s) × (0.00, 0.02, 0.01) / 0.00353553

B ≈ (-8.22 × 10^-13 T, 0 T, 0 T)

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An automobile manufacturer claims that its
product will, starting from rest, travel 267
min 11.0 s. What is the magnitude of the
constant acceleration required to do this?

Answers

The magnitude of the constant acceleration required to do this is `0.0000248 m/s^2`.

Initial velocity u = 0

Distance travelled from rest, s = 267 min 11.0 s=267.1833 m

Time taken t = 267 min 11.0 s=16031 s

The equation for calculating acceleration is given by the relation;`

s = ut + 1/2at^2`

Substituting the given values we get;

267.1833=0+1/2a(16031)^2

=>`a=(267.1833)/(1/2*16031^2)`=`0.0000248 m/s^2

`Therefore, the magnitude of the constant acceleration required to do this is `0.0000248 m/s^2`.

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A 27.6 cm diameter coil consists of 25 turns of circular copper wire 2.30 mm in diameter. A uniform magnetic field, perpendicular to the plane of the coil changes at a rate of 9.00E-3 T/s. Determine the current in the loop. Submit Answer Tries 0/12 Determine the rate at which thermal energy is produced.

Answers

A 27.6 cm diameter coil consists of 25 turns of circular copper wire 2.30 mm in diameter. A uniform magnetic field, perpendicular to the plane of the coil changes at a rate of 9.00E-3 T/s. Therefore, the current in the loop is -8.41 x 10-4 A and the rate at which thermal energy is produced is 2.31 x 10-6 W.

Given parameters are: Diameter of coil, D = 27.6 cm Radius of coil, r = 13.8 cm

Number of turns in the coil, N = 25 ,Circular wire diameter, d = 2.30 mm Magnetic field strength, B = 9.00 x 10-3 T/s.

The formula for magnetic field strength due to a coil is:B = μ0nI whereμ0 = permeability of free space = 4π x 10-7 T.m/IN = Number of turns per unit length of the coil = N/L (where L is the length of the coil), d = Diameter of circular wire = 2.30 mm I = Current flowing in the coil

Let's calculate N/LN/L = 25/(π x 0.023 m)≈1131.98 N/m

We can find the radius of the wire by dividing its diameter by 2.rw = 2.30/2 x 10-3 m = 1.15 x 10-3 m

Now, we can calculate the cross-sectional area of the wire as:A = πr2A = π x (1.15 x 10-3)2 m2A = 4.15 x 10-7 m2

Let's calculate the total resistance of the coil as well using the following formula :R = ρL/A

whereρ = resistivity of copper = 1.72 x 10-8 ΩmL = length of the coil = πD ≈ 86.6 cm = 0.866 mR = (1.72 x 10-8 Ωm x 0.866 m) / 4.15 x 10-7 m2R ≈ 3.6 Ω

To find the current in the coil, we can use Faraday's Law of Electromagnetic Induction, which is given by: V = - N dΦ/dt

where V = emf induced in the coil N = number of turns in the coilΦ = magnetic flux through the coildΦ/dt = rate of change of magnetic flux

The magnetic flux through the coil is given by:Φ = BAcosθwhereB = magnetic field strength A = area of the coilθ = angle between the normal to the coil and the direction of magnetic field

Let's calculate A and θ:A = πr2A = π x (13.8 x 10-2 m)2A ≈ 5.98 x 10-3 m2θ = 90° (because the magnetic field is perpendicular to the plane of the coil)Φ = BA = (9.00 x 10-3 T/s) x (5.98 x 10-3 m2)Φ ≈ 5.39 x 10-5 Wb

Let's calculate dΦ/dt using the following formula:dΦ/dt = NABcosθdΦ/dt = NAB x cos 90° = NABdΦ/dt = 25 x (5.39 x 10-5 Wb) x (9.00 x 10-3 T/s)dΦ/dt = 1.215 x 10-5 V/s

Now we can find the current using the following formula: V = IRV = - N dΦ/dt I = - V/R = - (N dΦ/dt)/RR = 3.6 ΩN = 25I = - (25 x 1.215 x 10-5 V/s) / 3.6 ΩI ≈ - 8.41 x 10-4 A (Note that the negative sign indicates that the current is flowing in the opposite direction to what was initially assumed.)

The rate at which thermal energy is produced can be found using the following formula: P = I2RwhereI = Current flowing in the coil R = Total resistance of the coil P = (- 8.41 x 10-4 A)2 x 3.6 ΩP ≈ 2.31 x 10-6 W

Therefore, the current in the loop is -8.41 x 10-4 A and the rate at which thermal energy is produced is 2.31 x 10-6 W.

