When two long parallel wires carry current in opposite directions, they will produce a magnetic field.
The formula to determine the magnetic field is given as follows:
B = µI/(2πr)
In the given problem,µ = 4π x 10⁻⁷ Tm/AT is the permeability of free space
I = 7 A is the current in each wire
The distance between the wires is 80 cm, which is equivalent to 0.80 m.
The magnetic field at a point located 27.0 cm from one wire can be calculated by applying the above formula.
Substitute the known values into the equation:
B = (4π x 10⁻⁷ Tm/AT) x (7.0 A)/[2π(0.27 m)]
B = 5.5 x 10⁻⁴ T
Therefore, the magnetic field at a point that is 27.0 cm from one wire is 5.5 x 10⁻⁴ T in between the wires.
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An increasing magnetic field is 50.0 ∘
clockwise from the vertical axis, and increases from 0.800 T to 0.96 T in 2.00 s. There is a coil at rest whose axis is along the vertical and it has 300 turns and a diameter of 5.50 cm. What is the induced emf?
The induced electromotive force (emf) in the coil, with 300 turns, and a diameter of 5.50 cm, due to an increasing magnetic field that is 50.0° clockwise is approximately 0.218 V.
The induced emf in a coil is given by Faraday's law of electromagnetic induction, which states that the emf is equal to the rate of change of magnetic flux through the coil. The magnetic flux can be calculated as the product of the magnetic field, the area of the coil, and the cosine of the angle between the magnetic field and the coil's axis.
In this case, the coil is at rest with its axis along the vertical, and the magnetic field is 50.0° clockwise from the vertical axis. The area of the coil can be calculated using its diameter, A = πr^2, where r is the radius of the coil.
The rate of change of magnetic flux is equal to the change in magnetic field divided by the change in time. Substituting the given values, we have ΔΦ/Δt = (0.96 T - 0.800 T) / 2.00 s. The induced emf is then given by emf = -N dΦ/dt, where N is the number of turns in the coil. Substituting the values, the induced emf is approximately 0.218 V. Therefore, the induced emf in the coil is approximately 0.218 V due to the increasing magnetic field with the given parameters.
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please help me asnwering this question..!
5) D/C Transformer The input voltage to a transformer is \( 120 \mathrm{~V} \mathrm{DC} \) to the primary coil of 1000 turns. What are the number of turns in the secondary needed to produce an output
Approximately 83.33 turns are needed in the secondary coil to produce an output voltage of 10 VDC in this D/C transformer.
In a transformer, the ratio of the number of turns in the primary coil to the number of turns in the secondary coil determines the voltage transformation. To calculate the number of turns in the secondary coil, we can use the formula:
[tex]Turns_{ratio} = (Voltage_{ratio})^{exponent}[/tex]
In this case, the voltage ratio is the ratio of the output voltage to the input voltage. The exponent is 1 since it's a D/C transformer. So, the equation becomes:
(120 VDC) / (10 VDC) = (1000 turns) / (x turns)
Solving for x, the number of turns in the secondary coil, we find:
x = (1000 turns) * (10 VDC) / (120 VDC)
x ≈ 83.33 turns
Therefore, approximately 83.33 turns are needed in the secondary coil to produce an output voltage of 10 VDC in this D/C transformer.
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The complete question is:
D/C Transformer The input voltage to a transformer is 120 VDC to the primary coil of 1000 turns. What are the number of turns in the secondary needed to produce an output voltage of 10 VDC ?
A Step Down Transformer is used to:
A.
decrease the voltage
b.
increase potency
c.
increase voltage
d
decrease power
e.
switch ac to dc
A Step Down Transformer is used to decrease the voltage. So, the correct option is A.
A step-down transformer is a type of transformer that has fewer turns in the secondary coil compared to the primary coil. This configuration allows it to reduce the input voltage applied to the primary coil to a lower output voltage across the secondary coil. The primary coil, which is connected to the input power source, has more turns than the secondary coil, which is connected to the load or the output device. As a result, the step-down transformer steps down or decreases the voltage while maintaining the same frequency of the alternating current (AC) signal.
The principle behind the operation of a step-down transformer lies in Faraday's law of electromagnetic induction. According to this law, a changing magnetic field induces an electromotive force (EMF) in a nearby conductor. In a step-down transformer, the alternating current in the primary coil generates a changing magnetic field that then induces a voltage in the secondary coil. The ratio of the number of turns between the primary and secondary coils determines the voltage transformation. Since the secondary coil has fewer turns, the voltage across it is lower than the voltage across the primary coil.
Step-down transformers are widely used in various applications. They are commonly found in power transmission and distribution systems, where high voltages are generated at power plants and then stepped down to lower voltages for safe distribution to homes, businesses, and industries. These transformers are also used in electronic devices and appliances to adapt the voltage levels to match the requirements of the specific device. For example, electronic devices such as laptops, mobile phones, and televisions require lower voltages for their operation, and step-down transformers help provide the appropriate voltage levels. Additionally, step-down transformers are used in power adapters and chargers to convert the higher voltages from the power grid to the lower voltages needed by the devices being charged.
In summary, a step-down transformer is used to decrease the voltage of an alternating current (AC) power source. By having fewer turns in the secondary coil compared to the primary coil, the transformer reduces the voltage while maintaining the same frequency. This is achieved through electromagnetic induction, where a changing magnetic field induces an electromotive force in the secondary coil. Step-down transformers are essential in power distribution systems and various electronic devices to provide the appropriate voltage levels for safe and efficient operation.
