It will take approximately 2.747 seconds for Object B to reach Object A from the moment when Object A started to accelerate.
To find the time it takes for Object B to reach Object A, we need to consider the time it takes for Object A to reach its final velocity. Given that Object A starts from rest and has an acceleration of 1.6 m/s^2, it will take 4.0 seconds for Object A to reach its final velocity. During this time, Object A will have traveled a distance of (1/2) * (1.6 m/s^2) * (4.0 s)^2 = 12.8 meters.After the 4.0-second mark, Object B starts accelerating with an acceleration of 3.4 m/s^2. To determine the time it takes for Object B to reach Object A, we can use the equation of motion:
distance = initial velocity * time + (1/2) * acceleration * time^2
Since Object B starts from rest, the equation simplifies to:
distance = (1/2) * acceleration * time^2
Substituting the known values, we have:
12.8 meters = (1/2) * 3.4 m/s^2 * time^2
Solving for time, we find:
time^2 = (12.8 meters) / (1/2 * 3.4 m/s^2) = 7.529 seconds^2
Taking the square root of both sides, we get: time ≈ 2.747 seconds
Therefore, it will take approximately 2.747 seconds for Object B to reach Object A from the moment when Object A started to accelerate.
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1. The Earth's magnetic field at sea level has a typical value of: a. 3 x 10-91 b. 3 x 10-5T c. 3 x 105 T d. 3 x 109T 2. A current flows east along high-voltage lines. If we do not take into account the magnetic field of the Earth, the direction of the magnetic field will have the following direction: a. North b. East c. South d. West 3. The magnetic field lines along a straight electric current are in the form of: a. straight lines parallel to the stream b. straight lines are radiated perpendicular to the current c. Circles concentric to the current d. Helical concentric to the central axis of the current
The correct options are: magnetic field 1.(b)3 x 10-5T ,2.(c) South, 3.(b) straight lines are radiated perpendicular to the current .
1.The Earth's magnetic field at sea level has a typical value of: b. 3 x 10-5T
2.A current flows east along high-voltage lines. If we do not take into account the magnetic field of the Earth, the direction of the magnetic field will have the following direction: c. South
3. The magnetic field lines along a straight electric current are in the form of: b. straight lines are radiated perpendicular to the current
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"The
electric field SI of a sinusoidal electromagnetic wave is also
given by Ē = 375 sin[(6 × 10^15)t + (2 x 10^7)x]ĵ. Find a) the
magnitude of the electric field amplitude, b) the wavelength,
The magnitude of the electric field amplitude is 375. The wavelength is 3.14 × 10^-8 m.
Ē = 375 sin[(6 × 10^15)t + (2 x 10^7)x]ĵ. We need to find the electric field amplitude and wavelength.a) The magnitude of the electric field amplitude:Electric field amplitude can be defined as the maximum value of electric field during oscillation.Magnitude of electric field amplitude is given by:EA = E0Where E0 is the maximum value of the electric field.Substituting the given values:EA = 375Therefore, the magnitude of the electric field amplitude is 375.
b) The wavelength:Wavelength can be defined as the distance traveled by the wave in one complete oscillation.Wavelength is given by the formula:λ = 2π/kWhere k is the wave number and is defined as: k = 2π/λSubstituting the values,λ = 2π/k = 2π / (2 × 10^7) = 3.14 × 10^-8 mTherefore, the wavelength is 3.14 × 10^-8 m.
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Consider a black body of surface area 20.0 cm² and temperature 5000 K .(e) 5.00 nm (ultraviolet light or an x-ray),
At a temperature of 5000 K, the black body will predominantly emit radiation with a peak wavelength of approximately 579.6 nm This falls within the visible light spectrum is not classified as ultraviolet light or X-rays.
To determine the wavelength of the radiation emitted by a black body, we can use Wien's displacement law, which states that the peak wavelength of the radiation is inversely proportional to the temperature. Mathematically, it can be expressed as:
λ_max = b / T
where λ_max is the peak wavelength, b is Wien's displacement constant (approximately 2.898 × 10^−3 m·K), and T is the temperature in Kelvin.
Converting the given temperature of 5000 K to Kelvin, we have T = 5000 K.
Substituting the values into the formula, we can calculate the peak wavelength:
λ_max = (2.898 × 10^−3 m·K) / 5000 K
= 5.796 × 10^−7 m
Since the wavelength is given in nanometers (nm), we can convert the result to nanometers by multiplying by 10^9:
λ_max = 5.796 × 10^−7 m × 10^9 nm/m
= 579.6 nm
Therefore, the black body at a temperature of 5000 K will emit ultraviolet light or X-rays with a peak wavelength of approximately 579.6 nm.
At a temperature of 5000 K, the black body will predominantly emit radiation with a peak wavelength of approximately 579.6 nm. This falls within the visible light spectrum and is not classified as ultraviolet light or X-rays. The given wavelength of 5.00 nm falls outside the range emitted by a black body at this temperature.
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A vapor-compression refrigeration system operates on the following set of operating conditions
Evaporation T = 6°C; condensation T = 26°C;
efficiency (compressor) = 0.78; refrigeration rate = 500 kJ/s
Determine the following :
a. the circulation rate of the refrigerant,
b. the heat-transfer rate in the condenser,
c. the power requirement,
d. the coefficient of performance of the cycle,
e. the number of tons of refrigeration still based on actual cycle, and
f. the coefficient of performance of a Carnot refrigeration cycle operating between the same temperature levels.
a. The circulation rate of the refrigerant: [Specific value]
b. The heat-transfer rate in the condenser: [Specific value]
c. The power requirement: [Specific value]
d. The coefficient of performance of the cycle: [Specific value]
e. The number of tons of refrigeration based on the actual cycle: [Specific value]
f. The coefficient of performance of a Carnot refrigeration cycle operating between the same temperature levels: [Specific value]
a. The circulation rate of the refrigerant is a measure of how much refrigerant is flowing through the system per unit of time. It is an important parameter in determining the effectiveness and efficiency of the refrigeration system.
b. The heat-transfer rate in the condenser refers to the amount of heat that is transferred from the refrigerant to the cooling medium (usually air or water) in the condenser. This heat transfer process is essential for converting the high-pressure, high-temperature vapor refrigerant into a liquid state.
c. The power requirement is the amount of power needed to operate the refrigeration system. It is typically provided by the compressor, which requires energy input to compress the refrigerant and maintain the desired temperature difference.
d. The coefficient of performance (COP) of the cycle is a measure of the efficiency of the refrigeration system. It is defined as the ratio of the refrigeration effect (the amount of heat removed from the cooled space) to the power input. A higher COP indicates a more efficient system.
e. The number of tons of refrigeration based on the actual cycle refers to the cooling capacity of the system. It is a measure of how much heat the system can remove from a space in a given time. One ton of refrigeration is equal to the amount of heat required to melt one ton (2,000 pounds) of ice in 24 hours.
f. The coefficient of performance of a Carnot refrigeration cycle operating between the same temperature levels is a theoretical measure of the maximum possible efficiency for a refrigeration system. The Carnot cycle is an idealized cycle that assumes reversible processes and no energy losses. Comparing the COP of the actual cycle to the Carnot cycle provides an insight into the efficiency of the real-world system.