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A block slides down a ramp with an incline of 45 degrees, a distance of 50 cm along the ramp at constant velocity. If the block has a mass of 1.5 kg, how much thermal energy was produced by friction during this descent? Use g= 10 m/s2

Answers

The work done by friction represents the thermal energy produced during the descent of the block. Therefore, the thermal energy produced by friction is 1.591 Joules.      

To determine the thermal energy produced by friction during the descent of the block, we need to calculate the work done by friction and convert it into thermal energy.

The work done by friction can be calculated using the equation:

Work = Force of friction x Distance

The force of friction can be found using the equation:

Force of friction = Normal force x Coefficient of friction

The normal force acting on the block can be determined using the equation:

Normal force = mass x gravitational acceleration x cosine(angle of incline)

In this case, the angle of incline is 45 degrees, and the gravitational acceleration (g) is given as 10 m/s^2.

First, let's calculate the normal force:

Normal force = 1.5 kg x 10 m/s^2 x cos(45 degrees)

Normal force = 1.5 kg x 10 m/s^2 x 0.707

Normal force = 10.606 N

Next, we can calculate the force of friction using the coefficient of friction. Let's assume a coefficient of friction of 0.3 (this value depends on the surfaces in contact):

Force of friction = Normal force x Coefficient of friction

Force of friction = 10.606 N x 0.3

Force of friction = 3.182 N

Now, we can calculate the work done by friction:

Work = Force of friction x Distance

Work = 3.182 N x 0.5 m (converting 50 cm to 0.5 m)

Work = 1.591 J

The work done by friction represents the thermal energy produced during the descent of the block. Therefore, the thermal energy produced by friction is 1.591 Joules.

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a gravitational wave signal. - Evaluate what characteristics of a gravitational wave signal give us information about the source. How does the total mass of the merging black hole system affect the amplitude (height) of the gravitational wave signal? How does the distance to the merging black hole pair affect the amplitude of the gravitational wave signal? How does the total mass affect the period of the gravitational wave signal? How does the distance to the merging black hole pair affect the period of the gravitational wave signal? What is the best estimate for the distance to the merging black holes? What is the best estimate for the total mass of the merging black holes? Reflection - In the box below, describe how theoretical models can be used to determine the properties of merging black holes in galaxies very far from our own.

Answers

Gravitational wave signals provide information about the source, such as total mass and distance of merging black holes. Theoretical models and observations of gravitational waves help determine properties of merging black holes and their impact on the surrounding environment.

Gravitational wave signals have certain characteristics that provide valuable information about their source. The strength of a gravitational wave signal is dependent on the total mass of the black hole system undergoing a merger. By studying the amplitude of the signal, researchers can gather insights into the source. Additionally, the period of the gravitational wave signal is influenced by both the total mass of the merging black hole system and the distance to the black hole pair.

The amplitude (height) of a gravitational wave signal is affected by the total mass of the merging black hole system. A larger total mass results in a greater amplitude of the gravitational wave signal. Furthermore, the distance to the merging black hole pair also impacts the amplitude. If the black hole pair is closer, the amplitude of the gravitational wave signal will be higher.

Similarly, the period of the gravitational wave signal is influenced by the total mass of the merging black hole system. A larger total mass leads to a shorter period of the gravitational wave signal. The distance to the merging black hole pair also plays a role in determining the period. If the black hole pair is further away, the period of the gravitational wave signal will be longer.

In the case of the merging black holes with an estimated distance of 1.3 billion light-years and a total mass of 62 solar masses, these values provide the best estimate for their properties.

Theoretical models are utilized to understand the characteristics of merging black holes in galaxies located far from our own. These models enable scientists to make predictions about the properties of gravitational waves emitted by merging black hole systems. By comparing these predictions to actual observations of gravitational waves, scientists can gain valuable insights into the properties of merging black holes, such as their mass, spin, and distance. Theoretical models also help in studying the impact of black hole mergers on their surrounding environment, including the emission of high-energy particle jets.

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A canoe has a velocity of 0.33 m/s south relative to the river. The canoe is on a river that is flowing 0.57 m/s east relative to the earth. a) What is the magnitude and direction of the velocity of the canoe relative to the ground? (Circle one.) i. 0.66 m/s at 30° south of east ii. 0.66 m/s at 60° south of east iii. 0.66 m/s at 50° south of east iv. 0.46 m/s at 36° south of east v. 0.46 m/s at 51° south of east b) Sketch a velocity vector diagram showing the velocity of the river with respect to the ground, the velocity of the canoe with respect to the ground and the velocity of the canoe with respect to the river.