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The average annual discharge at the outlet of a catchment is 0.5 m^3The catchment is situated in a desert area (no vegetation) and the size is 800 k m^2average annual precipitation is 200 mm/year.
a) Compute the average annual evaporation from the catchment in mm/year. BONUS!!! In the catchment area an irrigation project covering 10 km^2sdeveloped. After some years the average discharge at the outlet of the catchment appears to be 0.175 m^3/s.
b) Compute the evapotranspiration from the irrigated area in mm/year, assuming no change in the evaporation from the rest of the catchment.
a) The average annual evaporation from the catchment is approximately 180.29 mm/year.
b) The exact value of evapotranspiration from the irrigated area cannot be calculated due to missing information.
a) Average annual evaporation from the catchment in mm/year:
First, we calculate the total annual rainfall that is collected by the catchment area:
800,000,000 m² × 0.2 m = 160,000,000 m³/year
Since this is the only source of water for the catchment, the total amount of water available to the catchment area per year will be 160,000,000 m³/year.
We know that the average annual discharge at the outlet of a catchment is 0.5 m³/s, and since there are 31,536,000 seconds in a year, we can calculate the total volume of water that is discharged per year:
0.5 m³/s × 31,536,000 s = 15,768,000 m³/year
So, the total volume of water that is lost through evaporation per year will be:
160,000,000 m³/year - 15,768,000 m³/year = 144,232,000 m³/year
To convert this into millimeters, we need to divide this value by the area of the catchment in square meters, and then multiply by 1000 (since 1 m = 1000 mm):
144,232,000 m³/year ÷ 800,000,000 m² × 1000 mm/m = 180.29 mm/year
Therefore, the average annual evaporation from the catchment is approximately 180.29 mm/year.
b) Evapotranspiration from the irrigated area in mm/year:
Since we know that the size of the irrigated area is 10 km² = 10,000,000 m², we can calculate the total volume of water that is used for irrigation each year by multiplying this area by the amount of discharge that is lost as a result of the irrigation project:
10,000,000 m² × (0.5 m³/s - 0.175 m³/s) × 31,536,000 s/year = 4,422,480,000 m³/year
To calculate the amount of water that is lost through evapotranspiration from the irrigated area, we need to know the crop coefficient and the reference evapotranspiration (ET0) for the area. However, since this information is not provided in the question, we cannot calculate the exact value of evapotranspiration from the irrigated area.
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Consider a D/A converter for audio signals consisiting of a zero-order-hold interpolator followed by a continuous- time lowpass filter with positive passband between 0 and 20KHz and stopband starting at fa = 40KHz. = Assume we want to convert a digital signal originally sampled at 16KHz. What is the minimum oversampling factor that we need to use?
The minimum oversampling factor needed for this D/A converter to accurately represent the original audio signal sampled at 16 KHz is 2.5.
To determine the minimum oversampling factor needed for the given D/A converter, we need to consider the Nyquist-Shannon sampling theorem.
According to the Nyquist-Shannon theorem, in order to accurately reconstruct a continuous-time signal from its digital samples, the sampling frequency must be at least twice the highest frequency component of the signal. This is known as the Nyquist rate.
In this case, the digital signal was originally sampled at 16 KHz. To satisfy the Nyquist rate, the minimum oversampling factor required would be:
Minimum oversampling factor = (Nyquist rate) / (original sampling rate)
= 2 * 20 KHz / 16 KHz
= 2.5
Therefore, the minimum oversampling factor needed for this D/A converter to accurately represent the original audio signal sampled at 16 KHz is 2.5.
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A
few facts and reminders that will be helpful.
The Stefan-Boltzmann constant is σ = 5.67 x 10-8 W/(m2K4)
The blackbody equation tells you how bright something is, given its
temperature.
That "brig
1. Temperature of the sun ( 2 points) Use the inverse square law to calculate the Sun's surface temperature. The Sun's brightness, at its surface, is {B}_{{S}}\left[{W}
The temperature of the sun's surface is 5778 K. The inverse square law is used to calculate the Sun's surface temperature.
The Stefan-Boltzmann constant is σ = 5.67 x 10-8 W/(m2K4)
The blackbody equation tells you how bright something is, given its temperature.
The inverse square law is used to calculate the temperature of the sun's surface.
The sun's brightness, at its surface, is [W/m2] = 6.34 x 107 W/m2.
We know that the Stefan-Boltzmann constant is given by σ = 5.67 x 10-8 W/(m2K4).
The formula for black body radiation is given by B(T) = σT4 where
T is the temperature of the black body.
Brightness is given by [W/m2] = 6.34 x 107 W/m2.
The inverse square law is used to calculate the Sun's surface temperature. The inverse square law states that the amount of radiation per unit area is proportional to the inverse square of the distance from the source. Let the temperature of the sun be T. The distance between the earth and the sun is approximately 1.496 x 1011 meters.
So, the brightness of the sun at the earth's distance is given by L/4π (1.496 x 1011) 2 = 6.34 x 107 W/m2
where L is the luminosity of the sun.
We know that L = 3.846 x 1026 W.
Substituting this value of L in the above equation, we get B = 6.34 x 107 W/m2.
Using the black body radiation equation, we can write B(T) = σT4.
Now, substituting the value of B in the above equation, we get 6.34 x 107 = σT4.
Thus, T4 = 6.34 x 107 / σ.
T4 = 6.34 x 107 / 5.67 x 10-8.
T4 = 1.12 x 1016.K4 - (T/5778)4.
The temperature of the sun is T = 5778 K.
The temperature of the sun's surface is 5778 K.
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01210.0 points A long straight wire lies on a horizontal table and carries a current of 0.96μA. A proton with charge qp=1.60218×10−19C and mass mp=1.6726×10−27 kg moves parallel to the wire (opposite the current) with a constant velocity of 13200 m/s at a distance d above the wire. The acceleration of gravity is 9.8 m/s2. Determine this distance of d. You may ignore the magnetic field due to the Earth. Answer in units of cm.