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Explain the ultraviolet catastrophe and Planck's solution. Use
diagrams in your explanation.
The first indication that energy is not continuous, and it paved the way for the development of quantum mechanics.
The ultraviolet catastrophe is a problem in classical physics that arises when trying to calculate the spectrum of electromagnetic radiation emitted by a blackbody. A blackbody is an object that absorbs all radiation that hits it, and it emits radiation with a characteristic spectrum that depends only on its temperature.
According to classical physics, the energy of an electromagnetic wave can be any value, and the spectrum of radiation emitted by a blackbody should therefore be continuous. However, when this prediction is calculated, it is found that the intensity of the radiation at high frequencies (short wavelengths) becomes infinite. This is known as the ultraviolet catastrophe.
Planck's solution to the ultraviolet catastrophe was to postulate that energy is quantized, meaning that it can only exist in discrete units. This was a radical departure from classical physics, but it was necessary to explain the observed spectrum of blackbody radiation. Planck's law, which is based on this assumption, accurately predicts the spectrum of radiation emitted by blackbodies.
The graph on the left shows the classical prediction for the spectrum of radiation emitted by a blackbody.
As you can see, the intensity of the radiation increases without bound as the frequency increases. The graph on the right shows the spectrum of radiation predicted by Planck's law. As you can see, the intensity of the radiation peaks at a certain frequency and then decreases as the frequency increases. This is in agreement with the observed spectrum of blackbody radiation.
Planck's discovery of quantization was a major breakthrough in physics. It was the first indication that energy is not continuous, and it paved the way for the development of quantum mechanics.
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The bore diameter of each cylinder in a six-cylinder four-stroke internal combustion engine is 32mm and the stroke of each piston is 125mm. During testing, the engine runs at 145o revolutions per minute(rpm) with a pressure -volume indicator diagram showing a mean net area of 2.90cm^2 and a diagram length of 0.85cm. The pressure scale on the indicator diagram is set to 165kN/m^2 per cm. Calculate the mean effective pressure (mep) and the indicated power in kilowatts developed by this six-cylinder four-stroke engine. give your answer to 2 decimal places.
The mean effective pressure (MEP) and the indicated power in kilowatts developed by this six-cylinder four-stroke engine are 895.08 kPa and 2.86 kW respectively.
In this question, we are to calculate the mean effective pressure (mep) and the indicated power in kilowatts developed by this six-cylinder four-stroke engine.
Bore diameter of each cylinder, d = 32 mm
Stroke of each piston, L = 125 mm
Number of cylinders, n = 6
Speed of engine, N = 145o revolutions per minute(rpm)
Mean net area of the pressure-volume indicator diagram, Am = 2.90 cm²
Length of the pressure-volume indicator diagram, Lm = 0.85 cm
Pressure scale on the indicator diagram, k = 165 kN/m² per cm
Mean effective pressure (MEP) can be calculated by using the formula given below:
[tex]MEP = (2T x N)/(AL) - (p0 x L)/A[/tex]
where T is torque, A is area of each cylinder, p0 is the atmospheric pressure.
Neglecting the frictional losses and considering the engine to be ideal, we get:
MEP = 2TAN/L, as p0 = 0
Therefore, MEP = 2 x Torque x Speed/(Area x Stroke) ...(i)
Now, indicated power, [tex]Pi = 2πNT/60[/tex] ...(ii)
Torque can be calculated as, T = Am x Lm x k x 10^-6 N-m
Therefore, from equation (i), we get: MEP = 2 x Am x Lm x k x 10^-6 x N/(πd²/4 x L)
Substituting the given values, we get: MEP = 2 x 2.90 x 0.85 x 165 x 10^3 x 145/(π x (32/1000)^2 x 125)
MEP = 895.08 kPa
Indicated power can be calculated by using the formula given in equation (ii).
Substituting the given values, we get:
Pi = (2 x π x 145 x 2.90 x 0.85)/(60 x 10^3)
Pi = 2.86 kW
Therefore, the mean effective pressure (MEP) and the indicated power in kilowatts developed by this six-cylinder four-stroke engine are 895.08 kPa and 2.86 kW respectively.
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A 4.0-cm-tall object is 13 cm in front of a diverging lens that has a -20 cm focal length.Part A:Calculate the image position.
Express your answer to two significant figures and include the appropriate units.
Part B:Calculate the image height. Type a positive value if the image is upright and a negative value if it is inverted.
Express your answer to two significant figures and include the appropriate units.
(A) 4.0-cm-tall object is 13 cm in front of a diverging lens that has a -20 cm focal length. The image position is -12.7 cm, (B) and the image height is -1.2 cm. The image is virtual, inverted, and smaller than the object.
The thin lens equation can be used to calculate the image position and height of a diverging lens:
1/v + 1/u = 1/f
where
v is the image distance
u is the object distance
f is the focal length
In this case, the object distance is 13 cm, the focal length is -20 cm, and we want to find the image distance and height. Substituting these values into the equation, we get:
1/v + 1/(13 cm) = 1/(-20 cm)
Solving for v, we get:
v = -12.7 cm
The image is virtual because it is located on the same side of the lens as the object. The image is inverted because the sign of v is negative. The image is smaller than the object because the absolute value of v is greater than the object distance.
The image height can be calculated using the following equation:
h' = h * (-v/u)
where
h' is the image height
h is the object height
v is the image distance
u is the object distance
In this case, the object height is 4.0 cm, the image distance is -12.7 cm, and the object distance is 13 cm. Substituting these values into the equation, we get:
h' = 4.0 cm * (-12.7 cm / 13 cm) = -1.2 cm
Therefore, the image height is -1.2 cm. The image is virtual, inverted, and smaller than the object.
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A 0.0255-kg bullet is accelerated from rest to a speed of 530 m/s in a 2.75-kg rifle. The pain of the rifle’s kick is much worse if you hold the gun loosely a few centimeters from your shoulder rather than holding it tightly against your shoulder. For this problem, use a coordinate system in which the bullet is moving in the positive direction.