Answers

Tthe magnitude and direction of the velocity of the canoe relative to the ground is 0.66 m/s at 30° south of east, which corresponds to option ( i ).

The magnitude and direction of the velocity of the canoe relative to the ground is 0.66 m/s at 30° south of east.

To find the velocity of the canoe relative to the ground, we can add the velocities of the canoe relative to the river and the river relative to the ground. The velocity of the canoe relative to the river is given as 0.33 m/s south. The velocity of the river relative to the ground is given as 0.57 m/s east.

To add these velocities, we can use vector addition. The magnitude of the resultant velocity is found by taking the square root of the sum of the squares of the individual velocities. So, √((0.33)^2 + (0.57)^2) = 0.66 m/s.

The direction of the resultant velocity can be found using trigonometry. The angle can be calculated as arctan(0.33/0.57) = 30°. Since the canoe's velocity is south relative to the river and the river's velocity is east relative to the ground, the resultant velocity will be south of east.

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A wire of unknown composition has a resistance of R 0

=36.5Ω when immersed in water at 26.2 ∘
C. When the wire is placed in boiling water, its resistance rises to 71.3Ω. What is the temperature when the wire has a resistance of 41.6Ω ? Number Units

Answers

Therefore, we cannot use the temperature coefficient of resistance for copper wire, which is 0.00428/°C. We would need to know the temperature coefficient of resistance for the specific wire we are using.

The temperature when the wire has a resistance of 41.6Ω is 45.7 ∘C.What is the resistance-temperature characteristic of the wire?The equation used to solve this problem isR = R0 (1 + αΔT)where R is the resistance at temperature T, R0 is the resistance at a reference temperature T0, α is the temperature coefficient of resistance, and ΔT is the difference between T and T0.Rearranging the equation givesΔT = (R - R0) / (R0α)The temperature coefficient of resistance α for a wire of unknown composition is not given. However, the resistance-temperature characteristic for most materials is known, and the temperature coefficient of resistance can be determined from it. For a copper wire, for example, α = 0.00428/°C.Substituting the given values,R0 = 36.5ΩR = 41.6ΩT0 = 26.2°CΔT = (41.6Ω - 36.5Ω) / (36.5Ω × α)For the copper wire, ΔT = (41.6Ω - 36.5Ω) / (36.5Ω × 0.00428/°C) = 28.5°C.Therefore, the temperature when the wire has a resistance of 41.6Ω is T = T0 + ΔT = 26.2°C + 28.5°C = 54.7°C.However, we were not given the material composition of the wire. Therefore, we cannot use the temperature coefficient of resistance for copper wire, which is 0.00428/°C. We would need to know the temperature coefficient of resistance for the specific wire we are using.

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A 25-m dianteter wheel accelerates uniformly about its center from 149rpm to 270rpm in 2.35. Determine the angular velocity (rad/s) of the wheel 50 s after it has started accelerating.

Answers

Given data: Diameter of the wheel (D) = 25 mInitial angular velocity (ω₁) = 149 rpmFinal angular velocity (ω₂) = 270 rpmTime taken (t) = 2.35 s.

Formula used:We know that acceleration of an object is given bya = (ω₂ - ω₁) / tThe angular velocity of an object is given byω = 2πn / 60where,n = number of rotations in 1 second.

Therefore, the angular velocity (ω) of the wheel can be calculated as:ω₁ = 2πn₁ / 60 => n₁ = ω₁ * 60 / 2πω₂ = 2πn₂ / 60 => n₂ = ω₂ * 60 / 2πa = (ω₂ - ω₁) / ta = (270 - 149) / 2.35a = 94.468 rad/s²Let the angular velocity of the wheel after 50 s be ω₃Number of rotations in 1 second = 1 / 60Total number of rotations after 50 s = 50 / 60 = 5 / 6s = ω₁t + (1/2)at²s = 149 * 2.35 + (1/2) * 94.468 * (2.35)²s = 451.50 m.