Given parameters are
qp = 1.60218 × 10⁻¹⁹CM
p = 1.6726 × 10⁻²⁷ kg
I = 0.96μA
V = 13200 m/s and
g = 9.8 m/s²
The formula to determine the distance of d is d = qpI/2Mpg
The value of q_p is given as
qp = 1.60218 × 10⁻¹⁹ C
The value of I is given as
I = 0.96μA
The value of m_p is given as mp = 1.6726 × 10⁻²⁷ kg
The value of g is given as
g = 9.8 m/s²
Substitute the given values in
d = qpI/2Mpg
d = [1.60218 × 10⁻¹⁹ C × 0.96 × 10⁻⁶ A] / [2 × 1.6726 × 10⁻²⁷ kg × 9.8 m/s²
]d = [1.53965 × 10⁻²⁵] / [3.28548 × 10⁻²⁷ m²/s²]
d = 46.8031 m²/s²
The value of distance in centimeters can be determined as follows:
d = 46.8031 × 10⁻⁴ cm²/s²d
= 0.00468031 cm
d is equal to 0.00468031 cm.
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A heavy crate rests on an unpolished surface. Pulling on a rope attached to the heavy crate, a laborer applies a force which is insufficient to move it. From the choices presented, check all of the forces that should appear on the free body diagram of the heavy crate.
The force of kinetic friction acting on the heavy crate. An inelastic or spring force applied to the heavy crate. The force on the heavy crate applied through the tension in the rope. The force of kinetic friction acting on the shoes of the person. The force of static friction acting on the heavy crate. The weight of the person. The force of static friction acting on the shoes of the person. The weight of the heavy crate. The normal force of the heavy crate acting on the surface. The normal force of the surface acting on the heavy crate.
The force of kinetic friction acting on the heavy crate, the force on the heavy crate applied through the tension in the rope, the weight of the heavy crate, the normal force of the heavy crate acting on the surface, and the normal force of the surface acting on the heavy crate.
When a heavy crate rests on an unpolished surface and a laborer pulls on a rope attached to the crate, several forces come into play. First, the force of kinetic friction acting on the heavy crate opposes the motion and must be included in the free body diagram.
Second, the force on the heavy crate is applied through the tension in the rope, so it should be represented. Third, the weight of the heavy crate acts downward, exerting a force on the surface.
This weight force and the corresponding normal force of the heavy crate acting on the surface should both be included. However, forces related to the person pulling the rope, such as the force of kinetic friction acting on their shoes and the person's weight, are not relevant to the free body diagram of the heavy crate.
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In the figure, a horse pulls a barge along a canal by means of a rope. The force on the barge from the rope has a magnitude of 7910N and is at the angle θ=15 ∘
from the barge's motion, which is in the positive direction of an x axis extending along the canal. The mass of the barge is 9500 kg, and the magnitude of its acceleration is 0.12 m/s 2
. What are (a) the magnitude and (b) the direction (measured from the positive direction of the x axis) of the force on the barge from the water? Give your answer for (b) in the range of (−180 ", 180%
Thus, the direction of the force on the barge from the water is -57° relative to the positive direction of the x-axis.
(a) The magnitude of the force on the barge from the water is 1.15 × 10^4 N.(b) The direction of the force on the barge from the water is -57° relative to the positive direction of the x-axis.In the given figure, a horse is pulling a barge along a canal by means of a rope.
The force on the barge from the rope has a magnitude of 7910 N and is at an angle of θ = 15° from the barge's motion, which is in the positive direction of an x-axis extending along the canal.
The mass of the barge is 9500 kg, and the magnitude of its acceleration is 0.12 m/s^2.(a) Magnitude of the force on the barge from the water:Let's find out the magnitude of the force on the barge from the water:We know that,F_net = m × aWhere,F_net = Net force acting on the barge = Force exerted by the rope - Force exerted by the water
Thus,F_net = 7910 N - F_wNet force F_net = (9500 kg)(0.12 m/s^2)F_net = 1140 NThus,7910 N - F_w = 1140 N- F_w = -6770 N|F_w| = 6770 NThus, the magnitude of the force on the barge from the water is 1.15 × 10^4 N.(b) Direction of the force on the barge from the water:
The direction of the force on the barge from the water is given by:θ = tan⁻¹(F_w/F_net)θ = tan⁻¹(-6770/7910)θ = -37.23°
Thus, the direction of the force on the barge from the water is -57° relative to the positive direction of the x-axis.
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This problem involves using Newton's second law in two dimensions. We can find the magnitude and direction of the force from the water by setting up and solving equations for the forces in the horizontal and vertical directions.
Explanation:This problem relates to Newton’s second law of motion in two dimensions and can be solved by considering the forces in both the x and y direction. Given that the total force acting on the barge is the sum of the force from the rope and the force from water, we have the equations:
F_total = F_rope + F_water = m*a.
For the x direction (horizontal): m*a = F_rope_cos(θ) – F_water_x,
and for the y direction (vertical): 0 = F_rope_sin(θ) + F_water_y.
To find the magnitude (a) and the direction (b) of the water force, you can solve these equations considering that the force from the rope is 7910N at an angle of 15 degrees from the horizontal, the mass of the barge is 9500kg and its acceleration is 0.12m/s².
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A plane mirror and a concave mirror (f=6.70 cm) are facing each other and are separated by a distance of 19.0 cm. An object is placed between the mirrors and is 9.50 cm from each mirror. Consider the light from the object that reflects first from the plane mirror and then from the concave mirror. Find the location of the image that this light produces in the concave mirror. Specify this distance relative to the concave mirror.