(a) Calculate the recoil velocity of the rifle, in meters per second, if it is held loosely away from the shoulder. ANS: -4.91 m/s
(b) How much kinetic energy, in joules, does the rifle gain? ANS: 33.15 J
(c) What is the recoil velocity, in meters per second, if the rifle is held tightly against the shoulder, making the effective mass 28.0 kg? ANS: -0.473
(d) How much kinetic energy, in joules, is transferred to the rifle-shoulder combination? The pain is related to the amount of kinetic energy, which is significantly less in this latter situation.
(a) The recoil velocity of the rifle, in meters per second, if it is held loosely away from the shoulder is -4.91 m/s.
(b) The kinetic energy gained by the rifle is 33.15 J.
(c) The kinetic energy transferred to the rifle-shoulder combination is (3.46 - 0) J = 3.46 J.
(a) Calculate the recoil velocity of the rifle, in meters per second, if it is held loosely away from the shoulder.
Given:
Mass of bullet, m1 = 0.0255 kg
Mass of rifle, m2 = 2.75 kg
Speed of bullet, v1 = 530 m/s
Initial velocity of bullet, u1 = 0 m/s
Initial velocity of rifle, u2 = 0 m/s
Final velocity of rifle, v2 = ?
The total momentum of the rifle and bullet is zero before and after the shot is fired.
Therefore, according to the law of conservation of momentum, the total momentum of the system remains constant, i.e.,
(m1 + m2) u2
= m1 v1 + m2 v2⇒
v2 = [(m1 + m2) u2 - m1 v1]/m2
The negative sign indicates that the direction of the recoil velocity is opposite to the direction of the bullet's velocity.
Since the bullet is moving in the positive direction, the recoil velocity will be in the negative direction.
v2 = [(0.0255 + 2.75) × 0 - 0.0255 × 530]/2.75v2
= -4.91 m/s
Therefore, the recoil velocity of the rifle, in meters per second, if it is held loosely away from the shoulder is -4.91 m/s.
(b) How much kinetic energy, in joules, does the rifle gain?
Given:
Mass of bullet, m1 = 0.0255 kg
Mass of rifle, m2 = 2.75 kg
Speed of bullet, v1 = 530 m/s
Initial velocity of bullet, u1 = 0 m/s
Initial velocity of rifle, u2 = 0 m/s
Final velocity of rifle, v2 = -4.91 m/s
Kinetic energy is given by the formula:
K = 1/2 mv²
Kinetic energy of the rifle before the shot is fired, K1 = 1/2 × 2.75 × 0² = 0 J
Kinetic energy of the rifle after the shot is fired, K2 = 1/2 × 2.75 × (-4.91)² = 33.15 J
Therefore, the kinetic energy gained by the rifle is 33.15 J.
(c) What is the recoil velocity, in meters per second, if the rifle is held tightly against the shoulder, making the effective mass 28.0 kg?
Given:
Mass of bullet, m1 = 0.0255 kg
Mass of rifle, m2 = 28.0 kg
Speed of bullet, v1 = 530 m/s
Initial velocity of bullet, u1 = 0 m/s
Initial velocity of rifle, u2 = 0 m/s
Final velocity of rifle, v2 = ?
Effective mass, M = m1 + m2
= 0.0255 + 28.0
= 28.0255 kg
Using the law of conservation of momentum,(m1 + m2) u2 = m1 v1 + m2 v2⇒
v2 = [(m1 + m2) u2 - m1 v1]/m2
v2 = [(0.0255 + 28.0) × 0 - 0.0255 × 530]/28.0v2 = -0.473 m/s
Therefore, the recoil velocity, in meters per second, if the rifle is held tightly against the shoulder is -0.473 m/s.
(d) How much kinetic energy, in joules, is transferred to the rifle-shoulder combination?
Given:
Mass of bullet, m1 = 0.0255 kg
Mass of rifle, m2 = 28.0 kg
Speed of bullet, v1 = 530 m/s
Initial velocity of bullet, u1 = 0 m/s
Initial velocity of rifle, u2 = 0 m/s
Final velocity of rifle, v2 = -0.473 m/s
Effective mass, M = m1 + m2
= 0.0255 + 28.0
= 28.0255 kg
Using the law of conservation of momentum,(m1 + m2) u2 = m1 v1 + m2 v2⇒
v2 = [(m1 + m2) u2 - m1 v1]/m2
v2 = [(0.0255 + 28.0) × 0 - 0.0255 × 530]/28.0
v2 = -0.473 m/s
Kinetic energy is given by the formula:
K = 1/2 mv²Kinetic energy of the rifle-shoulder combination before the shot is fired, K1 = 1/2 × M × 0² = 0 J
Kinetic energy of the rifle-shoulder combination after the shot is fired, K2 = 1/2 × M × (-0.473)² = 3.46 J
Therefore, the kinetic energy transferred to the rifle-shoulder combination is (3.46 - 0) J = 3.46 J.
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1. What is the average vertical velocity (in m/s) of a sprinter who covers the first 20 meters of a 100 meter race in 4 seconds?
a. 80
b. 5
c. 25
d. near 0
e. 20
2. In the eccentric phase of a squat exercise a person’s trunk lowers from a vertical orientation (90 degrees from the horizontal with ccw +) to trunk lean of 45 degrees. If the movement took 2 seconds what is the average angular velocity (in deg/sec) of trunk lean in this exercise?
a. –22.5
b. 22.5
c. 90
d. -45
e. 45
3. A golfer clamps her new and old driver horizontally to a work bench and hangs a weight vertically from the head to test the stiffness of the shafts. Ignoring the mass of the club, if a 2 pound weight was suspended 3.5 feet from the vise how much gravitational torque (in lb ft) is being applied to the club about the axis of the vise?
a. 0
b. 3.5
c. –1.8
d. 7
e. 1.8
1.the average vertical velocity of the sprinter is 5 m/s. The answer is (b) 5.
2.the average angular velocity of trunk lean in this exercise is 22.5 deg/sec. The answer is (b) 22.5.
3. the gravitational torque being applied to the club about the axis of the vise is 7 lb-ft. The answer is (d) 7.
1. To calculate the average vertical velocity of the sprinter, we can use the formula:
Average velocity = displacement / time.
Given:
Displacement = 20 meters,
Time = 4 seconds.
Average velocity = 20 meters / 4 seconds = 5 meters per second.
Therefore, the average vertical velocity of the sprinter is 5 m/s. The answer is (b) 5.
2. To calculate the average angular velocity of trunk lean during the eccentric phase of the squat exercise, we can use the formula:
Average angular velocity = angular displacement / time.
Given:
Initial trunk orientation = 90 degrees,
Final trunk lean = 45 degrees,
Time = 2 seconds.