After 5 / 6 rotations, the distance covered by the wheel can be calculated as follows: Distance covered in 1 rotation = πD = 3.14 * 25 mDistance covered in 5 / 6 rotations = (5 / 6) * 3.14 * 25 m = 130.90 mThe time taken to cover this distance can be calculated as:t = s / vt = 130.90 / (25 * ω₃)t = 5.236 / ω₃Now, we can write the equation for angular velocity as:50 / 60 = ω₁ * 50 + (1/2) * 94.468 * (50)² + (1/2) * 94.468 * (5.236 / ω₃)² + ω₃ * (5.236 / ω₃)ω₃² - 10.472ω₃ + 143.245 = 0Using the quadratic formula, we get,ω₃ = [ 10.472 ± sqrt((10.472)² - 4(143.245)(1)) ] / 2ω₃ = [ 10.472 ± 42.348 ] / 2ω₃ = 26.410 rad/s (approx)Therefore, the angular velocity of the wheel 50 s after it has started accelerating is approximately 26.410 rad/s. Answer: 26.410

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A parallel-plate capacitor has a plate area of A=2 m2, plate separation of d=0.0002 m, and charge of q=0.0001 C. What is the potential difference between the plates? 4 volts 520 volts 1130 volts 2260 volts 4520 volts

Answers

The potential difference between the plates of a parallel-plate capacitor with an area of [tex]2 m^2[/tex], separation of 0.0002 m, and a charge of 0.0001 C is 1130 volts.

The potential difference (V) between the plates of a capacitor can be determined using the formula

V = q / C

where q is the charge and C is the capacitance.

The capacitance of a parallel-plate capacitor is given by the formula:

[tex]C = \epsilon_0 * (A / d)[/tex]

where [tex]\epsilon_0[/tex] is the permittivity of free space, A is the area of the plates, and d is the separation between the plates.

Plugging in the values, the capacitance can be calculated as:

[tex]C = (8.85 * 10^{-12} F/m) * (2 m^2 / 0.0002 m) = 88.5 * 10^{-12} F[/tex].

Now, substituting the capacitance and charge values into the potential difference formula,

[tex]V = (0.0001 C) / (88.5 * 10^{-12} F) = 1130 volts[/tex].

Therefore, the potential difference between the plates of the parallel-plate capacitor is 1130 volts.

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Calculate the capacitance of the capacitor (pF) in the given scenario.
There are two plates in a parallel-plate capacitor with A=3cm² with a separation of d=0.5mm. A wedge with insulating material is placed between the plates and provides capacitor with max voltage of 35000V. Provide the answer two places right of the decimal. Must be in pF

Answers

The capacitance of the capacitor is 53.12 pF.

The formula to calculate the capacitance of the capacitor is given as;

C = ε * A/d Where,

C is capacitance of the capacitor,

ε is the permittivity of the insulating material placed between the plates,

A is the area of the plates of the capacitor,

d is the separation between the plates of the capacitor.

The given area A = 3cm² = 3 × 10⁻⁴ m²

The given separation between the plates d = 0.5 mm = 0.5 × 10⁻³ m

Now, the permittivity of air is taken as 8.854 × 10⁻¹² F/m

C = ε * A/d

C = (8.854 × 10⁻¹² F/m) * (3 × 10⁻⁴ m²) / (0.5 × 10⁻³ m) = 53.124 × 10⁻¹² F = 53.12 pF

Therefore, the capacitance of the capacitor is 53.12 pF.

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A hot wire radiates heat at 100 Watts. If its temperature measured in degrees Kelvin is doubled then the power radiated wit be what? Select one: 1. Draw a free body diagram of a hanging mass before it is submerged in water. Make sure to label your forces.

Answers

If the temperature of a hot wire measured in degrees Kelvin is doubled, the power radiated will increase by a factor of 16.

The power radiated by a hot wire is given by the Stefan-Boltzmann law:

P = σ * A * ε * T^4

where P is the power radiated, σ is the Stefan-Boltzmann constant, A is the surface area of the wire, ε is the emissivity (a measure of how effectively the wire radiates heat), and T is the temperature in Kelvin.

If the temperature T is doubled, the power radiated P' can be calculated by substituting 2T for T:

P' = σ * A * ε * (2T)^4 = σ * A * ε * 16T^4

Comparing P' to the original power P, we find that P' is 16 times greater than P:

P' = 16P

Therefore, if the temperature of the hot wire is doubled (measured in degrees Kelvin), the power radiated by the wire will increase by a factor of 16.

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A vector A is defined as: A=−2.62i^+−5.91j^. What is θA, the direction of A ? Give your answer as an angle in degrees and in standard form. Round your answer to one (1) decimal place. If there is no solution or if the solution cannot be found with the information provided, give your answer as: −1000

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Answer: the answer is 67.8.

The given vector A is A = -2.62i - 5.91j.