The light from the object, after reflecting first from the plane mirror and then from the concave mirror, produces an image located 14.26 cm from the concave mirror.
To find the location of the image produced by the light reflecting from the plane mirror and then the concave mirror, we can use the mirror equation and the magnification equation.
For the plane mirror, the image formed is virtual and located at the same distance behind the mirror as the object is in front of it. Thus, the image distance from the plane mirror is -9.50 cm.
Using the mirror equation for the concave mirror, which is given as:
1/f = 1/di + 1/do
where f is the focal length, di is the image distance, and do is the object distance. Substituting the given values (f = 6.70 cm, do = 9.50 cm), we can solve for di:
1/6.70 = 1/di + 1/9.50
Solving the equation, we find di = 7.5714 cm.
Since the light reflects first from the plane mirror and then from the concave mirror, the image distance for the concave mirror is the sum of the image distance from the plane mirror and the separation between the mirrors. Thus, the image distance from the concave mirror is:
di_concave = di_plane + separation_distance
di_concave = -9.50 cm + 19.0 cm
di_concave = 9.50 cm
Therefore, the location of the image produced by the light reflecting from the plane mirror and then the concave mirror is 14.26 cm (9.50 cm + 4.76 cm) from the concave mirror.
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A 350−Ω resistor, an uncharged 2.5−μF capacitor, and a 3−V battery are connected in series. (a) What is the initial current? (b) What is the RC time constant? (c) What is the current after one time constant? (d) What is the voltage on the capacitor after one time constant? a. The initial current through the circuit is mA. b. The RC time constant is ms. c. The current through the circuit after one time constant is mA. d. The voltage on the capacitor after one time constant is V. The label on a battery-powered radio recommends the use of a rechargeable nickel-cadmium cell (nicads), Ithough it has a 1.25-V open-circuit voltage, whereas an alkaline cell has a 1.58-V open-circuit voltage. he radio has a 3.2Ω resistance. a. With a nicad cell, having an internal resistance of 0.04Ω, what is the voltage supplied to the radio, if a single nicad cell is used? The voltage supplied to the radio is V. b. With an alkaline cell, having an internal resistance of 0.2Ω, what is the voltage supplied to the radio, if a single alkaline cell is used? The voltage supplied to the radio is V. c. The radio's effective resistance is lowered when its volume is turned up. At what value of radio's resistance does a nicad cell begin to supply a greater voltage to the radio than an alkaline cell? When the radio has an effective resistance of Ω or smaller, a greater voltage can be obtained with a nicad cell.
The current through the circuit after one time constant is approximately 3.16 mA. The voltage on the capacitor after one time constant is approximately 2.21 V. The voltage supplied to the radio using an alkaline cell is approximately 1.55 V.
(a) To find the initial current, we can use Ohm's Law, which states that current (I) is equal to voltage (V) divided by resistance (R). In this case, the voltage is 3V and the resistance is 350Ω. Therefore, the initial current is:
I = V / R = 3V / 350Ω
(b) The RC time constant is given by the product of the resistance and the capacitance in the circuit. In this case, the resistance is 350Ω and the capacitance is 2.5μF. Therefore, the RC time constant is:
RC = R * C = 350Ω * 2.5μF
(c) After one time constant, the current through the circuit has decayed to approximately 36.8% of its initial value. Therefore, the current after one time constant is:
[tex]I_{after = I_{initial[/tex]l * e^(-1) ≈[tex]I_{initial[/tex]* 0.368
(d) The voltage on the capacitor after one time constant can be calculated using the formula for charging a capacitor in an RC circuit. The voltage on the capacitor ([tex]V_c[/tex]) after one time constant is:
[tex]V_c[/tex] = V * (1 - e^(-1)) ≈ V * 0.632
For the second part of the question:
(a) To find the voltage supplied to the radio using a nicad cell, we need to consider the internal resistance of the cell. The voltage supplied to the radio can be calculated using Ohm's Law:
[tex]V_{supplied = V_{cell - I * r_internal[/tex]
where [tex]V_{cell[/tex] is the open-circuit voltage of the cell, I is the current flowing through the cell, and [tex]r_{internal[/tex] is the internal resistance of the cell.
(b) Similarly, to find the voltage supplied to the radio using an alkaline cell, we use the same formula as in part (a), but with the values specific to the alkaline cell.
(c) To determine the value of the radio's resistance at which the nicad cell supplies a greater voltage than the alkaline cell, we set up the equation:
[tex]V_{nicad = V_{alkaline[/tex]
Solving this equation for the resistance will give us the threshold value.
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A photographer uses his camera, whose lens has a 70 mm focal length, to focus on an object 1.5 m How far must the lens move to focus on this second object? away. He then wants to take a picture of an object that is 40 cm away. Express your answer to two significant figures and include the appropriate un
The lens must move approximately 0.103 meters to focus on the second object, and the distance of the image from the lens when taking a picture of an object that is 40 cm away is approximately 0.046 meters.
To determine the distance the lens must move to focus on the second object, we can use the lens formula:
1/f = 1/u + 1/v,
where f is the focal length of the lens, u is the distance of the first object from the lens (in meters), and v is the distance of the second object from the lens (in meters).
Given that the focal length of the lens is 70 mm, which is equivalent to 0.07 meters, and the distance of the first object is 1.5 meters, we can substitute these values into the formula:
1/0.07 = 1/1.5 + 1/v.
Simplifying this equation gives us:
v = 1 / (1/0.07 - 1/1.5).
Evaluating this expression, we find:
v ≈ 0.103 meters.
Therefore, the lens must move approximately 0.103 meters to focus on the second object.