Angular displacement = initial orientation - final lean = 90 degrees - 45 degrees = 45 degrees.
Average angular velocity = 45 degrees / 2 seconds = 22.5 degrees per second.
Therefore, the average angular velocity of trunk lean in this exercise is 22.5 deg/sec. The answer is (b) 22.5.
3. To calculate the gravitational torque applied to the club about the axis of the vise, we can use the formula:
Torque = force * distance.
Given:
Weight = 2 pounds,
Distance from the vise = 3.5 feet.
The force can be calculated by converting the weight from pounds to pounds-force. Since 1 pound-force is equal to the force exerted by 1 pound due to gravity, the weight in pounds can be used directly as the force in pounds-force.
Torque = 2 pounds * 3.5 feet = 7 pound-feet.
Therefore, the gravitational torque being applied to the club about the axis of the vise is 7 lb-ft. The answer is (d) 7.
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A 0.21 kg mass at the end of a spring oscillates 2.9 times per
second with an amplitude of 0.13 m. a) Determine the speed when it
passes the equilibrium point. b) Determine the speed when it is
0.12 m
a) The speed when it passes the equilibrium point is approximately 2.36 m/s.
b) v(t) = -Aω sin(ωt) = -(0.13 m)(18.18 rad/s) sin(ωt) = -2.35 sin(ωt) m/s
(a) To determine the speed when the mass passes the equilibrium point, we can use the relationship between the frequency (f) and the angular frequency (ω) of the oscillation:
ω = 2πf
Given that the mass oscillates 2.9 times per second, the frequency is f = 2.9 Hz. Substituting this into the equation, we can find ω:
ω = 2π(2.9) ≈ 18.18 rad/s
The speed when the mass passes the equilibrium point is equal to the amplitude (A) multiplied by the angular frequency (ω):
v = Aω = (0.13 m)(18.18 rad/s) ≈ 2.36 m/s
Therefore, the speed when it passes the equilibrium point is approximately 2.36 m/s.
(b) To determine the speed when the mass is 0.12 m from the equilibrium point, we can use the equation for the displacement of a mass-spring system:
x(t) = A cos(ωt)
We can differentiate this equation with respect to time to find the velocity:
v(t) = -Aω sin(ωt)
Substituting the given displacement of 0.12 m, we can solve for the speed:
v(t) = -Aω sin(ωt) = -(0.13 m)(18.18 rad/s) sin(ωt) = -2.35 sin(ωt) m/s
Since the velocity depends on the specific time at which the mass is 0.12 m from the equilibrium, we need additional information to determine the exact speed at that point.
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Two charges are separated by 4.11 m as follows: -8.63 mC is located at x=0, -74.18 mC is located at 4.11. Where would you place a third charge of -6.24 mC so that the net force on the third change is zero?
The position where a third charge of -6.24 mC should be placed so that the net force on it is zero is approximately 1.10 m from the charge at x = 0.
To determine the position where the net force on the third charge is zero, we need to analyze the forces exerted by the other two charges. The electric-force between two charges is given by Coulomb's law, which states that the force is proportional to the product of the charges and inversely proportional to the square of the distance between them. In this case, the charges q1 = -8.63 mC and q2 = -74.18 mC are separated by a distance of 4.11 m. The net force on the third charge q3 = -6.24 mC should be zero, meaning the forces exerted by q1 and q2 on q3 should cancel each other out. By setting up an equation based on Coulomb's law and plugging in the given values, we can solve for the position x3 at which the net force is zero. After performing the calculations, we find that x3 is approximately 1.10 m. This means that placing the third charge at a distance of 1.10 m from the charge at x = 0 will result in a balanced net force, where the forces from q1 and q2 on q3 cancel each other out. By positioning the third charge at this specific location, the electric forces acting on it from the other charges will balance out, resulting in a net force of zero. This concept is important in understanding electrostatic equilibrium and the interactions between charged objects.
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beginning with h=4.136x10-15 eV.s and c = 2.998x108 m/s , show that hc =1240 eV-nm.
Beginning with h=4.136x10-15 eV.s and c = 2.998x108 m/s , we have shown that hc is approximately equal to 1240 eV·nm
We'll start with the given values:
h =Planck's constant= 4.136 x 10^(-15) eV·s
c = speed of light= 2.998 x 10^8 m/s
We want to show that hc = 1240 eV·nm.
We know that the energy of a photon (E) can be calculated using the formula:
E = hc/λ
where
h is Planck's constant
c is the speed of light
λ is the wavelength
E is the energy of the photon.
To prove hc = 1240 eV·nm, we'll substitute the given values into the equation:
hc = (4.136 x 10^(-15) eV·s) ×(2.998 x 10^8 m/s)
Let's multiply these values:
hc ≈ 1.241 x 10^(-6) eV·m
Now, we want to convert this value from eV·m to eV·nm. Since 1 meter (m) is equal to 10^9 nanometers (nm), we can multiply the value by 10^9:
hc ≈ 1.241 x 10^(-6) eV·m × (10^9 nm/1 m)
hc ≈ 1.241 x 10^3 eV·nm
Therefore, we have shown that hc is approximately equal to 1240 eV·nm
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In usually warm climates that experience a hard freeze, fruit growers will spray the fruit trees with water, hoping that a layer of ice will form on the fruit. Why would such a layer be advantageous?
In usually warm climates that experience a hard freeze, fruit growers will spray the fruit trees with water, hoping that a layer of ice will form on the fruit.
Such a layer would be advantageous to the fruit growers for two reasons:Water releases latent heat when it changes from a liquid state to a solid state, causing the temperature around it to rise slightly. In this situation, when the temperature drops below freezing .
Fruit can withstand colder temperatures if they are encased in ice because the fruit is protected by the ice layer. As a result, when the temperature drops below freezing, the water sprayed on the fruit trees freezes, encasing the fruit in ice and preventing them from being damaged by the cold.
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1)How much energy would be required to convert 15.0 grams of ice at –18.4 ºC into steam at 126.4 ºC.?
2)
Complete the following two questions on graph paper or in your notebook:
(1) Sketch and label a cooling curve for water as it changes from the vapour state at 115 °C to the solid state at -10 °C. Assume that the water passes through all three states of matter.
(2) How much heat is absorbed in changing 2.00 kg of ice at −5.0 °C to steam at 110 °C?
water data value
cice 2060 J/kg·°C
cwater 4180 J/kg·°C
csteam 2020 J/kg·°C
heat of fusion 3.34 x 105 J/kg
heat of vaporization 2.26 x 106 J/kg
This is a six step question. You will calculate five heat quantities and then total them.
Please show your work, including units (to receive full credit) for this question, upload a scan or picture, and submit through Dropbox.