The direction of vector A can be found using the formula θA = tan⁻¹(y/x),

where x is the horizontal component and y is the vertical component of vector A.

In this case, x = -2.62 and y = -5.91. So,

θA = tan⁻¹(-5.91/-2.62)

θA = tan⁻¹(2.25)

θA = 67.8 degrees.

Therefore, the direction of vector A is 67.8 degrees in standard form.

Thus, the answer is 67.8.

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A 225kg floor safe is being moved by thief-cats 8.5 m from its initial location. One thief pushes 12.0N at an angle of 30 ° downward and another pulls with 10.0N at an angle of 40 ° upward. What is the net work done by the thieves on the safe? How much work is done by the gravitational force and the normal force? If the safe was initially at rest, what is the speed at the end of the 8.5 m displacement?

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The net work done by the thieves on the safe is 173.644 Joules, the work done by the gravitational force is -17364 Joules, and the normal force does no work.

The final speed of the safe at the end of the 8.5 m displacement is approximately 2.29 m/s.

To solve this problem, we need to calculate the net work done by the thieves, the work done by the gravitational force, and the work done by the normal force. We can then use the work-energy theorem to find the final speed of the safe.

1. Net Work Done by the Thieves:

The net work done by the thieves can be calculated by adding the work done by each thief. The work done by a force is given by the equation: work = force * displacement * cos(angle).

Thief 1:

Force = 12.0 N

Displacement = 8.5 m

Angle = 30°

Work1 = 12.0 N * 8.5 m * cos(30°)

Thief 2:

Force = 10.0 N

Displacement = 8.5 m

Angle = 40°

Work2 = 10.0 N * 8.5 m * cos(40°)

Net Work Done by the Thieves = Work1 + Work2

2. Work Done by the Gravitational Force:

The work done by the gravitational force can be calculated using the equation: work = force * displacement * cos(angle).

Force (weight) = mass * gravitational acceleration

mass = 225 kg

gravitational acceleration = 9.8 m/s² (approximate value on Earth)

Displacement = 8.5 m

Angle = 180° (opposite direction of displacement)

Work done by the gravitational force = (225 kg * 9.8 m/s²) * 8.5 m * cos(180°)

3. Work Done by the Normal Force:

Since the safe is on a flat surface and not accelerating vertically, the normal force does no work. The normal force is perpendicular to the displacement, so the angle between them is 90°, and cos(90°) = 0.

Work done by the normal force = 0

4. Final Speed of the Safe:

We can use the work-energy theorem to find the final speed of the safe. The work-energy theorem states that the net work done on an object is equal to its change in kinetic energy.

Net Work Done by the Thieves = Change in Kinetic Energy

Since the safe was initially at rest, the initial kinetic energy is zero. Therefore, the net work done by the thieves is equal to the final kinetic energy.

Net Work Done by the Thieves = (1/2) * mass * final speed^2

We can solve this equation for the final speed:

(1/2) * mass * final speed² = Net Work Done by the Thieves

final speed² = (2 * Net Work Done by the Thieves) / mass

final speed = √((2 * Net Work Done by the Thieves) / mass)

Now, let's calculate the values:

1. Net Work Done by the Thieves:

Work1 = 12.0 N * 8.5 m * cos(30°)

Work2 = 10.0 N * 8.5 m * cos(40°)

Net Work Done by the Thieves = Work1 + Work2

2. Work Done by the Gravitational Force:

Work done by the gravitational force = (225 kg * 9.8 m/s²) * 8.5 m * cos(180°)

3. Work Done by the Normal Force:

Work done by the normal force = 0

4. Final Speed of the Safe:

final speed = √((2 * Net Work Done by the Thieves) / mass)

Now, let's calculate these values:

Calculations:

Work1 = 12.0 N * 8.5 m * cos(30°) = 102.180 J

Work2 = 10.0 N * 8.5 m * cos(40°) = 71.464 J

Net Work Done by the Thieves = Work1 + Work2 = 173.644 J

Work done by the gravitational force = (225 kg * 9.8 m/s^2) * 8.5 m * cos(180°) = -17364 J (negative sign indicates work done against the gravitational force)

Work done by the normal force = 0 J

final speed = √((2 * Net Work Done by the Thieves) / mass) = sqrt((2 * 173.644 J) / 225 kg) = 2.29 m/s (approximately)

Therefore, the net work done by the thieves on the safe is 173.644 Joules, the work done by the gravitational force is -17364 Joules, and the normal force does no work. The final speed of the safe at the end of the 8.5 m displacement is approximately 2.29 m/s.

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