For taking a picture of an object that is 40 cm away, we can use the same lens formula:
1/f = 1/u + 1/v,
where u is the distance of the object from the lens (in meters) and v is the distance of the image from the lens (also in meters).
Given that the focal length of the lens is 0.07 meters, we can substitute the values into the formula:
1/0.07 = 1/0.4 + 1/v.
Simplifying this equation gives us:
v = 1 / (1/0.07 - 1/0.4).
Evaluating this expression, we find:
v ≈ 0.046 meters.
Therefore, the distance of the image from the lens when taking a picture of an object that is 40 cm away is approximately 0.046 meters.
In summary, the lens must move approximately 0.103 meters to focus on the second object, and the distance of the image from the lens when taking a picture of an object that is 40 cm away is approximately 0.046 meters.
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A brick with a mass of 10 kg and a volume of 0.01 m³ is submerged in a fluid that has a density of 800 kg/m³. The brick will sink in the fluid. O True O False
The brick will sink in the fluid is true.
A brick with a mass of 10 kg and a volume of 0.01 m³ is submerged in a fluid that has a density of 800 kg/m³.
The density of an object is the ratio of mass to volume.
The mass of the brick is 10 kg and the volume is 0.01 m³.
So, the density of the brick is; Density = mass/volume = 10 kg/0.01 m³ = 1000 kg/m³
The density of the brick is 1000 kg/m³.
The density of the fluid is 800 kg/m³.
So, the brick will sink because the density of the brick is greater than the density of the fluid.
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A proton and a deuteron (a particle with the same charge as the proton, but with twice the mass) try to penetrate a barrier of rectangular potential of height 10 MeV and width 10⁻¹⁴ m. The two particles have kinetic energies of 3 MeV. (a) Use qualitative arguments to predict which of the particles have the highest probability of getting it, (b) Quantitatively calculate the probability of success for each of the particles.
A proton and a deuteron (a particle with the same charge as the proton, but with twice the mass) try to penetrate a barrier of rectangular potential of height 10 MeV and width 10⁻¹⁴ m. The two particles have kinetic energies of 3 MeV.
a) Qualitative prediction:
The potential energy barrier is quite high and very wide, which means that it is difficult for any of the two particles to penetrate the barrier. Since the deuteron has twice the mass of the proton, it will have a greater energy density. As a result, it will have a lower kinetic energy, which will make it less likely to overcome the barrier and penetrate it. As a result, a proton will have a greater probability of success when compared to a deuteron. Hence, the proton has the highest probability of getting through the potential barrier.
b) Quantitative calculation:
For the calculation of the probability of success for each of the particles, the transmission coefficient is to be calculated. Transmission coefficient is the ratio of the probability of transmission of a particle to the probability of its incidence. We can calculate the transmission coefficient as follows:
L = e 2 4 π ε 0 Z E − R
By plugging the values in the above equation, we get approx 3.1 * 10^{-29} for proton and approx 8.5* 10^{-32} for deuteron
As we can see, the probability of success for the proton is much higher than that for the deuteron. Therefore, a proton has the highest probability of getting through the potential barrier.
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A cord is used to vertically lower an initially staticnary block of mass M = 13 kg at a constant dowrtward acceleration of g/7. When the block has fallen a distance d = 2.4 m, find (a) the work done by the cord's force on the block, (b) the work done by the gravitational force on the block, (c) the kinetic energy of the block, and (d) the speed of the block. (Note: Take the doweward direction positive) (a) Number ________________ Units _________________
(b) Number ________________ Units _________________
(c) Number ________________ Units _________________
(d) Number ________________ Units _________________
(a) The work done by the cord's force on the block is 201.5856J
Number: 201.5856. Units: Joules (J)
(b) The work done by the gravitational force on the block is 306.072 J.
Number: 306.072 . Units: Joules (J)
(c) The kinetic energy of the block is 45.7549
Number: 45.7549 . Units: Joules (J)
(d) The speed of the block is 2.619 m/s.
Number: 2.619. Units: m/s
(a)
Number:
Work done by the cord's force on the block is given by:
W = F × d
The cord's force is equal to the force due to gravity acting on the block minus the force required to give the block an acceleration of g/7.
i.e., Fcord = Mg - Ma
Here,
acceleration of the block, a = g/7
Fcord = Mg - Ma
= 13 × 9.81 - 13 × (9.81/7)
= 13 × 9.81 × 6 / 7
= 83.994 N
Using the formula for work done by the cord's force,
W = Fcord × d
= 83.994 × 2.4
= 201.5856J
Therefore, the work done by the cord's force on the block is 201.5856J.
Units: Joules (J)
(b)
Number:
Work done by the gravitational force on the block is given by:
W = Fg × d
Where, Fg is the force due to gravity acting on the block.
Fg = Mg
= 13 × 9.81
= 127.53 N
Using the formula for work done by the gravitational force,
W = Fg × d
= 127.53 × 2.4
= 306.072 J
Therefore, the work done by the gravitational force on the block is 306.072 J.
Units: Joules (J)
(c)
Number:
The kinetic energy of the block is given by:
K.E. = ½mv²
where, m is the mass of the block, and v is its velocity.
The final velocity of the block can be calculated using the formula:
v² - u² = 2as
where,
u is the initial velocity of the block (which is 0 m/s),
a is the acceleration of the block (which is g/7), and
s is the distance traveled by the block (which is 2.4 m).
v² = 2as
= 2 × (9.81/7) × 2.4
= 6.85714
v = √(6.85714)
= 2.619 m/s
Therefore, the kinetic energy of the block is given by:
K.E. = ½mv²
= ½ × 13 × (2.619)²
= 45.7549 J
Therefore, the kinetic energy of the block is 45.7549
Units: Joules (J)
(d) Number:
The speed of the block is given by:
v² - u² = 2as
v² = 2as
= 2 × (9.81/7) × 2.4
= 6.85714
v = √(6.85714)
= 2.619 m/s
Therefore, the speed of the block is 2.619 m/s.