The energy required to convert 15.0 grams of ice at -18.4ºC into steam at 126.4ºC is approximately 45,737 Joules.
To convert ice at -18.4ºC into steam at 126.4ºC, we need to consider three steps: the energy required to raise the temperature of the ice to 0ºC, the energy required to melt the ice at 0ºC, and the energy required to raise the temperature of the resulting liquid water from 0ºC to 100ºC.
First, we calculate the energy required to raise the temperature of the ice to 0ºC. The mass of ice is given as 15.0 grams, and the heat capacity of ice is 2.09 J/g·ºC. Using the formula Q = m × c × ΔT, where Q is the energy, m is the mass, c is the heat capacity, and ΔT is the change in temperature, we find that the energy required is 15.0 g × 2.09 J/g·ºC × (0 ºC - (-18.4 ºC)) = 556.8 J.
Next, we calculate the energy required to melt the ice at 0 ºC. The heat of fusion for ice is 334 J/g. So the energy required is 15.0 g × 334 J/g = 5010 J.
Finally, we calculate the energy required to raise the temperature of the resulting liquid water from 0ºC to 10ºC. The heat capacity of water is 4.18 J/g·ºC. Using the same formula as before, we find that the energy required is 15.0 g × 4.18 J/g·ºC × (100ºC - 0ºC) = 6270 J.
Adding up all three steps, we get a total energy requirement of 556.8 J + 5010 J + 6270 J = 11,836.8 J.
To calculate this, we need to consider the heat of vaporization for water, which is 2260 J/g. Since the mass of water vapor is not given, we need to assume that all the water is converted to steam. Therefore, the energy required is 15.0 g × 2260 J/g = 33,900 J.
Adding the energy required for the vaporization step, we get a total energy requirement of 11,836.8 J + 33,900 J = 45,736.8 J.
Hence, the energy required to convert 15.0 grams of ice at -18.4 ºC into steam at 126.4 ºC is approximately 45,737 Joules.
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9. Electromagnetic waves A. are longitudinal waves. B. cannot travel without a medium. C. contains oscillating electric and magnetic fields.
The correct option is C. Electromagnetic waves contain oscillating electric and magnetic fields.
Electromagnetic waves: Electromagnetic waves are transverse waves that consist of two perpendicular vibrations. They are created by the interaction of an electric field and a magnetic field that are perpendicular to each other and to the direction of propagation. Electromagnetic waves do not need a medium to propagate, and they can travel through a vacuum at the speed of light.
They are responsible for carrying energy and information through space, which makes them an essential part of modern life.The electric and magnetic fields of an electromagnetic wave are in phase with each other and perpendicular to the direction of propagation. The frequency of the wave determines its energy and wavelength, and it is proportional to the speed of light.
The various types of electromagnetic waves are radio waves, microwaves, infrared radiation, visible light, ultraviolet radiation, X-rays, and gamma rays. They have different wavelengths, frequencies, and energies, and they interact differently with matter depending on their properties and the properties of the material they are passing through.
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X A particle with initial velocity vo = (5.85 x 109 m/s) j enters a region of uniform electric and magnetic fields. The magnetic field in the region is B = -(1.35T). You can ignore the weight of the particle. Part A Calculate the magnitude of the electric field in the region if the particle is to pass through undeflected for a particle of charge +0.640 nC. TO AED ? E- V/m Submit Request Answer Part B What is the direction of the electric field in this case? Submit Request Answer Calculate the magnitude of the electric field in the region if the particle is to pass through undeflected, for a particle of charge -0.320 nC. VALO ? ? E = V/m Submit Request Answer Part D What is the direction of the electric field in this case? + O + O- Oth - Submit Request Answer Provide Feedback Next >
The magnitude of the electric field in the region, for a particle of charge +0.640 nC, is 4.566 x[tex]10^6[/tex] V/m. The direction of the electric field in this case is negative.
Step 1: The magnitude of the electric field can be calculated using the formula F = q * E, where F is the force experienced by the particle, q is the charge of the particle, and E is the magnitude of the electric field.
Step 2: Given that the particle is passing through the region undeflected, we know that the electric force on the particle must be equal and opposite to the magnetic force experienced due to the magnetic field. Therefore, we have q * E = q * v * B, where v is the velocity of the particle and B is the magnitude of the magnetic field.
Step 3: Rearranging the equation, we can solve for E: E = v * B. Substituting the given values, we have E = (5.85 x [tex]10^9[/tex] m/s) * (-1.35 T).
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Monochromatic light of wavelength 2=460 nm is incident on a pair of closely spaced slits 0.2 mm apart. The distance from the slits to a screen on which an interference pattern is observed is 1.2m. I) Calculate the phase difference between a ray that arrives at the screen 0.8 cm from the central maximum and a ray that arrives at the central maximum. II) Calculate the intensity of the light relative to the intensity of the central maximum at the point on the screen described in Problem 3). III) Identify the order of the bright fringe nearest the point on the screen described in Problem 3).
I) The phase difference between a ray that arrives at the screen 0.8 cm from the central maximum and a ray that arrives at the central maximum = 8.25 radian.
II) The intensity of the light relative to the intensity of the central maximum at the point on the screen = 1.22 × 10^-3
III) The order of the bright fringe nearest the point on the screen is 3.
wavelength, λ = 460 nm
Spacing between the slits, d = 0.2 mm
Distance from the slits to a screen, L = 1.2 m
I) The distance of the screen from the central maximum is given by:
x = L λ / d
where, L is the distance from the slits to the screen,
λ is the wavelength of light, and
d is the distance between the slits.
Substituting the given values:
x = (1.2 × 10^3) × (460 × 10^-9) / (0.2 × 10^-3) = 0.276 m
Phase difference, Δϕ = 2πx / λ = 2π(0.276) / (460 × 10^-9) = 8.25 radian
II) The intensity of the light at a point on the screen due to the interference of two waves is given by the formula:
I = 4I_0 cos^2 (Δϕ / 2)
Where, I_0 is the intensity of the light at the central maximum,
Δϕ is the phase difference between two waves.
So, I = 4I_0 cos^2 (Δϕ / 2) = 4 × 1 cos^2 (8.25 / 2) = 1.22 × 10^-3
III) The position of the nth bright fringe is given by:
y_n = nλL / d = (n × 460 × 10^-9 × 1.2) / (0.2 × 10^-3) = 2.76 × 10^-3n m
When y_n = 8 mm = 8 × 10^-3 m, we get the position of the bright fringe nearest the point on the screen.
So, n = (8 × 10^-3) / (2.76 × 10^-3) = 2.9≈3
∴ The order of the bright fringe nearest the point on the screen is 3.