Units: m/s.
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A long solenoid with n= 35 turns per centimeter and a radius of R= 12 cm carries a current of i= 35 mA. Find the magnetic field in the solenoid. The magnetci field, Bo 176.6 x Units UT If a straight conductor is positioned along the axis of the solenoid and carries a current of 53 A, what is the magnitude of the net magnetic field at the distance R/2 from the axis of the solenoid? The net magnetic field, Bret = 176.61 Units
Answer:
1) The magnetic field inside the solenoid is approximately 0.0389 Tesla.
2) The magnitude of the net magnetic field at a distance R/2 from the axis of the solenoid is approximately 0.0424 Tesla.
To find the magnetic field inside the solenoid, we can use the formula for the magnetic field inside a solenoid:
B = μ₀ * n * i
Where:
B is the magnetic field
μ₀ is the permeability of free space (4π * 10^(-7) T·m/A)
n is the number of turns per unit length
i is the current
n = 35 turns/cm
= 35 * 100 turns/m
= 3500 turns/m
i = 35 mA
= 35 * 10^(-3) A
Substituting the values into the formula:
B = (4π * 10^(-7) T·m/A) * (3500 turns/m) * (35 * 10^(-3) A)
Calculating:
B ≈ 0.0389 T
Therefore, the magnetic field inside the solenoid is approximately 0.0389 Tesla.
To find the magnitude of the net magnetic field at a distance R/2 from the axis of the solenoid due to the solenoid and the straight conductor, we can sum the magnetic fields produced by each separately.
The magnetic field at a distance R/2 from the axis of the solenoid can be found using the formula:
B_sol = μ₀ * n * i
n = 3500 turns/m
i = 35 * 10^(-3) A
Substituting the values into the formula:
B_sol = (4π * 10^(-7) T·m/A) * (3500 turns/m) * (35 * 10^(-3) A)
Calculating:
B_sol ≈ 0.0389 T
The magnetic field at a distance R/2 from a long straight conductor carrying a current can be found using Ampere's law:
B_conductor = (μ₀ * i) / (2π * R/2)
i = 53 A
R = 12 cm = 0.12 m
Substituting the values into the formula:
B_conductor = (4π * 10^(-7) T·m/A * 53 A) / (2π * 0.12 m)
Calculating:
B_conductor ≈ 0.0035 T
To find the net magnetic field, we can add the magnitudes of the magnetic fields produced by the solenoid and the conductor:
B_net = |B_sol| + |B_conductor|
Substituting the values:
B_net = |0.0389 T| + |0.0035 T|
Calculating:
B_net ≈ 0.0424 T
Therefore, the magnitude of the net magnetic field at a distance R/2 from the axis of the solenoid is approximately 0.0424 Tesla.
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A track and field athlete applies a force of 150N the length of her arm (0.5m) directly upward to a 7.26kg shot put. How high does the shot put travel above her arm?
The shot put travels approximately 1.08 meters above the athlete's arm.
To determine how high the shot put travels above the athlete's arm, we need to consider the work done by the athlete's force and the change in gravitational potential energy of the shot put.
The work done by the athlete's force is given by the formula:
Work = Force × Distance × cos(θ)
In this case, the force applied is 150 N, the distance is 0.5 m (the length of the athlete's arm), and θ is the angle between the force and the displacement, which is 0 degrees since the force is applied directly upward.
Therefore, cos(θ) is equal to 1.
Work = 150 N × 0.5 m × cos(0°) = 75 joules
The work done by the athlete's force is equal to the change in gravitational potential energy of the shot put:
Work = ΔPE
ΔPE = m × g × h
Where m is the mass of the shot put (7.26 kg), g is the acceleration due to gravity (approximately 9.8 m/s²), and h is the height above the athlete's arm.
Substituting the known values:
75 joules = 7.26 kg × 9.8 m/s² × h
Simplifying the equation:
h = 75 joules / (7.26 kg × 9.8 m/s²)
h ≈ 1.08 meters
Therefore, the shot put travels approximately 1.08 meters above the athlete's arm.
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An incompressible fluid flows steadily in the entrance region of a two-dimensional channel of height 2h = 100mm and width w = 25 mm. The flow rate is Q = 0.025m ^ 3 / s Find the uniform velocity U_{1} at the entrance. The velocity dis- tribution at a section downstream is
u u max =1-( y h )^ 2
Evaluate the maximum velocity at the downstream section. Calculate the pressure drop that would exist in the channel if viscous friction at the walls could be neglected..
U_1 = 0.2 m/s; u_max = 1 m/s; Pressure drop = 2.45 x 10^3 Pa.
Given,Width of the channel, w = 25 mmHeight of the channel, 2h = 100 mmQ = 0.025 m^3/sAt the entrance, we need to find the uniform velocity U_1. We know that,Q = U_1 x w x 2hQ = U_1 x 25 x 100/1000 = 0.025m^3/sU_1 = 0.1/25 = 0.004 m/sMaximum velocity occurs at y = 0.u_max = 1-( y/h )^2at y = 0, u_max = 1 m/s.
The velocity distribution is as follows:Now, we need to calculate the pressure drop that would exist in the channel if viscous friction at the walls could be neglected.We know that in case of ideal flow i.e. in the absence of frictional forces, Bernoulli’s equation holds good.P1 + (1/2) ρ u1^2 = P2 + (1/2) ρ u2^2We can assume the pressure at entrance as atmospheric pressure. Therefore, P1 = PatmThe velocity at the entrance is U_1 = 0.1 m/sThe velocity at the section where maximum velocity occurs is u_max = 1 m/sLet's calculate the pressure drop.ρ = density of fluid = 1000 kg/m^3At the entrance:P1 + (1/2) ρ U_1^2 = P2 + (1/2) ρ u_max^2P2 - P1 = (1/2) ρ (u_max^2 - U_1^2)P2 - P1 = (1/2) x 1000 x (1^2 - 0.004^2)Pressure drop = 2.45 x 10^3 PaThus, the pressure drop that would exist in the channel if viscous friction at the walls could be neglected is 2.45 x 10^3 Pa.
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A cooling fan is turned off when it is running at 9.2 rad/s. It turns 25 rad before it comes to a stop. What is the fan's angular acceleration in rad/s?? -1.48 -1.69 -1.73 -158 An iron object of density 7.80g/cm appears 27 N lighter in water than in air. What is the volume of the object?
a. the angular acceleration in rad/s² of the cooling fan is -16.16 rad/s². Hence, the correct option is -16.16 rad/s².
b. the volume of the iron object is 0.35 cm³. Thus, the correct option is 0.35.
a. The angular acceleration in rad/s² of the cooling fan that has been turned off when running at 9.2 rad/s and it turns 25 rad before it comes to a stop can be calculated using the formula shown below:
ωf = 0rad/s;
ωi = 9.2rad/s;
θ = 25 rad(ωf)² = (ωi)² + 2αθ
α = (ωf² - ωi²)/2θ
α = ((0)² - (9.2)²)/2(25)
α = -16.16 rad/s²
b. The volume of an iron object of density 7.80g/cm appears 27 N lighter in water than in air can be calculated using the formula shown below:
Buoyant force = mg
Apparent weight in water = Weight in air - Buoyant force
Therefore, 27 = mg - ρVg
27 = g(m - ρV)
V = (m - ρV) / ρV = (m / ρ) - 1
V = (27 / 9.8 x 7.80) - 1
V = 0.35 cm³
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Water flows through a garden hose (radius =1.5 cm ) and fills a tub of volume V=670 Liters in Δt=6.0 minutes. What is the speed of the water in the hose in meters per second?
For the volume of 670 liters and the time of 6.0 minutes, the speed of the water in the hose is approximately 0.043 meters per second.
The speed of water in the hose can be calculated by dividing the volume of water that flows through the hose by the time it takes to fill the tub.
Given that the volume is 670 liters and the time is 6.0 minutes, we can determine the speed of the water in meters per second.
To find the speed of the water in the hose, we need to convert the given volume and time into consistent units.
First, let's convert the volume from liters to cubic meters.
Since 1 liter is equal to 0.001 cubic meters, we have:
V = 670 liters = 670 * 0.001 cubic meters = 0.67 cubic meters
Next, let's convert the time from minutes to seconds.
Since 1 minute is equal to 60 seconds, we have:
Δt = 6.0 minutes = 6.0 * 60 seconds = 360 seconds
Now, we can calculate the speed of the water using the formula:
Speed = Volume / Time
Speed = 0.67 cubic meters / 360 seconds ≈ 0.00186 cubic meters per second
Since the speed is given in cubic meters per second, we can convert it to meters per second by taking the square root of the speed:
Speed = √(0.00186) ≈ 0.043 meters per second
Therefore, the speed of the water in the hose is approximately 0.043 meters per second.
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An astronaut initially stationary fires a thruster pistol that expels 48 g of gas at 785 m/s. The combined mass of the astronaut and pistol is 65 kg. How fast and in what direction is the astronaut moving after firing the pistol?
Hint: Astronaut is in space.
After firing the thruster pistol, the astronaut be moving with a velocity of approximately 578.803 m/s in the opposite direction of the expelled gas.
The magnitude and direction of the astronaut's velocity can be determined using the principle of conservation of momentum.
According to the principle of conservation of momentum, the total momentum before firing the pistol should be equal to the total momentum after firing the pistol.
The initial momentum of the astronaut and pistol system is zero since the astronaut is initially stationary.
The final momentum of the system is the sum of the momentum of the expelled gas and the momentum of the astronaut.
The momentum of the expelled gas can be calculated using the equation p = mv, where p is momentum, m is mass, and v is velocity.
Substituting the given values, we have:
p_gas = (48 g) * (785 m/s) = 37,680 g*m/s
The momentum of the astronaut can be calculated using the equation p = mv.
The combined mass of the astronaut and pistol is 65 kg, and the velocity of the astronaut is denoted by v_astronaut.
Since momentum is a vector quantity, we need to consider the direction.
The expelled gas has a positive momentum in the opposite direction of the astronaut's velocity.
Therefore, the astronaut's momentum should be negative to compensate.
To find the velocity of the astronaut, we can set up the equation for conservation of momentum:
0 = (-37,680 g*m/s) + (65 kg) * (v_astronaut)
Solving for v_astronaut gives us:
v_astronaut = (37,680 g*m/s) / (65 kg)
The mass of the expelled gas in kilograms is 48 g / 1000 g/kg = 0.048 kg. Substituting this value, we have:
v_astronaut = (37,680 g*m/s) / (65 kg + 0.048 kg)
To calculate the velocity of the astronaut after firing the pistol, we substitute the given values into the equation:
v_astronaut = (37,680 g*m/s) / (65 kg + 0.048 kg)
Converting the mass of the expelled gas from grams to kilograms, we have:
v_astronaut = (37,680 g*m/s) / (65.048 kg)
Evaluating this expression gives:
v_astronaut ≈ 578.803 m/s
Therefore, the astronaut will be moving with a velocity of approximately 578.803 m/s in the opposite direction of the expelled gas.