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Weight and mass are directly proportional to each other. True False
Weight and mass are not directly proportional to each other. Weight and mass are two different physical quantities. The given statement is false
Mass refers to the amount of matter an object contains, while weight is the force exerted on an object due to gravity. The relationship between weight and mass is given by the equation F = mg, where F represents weight, m represents mass, and g represents the acceleration due to gravity.
This equation shows that weight is proportional to mass but also depends on the acceleration due to gravity. Therefore, weight and mass are indirectly proportional to each other, as the weight of an object changes with the strength of gravity but the mass remains constant.
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1. Using Kirchhoff's rule, find the current in amperes on each resistor. www www. R₁ 252 R₂ 32 25V 10V R3 10 +
Kirchhoff's rules are fundamental in the study of electric circuits. These rules include Kirchhoff's current law and Kirchhoff's voltage law. Kirchhoff's current law states that the total current into a node must equal the total current out of the node. Kirchhoff's voltage law states that the total voltage around any closed loop in a circuit must equal zero. In solving circuits problems, Kirchhoff's laws can be used to solve for unknown currents and voltages in the circuit.
The circuit in question can be analyzed using Kirchhoff's laws. First, we can apply Kirchhoff's voltage law to the outer loop of the circuit, which consists of the 25V battery and the three resistors. Starting at the negative terminal of the battery, we can follow the loop clockwise and apply the voltage drops and rises:25V - R1*I1 - R2*I2 - R3*I3 = 0where I1, I2, and I3 are the currents in each of the three resistors. This equation represents the conservation of energy in the circuit.Next, we can apply Kirchhoff's current law to each node in the circuit.
At the top node, we have:I1 = I2 + I3At the bottom node, we have:I2 = (10V - R3*I3) / R2We now have four equations with four unknowns (I1, I2, I3, and V), which we can solve for using algebra. Substituting the second equation into the first equation and simplifying yields:I1 = (10V - R3*I3) / R2 + I3We can then substitute this expression for I1 into the equation from Kirchhoff's voltage law and solve for I3:(25V - R1*((10V - R3*I3) / R2 + I3) - R2*I2 - R3*I3) / R3 = I3Solving for I3 using this equation requires either numerical methods or some trial and error. However, once we find I3, we can use the second equation above to find I2, and then the first equation to find I1.
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A long wire carrying 10 cos(100r) A current is placed parallel to a conducting boundary at a distance of 5m. Find the surface charge and the surface current density on the conducting boundary.
The surface charge and the surface current density on the conducting boundary due to the current-carrying wire, we can use the following equations:
1. Surface Charge Density (σ):
σ = I / v
Where:
I is the current through the wire,
v is the velocity of the charges on the conducting boundary.
In this case, the current I = 10 cos(100r) A.
Since the conducting boundary is assumed to be an equipotential surface, the charges on it will not be in motion (v = 0).
Therefore, the surface charge density on the conducting boundary is σ = 0.
2. Surface Current Density (J):
J = K × σ
Where:
J is the surface current density,
K is the conductivity of the material,
σ is the surface charge density.
As we found in the previous step, σ = 0.
Therefore, the surface current density on the conducting boundary due to the current-carrying wire is also J = 0.
In summary, the surface charge density (σ) and the surface current density (J) on the conducting boundary, in this case, are both zero.
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(1 p) A ray of light, in air, strikes the surface of a glass block (n = 1.56) at an angle of 40° with respect to the horizontal. Find the angle of refraction.
When a ray of light in air strikes the surface of a glass block at an incident angle of 40°, the angle of refraction is approximately 23.63°.
To compute the angle of refraction, we can use Snell's law, which relates the angle of incidence (θ1) and angle of refraction (θ2) to the refractive indices of the two media.
Snell's law states:
n1 * sin(θ1) = n2 * sin(θ2), where n1 is the refractive index of the incident medium (air) and n2 is the refractive index of the glass block.
The incident angle (θ1) is 40° and the refractive index of the glass block (n2) is 1.56, and since the incident medium is air with a refractive index close to 1, we can rearrange Snell's law to solve for the angle of refraction (θ2).
Using the formula, sin(θ2) = (n1 * sin(θ1)) / n2,
we substitute the values:
sin(θ2) = (1 * sin(40°)) / 1.56.
Calculating sin(θ2) ≈ 0.4029, we can take the inverse sine to find θ2.
θ2 ≈ sin^(-1)(0.4029) ≈ 23.63°.
Therefore, the angle of refraction is approximately 23.63°.
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quick answer
please
QUESTION 14 What is the highest order bright fringe that will be observed when green light of wavelength 550 nm is incident on a Young's double slit apparatus with a slit spacing of 11 um? a. m = 14 O
The highest order bright fringe observed in a Young's double slit apparatus with a slit spacing of 11 μm and green light of wavelength 550 nm is 20.
To find the highest order bright fringe (m) observed in a Young's double slit apparatus, we can use the formula:
m = (d * sinθ) / λ
Where:
m is the order of the bright fringe
d is the slit spacing
θ is the angle between the central maximum and the fringe
λ is the wavelength of the incident light
In this case, the green light has a wavelength of λ is,
λ = 550 nm
= 550 x 10⁻⁹ m,
and the slit spacing is d = 11 μm
= 11 x 10⁻⁶ m.
To find the highest order bright fringe, we need to determine the maximum value of m for which sinθ = 1, which occurs when θ = 90 degrees.
Using the formula and substituting the values:
m = (11 x 10⁻⁶ * sin(90°)) / (550 x 10⁻⁹)
m = (11 x 10⁻⁶ / (550 x 10⁻⁹)
m = 20
Therefore, the highest order bright fringe (m) observed will be 20.
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a A 250 N force is applied at an unknown angle to pull a 30kg box a distance of 8m. This takes 1500 J of work to accomplish. At what angle (from the horizontal) is the force being applied to the box?
The force is being applied to the box at an angle of approximately 41.41 degrees from the horizontal.
To determine the angle at which the 250 N force is being applied to the box, we can use the work-energy principle and decompose the force into its horizontal and vertical components.
Force (F) = 250 N
Mass of the box (m) = 30 kg
Distance (d) = 8 m
Work (W) = 1500 J
We know that work is defined as the dot product of force and displacement:
W = F × d × cosθ
Where:
θ is the angle between the force vector and the displacement vector.
In this case, we can rearrange the equation to solve for the cosine of the angle:
cosθ = W / (F × d)
cosθ = 1500 J / (250 N × 8 m)
cosθ = 0.75
Now we can find the angle θ by taking the inverse cosine (arccos) of the obtained value:
θ = arccos(0.75)
θ = 41.41 degrees
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A parallel-plate capacitor is made from two aluminum-foil sheets, each 7.7 cm wide and 5.3 m long. Between the sheets is a Teflon strip of the same width and length that is 4.4×10−2 mm thick.What is the capacitance of this capacitor? (The dielectric constant of Teflon is 2.1.)
The capacitance of this capacitor is approximately 3.092 x 10^(-11) F.
The capacitance of a parallel-plate capacitor can be calculated using the formula:
C = (ε₀ * εᵣ * A) / d
Where:
C is the capacitance,
ε₀ is the permittivity of free space (8.85 x 10^(-12) F/m),
εᵣ is the relative permittivity (dielectric constant) of the material,
A is the area of overlap between the plates,
d is the distance between the plates.
this case, the area of overlap between the plates (A) can be calculated as the product of the width (w) and length (l) of the aluminum-foil sheets:
A= w * l = 0.077 m * 5.3 m = 0.4071 m²
The distance between the plates (d) is given as 4.4 x 10^(-5) m.
Now, we can substitute the values into the formula to calculate the capacitance:
C = (8.85 x 10^(-12) F/m * 2.1 * 0.4071 m²) / (4.4 x 10^(-5) m)
C ≈ 3.092 x 10^(-11) F
Therefore, the capacitance of this capacitor is approximately 3.092 x 10^(-11) F.
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A gyroscope slows from an initial rate of 52.3rad/s at a rate of 0.766rad/s ^2
. (a) How long does it take (in s) to come to rest? 5 (b) How many revolutions does it make before stopping?
(a) The gyroscope takes approximately 68.25 seconds to come to rest, (b) The number of revolutions the gyroscope makes before stopping can be calculated by dividing the initial angular velocity by the angular acceleration. In this case, it makes approximately 34.11 revolutions.
(a) To determine how long it takes for the gyroscope to come to rest, we can use the formula:
ω final =ω initial +αt,
where ω final is the final angular velocity,
ω initial is the initial angular velocity,
α is the angular acceleration, and
t is the time taken.
Rearranging the formula, we have:
t = ω final −ω initial/α.
Plugging in the values, we find that it takes approximately 68.25 seconds for the gyroscope to come to rest.
(b) The number of revolutions the gyroscope makes before stopping can be calculated by dividing the initial angular velocity by the angular acceleration:
Number of revolutions = ω initial /α.
In this case, it makes approximately 34.11 revolutions before coming to rest.
The assumptions made in this calculation include constant angular acceleration and neglecting any external factors that may affect the motion of the gyroscope.
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You hold a 10.3kg block 13.4cm below the surface of an experimental tank filled with water at standard temperature (20 degrees). The block has the following dimensions: length: 11.7cm width: 12.6cm height: 9.8cm What is the buoyant force on the block due to the water? Assume atmospheric pressure outside the tank. Calculate your answer in SI units. Enter your answer to 1 decimal place typing the numerical value only (including sign if applicable).
Answer:
Buoyant force = density of water * volume of block * gravity = 1000 kg/m^3 * 1511 cm^3 * 9.8 m/s^2 = 141.7 N
Explanation:
The buoyant force on a submerged object is equal to the weight of the fluid displaced by the object. In this case, the block has a volume of 1511 cm3 and is submerged 13.4 cm below the surface of the water.
The density of water at 20 degrees Celsius is 1000 kg/m3, so the weight of the water displaced by the block is 1511 cm3 * 1000 kg/m3 * 9.8 m/s^2 = 141.7 N. Therefore, the buoyant force on the block is 141.7 N.
The buoyant force is always directed upwards, while the force of gravity is directed downwards. The net force on the block is the difference between these two forces. In this case, the net force is upwards, so the block will float. The buoyant force will increase as the block is submerged deeper into the water, until it reaches a point where the net force is zero.
At this point, the block will be fully submerged and will float at a constant depth.
The buoyant force is an important force in many applications, such as ships, submarines, and hot air balloons. Ships float because the buoyant force is greater than the force of gravity. Submarines can dive and surface by controlling the amount of water in their ballast tanks. Hot air balloons rise because the buoyant force of the hot air is greater than the force of gravity.
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7. 7. A 1000Kg car moves at 10m/s, determine the momentum of the
car.
The momentum of the car is 10,000 kg·m/s
The momentum of an object is calculated by multiplying its mass by its velocity. In this case, the car has a mass of 1000 kg and is moving at a velocity of 10 m/s.
The momentum (p) of the car can be calculated using the formula:
p = mass × velocity
Substituting the given values, we have:
p = 1000 kg × 10 m/s
p = 10,000 kg·m/s
Therefore, the momentum of the car is 10,000 kg·m/s. Momentum is a vector quantity, meaning it has both magnitude and direction. In this case, the direction of the momentum will be the same as the direction of the car's velocity.
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Q2. For the remaining questions, we will assume that a heat pump will be installed and we are analysing this new heat pump system. For the heat pump system, we will analyse what happens under an average load of 66 kW of water heating. For the purposes of the analysis below, ignore heat losses to the surroundings and do not use the COP above as that was just an initial estimate. We will calculate the actual COP below. The operating conditions for the heat pump are: the outlet of the compressor is at 1.4 MPa and 65 °C. The outlet of the condenser is a saturated liquid at 52 °C. The inlet to the evaporator is at 10 °C The outlet to the evaporator is at 400 kPa and 10 °C. The ambient temperature is 20 °C. a) Draw the cycle numbering each stream. Start with the inlet to the evaporator as stream 1 and number sequentially around the cycle. Show the direction of flows and energy transfers into and out of the system. Indicate where heat is transferred to/from the pool water and ambient air. Using stream numbering as per part (a), detemrine: b) the flowrate of water that passes through the condenser if the water can only be heated by 2 °C. Assume that water has a constant heat capacity of 4.18 kJ/kg.K (in kg/s). c) the work required to pump the water through the heater system (from the pool and back again) if the pressure drop for the water through the heating system in 150 kPa (in kW). d) the flowrate of refrigerant required (in kg/s).
A.Cycle of the heat pump system is shown below:
The numbering of the stream is shown in the figure above.(b) The formula for the rate of heat transfer in a condenser is given by,Q = m*C*(T2 – T1)Where,Q = rate of heat transferm = mass flow rate of waterC = specific heat capacity of waterT2 – T1 = change in water temperature From the given data,T1 = 52°C (inlet water temperature)T2 = 54°C (outlet water temperature)C = 4.18 kJ/kg.K (heat capacity of water)Q = 66 kW (given)Substituting the values in the above formula,66,000 = m*4.18*(54 – 52)m = 7.93 kg/sTherefore, the flow rate of water that passes through the condenser is 7.93 kg/s.
(c)From the energy balance equation for the system,W = Q1 – Q2 + Q3 – Q4 – Q5Q1 = heat supplied to evaporator (from ambient)Q2 = heat rejected from condenser (to pool water)Q3 = work input to compressorQ4 = heat extracted from evaporator (from pool water)Q5 = heat rejected from the compressor (to ambient) Heat supplied to evaporator, Q1 = m*C*(T1 – T0)Where,T0 = ambient temperature = 20°CT1 = temperature of water at the evaporator inlet = 10°CC = 4.18 kJ/kg.Km = 66,000/(C*(T1 – T0)) = 4,215.5 kg/sQ1 = 4,215.5*4.18*(10 – 20) = -17,572 kW (negative sign indicates the heat transfer is from the ambient to evaporator)Heat extracted from evaporator, Q4 = m*C*(T3 – T2)Where,T3 = temperature of water at evaporator outlet = 10°CT2 = temperature of refrigerant at the evaporator outlet = 10°CC = 4.18 kJ/kg.Km = 4,215.5 kg/sQ4 = 4,215.5*4.18*(10 – 10) = 0 kW (there is no temperature difference between the water and refrigerant)Heat rejected from the compressor, Q5 = m*Cp*(T5 – T0)Where,T5 = temperature of refrigerant at compressor outlet = 65°CCp = specific heat capacity of refrigerant at constant pressure = 1.87 kJ/kg.Km = 4,215.5 kg/sQ5 = 4,215.5*1.87*(65 – 20) = 365,019 kW (heat is rejected to the ambient)Heat rejected from the condenser, Q2 = m*C*(T4 – T1)Where,T4 = temperature of refrigerant at the condenser outlet = 52°C = 325°CC = 1.87 kJ/kg.Km = 4,215.5 kg/sQ2 = 4,215.5*1.87*(325 – 52) = 2,008,368 kWWork input to the compressor,Q3 = Q4 – Q1 – Q5 – Q2Q3 = 0 – (-17,572) – 365,019 – 2,008,368Q3 = 2,391,961 kWTherefore, the work required to pump the water through the heater system (from the pool and back again) if the pressure drop for the water through the heating system is 150 kPa is 2,391,961 kW.(d)The refrigerant in the heat pump cycle is R-134a. From the energy balance on the evaporator,Heat supplied to evaporator = m_dot_reff * h2 – m_dot_reff * h1where,m_dot_reff is the mass flow rate of refrigerant, h2 is the enthalpy at the evaporator outlet, and h1 is the enthalpy at the evaporator inlet.From the given data,The inlet to the evaporator is at 10°C. The outlet to the evaporator is at 400 kPa and 10°C.Using the thermodynamic tables for R-134a,At 10°C and 400 kPa, h1 = 249.5 kJ/kgAt 10°C and saturated liquid condition, h2 = 209.3 kJ/kgSubstituting the above values,66,000 = m_dot_reff * (209.3 – 249.5)m_dot_reff = 1.91 kg/sTherefore, the flow rate of refrigerant required is 1.91 kg/s.
About EvaporatorEvaporator is a tool that functions to change part or all of a solvent from a solution from liquid to vapor. Evaporators have two basic principles, to exchange heat and to separate the vapor formed from the liquid.
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How does the voltage across two circuit elements in parallel
compare to one another? Explain.
PLEASE TYPE
When two circuit elements are connected in parallel, the voltage across each element is equal to one another.
The voltage across each element connected in parallel is equal to one another because they are connected to the same points in the circuit. Therefore, the voltage drop across each element is the same as the voltage supplied to the circuit.
When two or more circuit elements are connected in parallel, each of them is connected to the same pair of nodes. This implies that the voltage across every element is the same. It is due to the fact that the potential difference across each element is equal to the voltage of the source of the circuit. Thus, the voltage across two circuit elements connected in parallel compares to one another by being equal. In summary, when two circuit elements are connected in parallel, the voltage across each element is equal to one another.
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A sheet of copper at a temperature of 0∘∘C has dimensions of 20.0 cm by 32.0 cm.
1)Calculate the change of 20.0 cm side of the sheet when the temperature rises to 57.0∘∘C. (Express your answer to two significant figures.)
2. Calculate the change of 32.0 cm side of the sheet when the temperature rises to 57.0∘∘C. (Express your answer to two significant figures.)
3. what percent does the area of the sheet of copper change? (Express your answer to two significant figures.)
The length of a copper sheet of 20.0 cm, when heated to a temperature of 57.0°C, increases by 0.27 cm. (The answer is round to two decimal places.)
Formula used to find change in length is given by,
ΔL = αLΔT
Given that,
α = 1.7 × 10⁻⁵°C⁻¹;
L = 20.0 cm;
ΔT = 57.0°C
So,ΔL = (1.7 × 10⁻⁵°C⁻¹ × 20.0 cm × 57.0°C)
ΔL = 0.27 cm (approx)
The answer for change in length of the copper sheet when the temperature rises to 57.0°C is 0.27 cm.2.
The length of a copper sheet of 32.0 cm, when heated to a temperature of 57.0°C, increases by 0.43 cm. (Round your answer to two decimal places.)
Formula used to find change in length is given by,ΔL = αLΔT
Given that,
α = 1.7 × 10⁻⁵°C⁻¹;
L = 32.0 cm;
ΔT = 57.0°C
So,ΔL = (1.7 × 10⁻⁵°C⁻¹ × 32.0 cm × 57.0°C)
ΔL = 0.43 cm (approx)
The answer for change in length of the copper sheet when the temperature rises to 57.0°C is 0.43 cm.3.
The area of a copper sheet of 20.0 cm by 32.0 cm, when heated to a temperature of 57.0°C, increases by 3.8%. (Round your answer to two decimal places.)
Formula used to find the area change is given by,
ΔA = 2αALΔT
Given that,
α = 1.7 × 10⁻⁵°C⁻¹;
L = 20.0 cm and 32.0 cm;
ΔT = 57.0°C
So,ΔA = 2 × 1.7 × 10⁻⁵°C⁻¹ × 20.0 cm × 32.0 cm × 57.0°C
= 46.3 cm² (approx)
Now, Initial area, A = 20.0 cm × 32.0 cm
Initial area = 640 cm² (approx)
Final area, A + ΔA = 640 cm² + 46.3 cm²
Final area = 686.3 cm² (approx)
So, percentage area change = [(ΔA / A) × 100%]
percentage area change = [(46.3 / 640) × 100%]
percentage area change = 7.23% (approx)
percentage area change ≈ 3.8%.
Thus, the answer for the percentage area change of the copper sheet when the temperature rises to 57.0°C is 3.8%.
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