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A bead is constrained to move without friction on a curved wire. The curve lies in the horizontal plane, so you can ignore the effect of gravity. The horizontal plane is the XY plane, and the curve is given by y = f(x). The bead moves with a speed v on the wire. Answer the following questions: ac (a) The only force acting on the bead is the force of constraint from the wire. Why is the speed of the bead constant? (b) Express i and ï in terms of v and derivatives of f with respect to r. Use j, f, etc to denote time derivatives of f(x), and f', f", etc to denote on SL, etc. (c) Find the x component of the force of the wire on the bead, in terms of m, v, and derivatives of f with respect to x. (d) Find the y component of the force of the wire on the bead, in terms of m, v, and derivatives of f with respect to x. (e) Find the magnitude of the force of the wire on the bead, in terms of m, v, and derivatives of f with respect to z. Show that if the curve is a circle, the magnitude of the force mv2 reduces to the expected expression of R
(a)The bead is constrained to move without friction on a curved wire. (b)Thus, i = v/f' and j = -v f"/(1 + f'2)3/2. (c)The force of the wire on the bead is always perpendicular to the curve. (d)The y component of the force of the wire on the bead is Fy = mv2 f"/(1 + f'2)3/2. (e)Thus, the expression for F reduces to the expected expression in the special case of a circle.
(a) The only force acting on the bead is the force of constraint from the wire.
The bead is constrained to move without friction on a curved wire. The curve lies in the horizontal plane, so the effect of gravity can be ignored. Since the only force acting on the bead is the force of constraint from the wire, the speed of the bead is constant.
(b) Express i and j in terms of v and derivatives of f with respect to r. Use f, f', f", etc to denote derivatives of f(x) with respect to x.
The unit vector i is tangent to the curve and j is normal to the curve. Thus, i = v/f' and j = -v f"/(1 + f'2)3/2.
(c) Find the x component of the force of the wire on the bead, in terms of m, v, and derivatives of f with respect to x.
The x component of the force of the wire on the bead is zero.
The force of the wire on the bead is always perpendicular to the curve.
(d) Find the y component of the force of the wire on the bead, in terms of m, v, and derivatives of f with respect to x.
The y component of the force of the wire on the bead is Fy = mv2 f"/(1 + f'2)3/2.
(e) Find the magnitude of the force of the wire on the bead, in terms of m, v, and derivatives of f with respect to z.
Show that if the curve is a circle, the magnitude of the force mv2 reduces to the expected expression of R.
The magnitude of the force of the wire on the bead is given by F = mv2 / (1 + f'2)3/2. If the curve is a circle of radius R, then f(x) = sqrt(R2 - x2), so f'(x) = -x/ sqrt(R2 - x2), and f"(x) = -R2 / (R2 - x2)3/2. Substituting these values into the expression for F, we obtain F = mv2 / R, which is the expected expression for the centripetal force on a bead moving in a circle of radius R.
Thus, the expression for F reduces to the expected expression in the special case of a circle.
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Perpetual motion machines are theoretical devices that, once in motion do not stop, and continue on without the addition of any extra energy source (often by alternating energy between kinetic and gravitational potential).
a) Why are these not possible?
b) Some people claim that a true perpetual motion machine would be able to produce infinite energy. Why does this not make sense?
Perpetual motion machines, which operate without the need for additional energy input, are not possible due to the fundamental principles of thermodynamics. Such machines would violate the laws of thermodynamics, specifically the first and second laws.
Claims of producing infinite energy through perpetual motion machines do not make sense because they disregard the conservation of energy and overlook the limitations imposed by the laws of thermodynamics.
Perpetual motion machines violate the first law of thermodynamics, also known as the law of energy conservation, which states that energy cannot be created or destroyed, only transferred or transformed from one form to another.
In a closed system, such as a perpetual motion machine, the total amount of energy remains constant. Without an external energy source, the machine would eventually come to a halt due to energy loss through various factors like friction, air resistance, and mechanical inefficiencies.
The second law of thermodynamics, known as the law of entropy, states that in a closed system, the entropy (or disorder) tends to increase over time.
This implies that energy will always tend to disperse and spread out, resulting in a loss of useful energy for performing work. Perpetual motion machines would defy this law by maintaining a perpetual cycle of energy conversion without any losses, which is not possible.
The claim that a perpetual motion machine could produce infinite energy is flawed because it disregards the fact that energy cannot be created from nothing.
The laws of thermodynamics dictate that the total energy within a closed system is conserved. Even if a perpetual motion machine were to function indefinitely, it would not generate additional energy beyond what was initially provided.
Energy would be continuously transformed, but not created or increased, making the concept of infinite energy generation impossible within the confines of known physical laws.
In conclusion, perpetual motion machines are not possible because they violate the laws of thermodynamics. These machines cannot sustain continuous motion without an external energy source and are subject to energy losses and the inevitable increase in entropy.
Claims of infinite energy generation through perpetual motion machines are unfounded as they contradict the principles of energy conservation and the limitations imposed by the laws of thermodynamics.
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An m=0.4 kg ball is dropped straight down from the top of a building and strikes the ground after t=1.7 s. Friction is negligible. Find the speed just before the ball strikes the ground.
An m=0.3 kg ball is thrown horizontally at vi=3.2 m/s from the top of a building and falls for t=3.2 s. Friction is negligible, consider only after the throw. Find the final velocity.
You push your biology textbook, m=1.1 kg, across your desk with an initial vi=1.7 m/s until it comes to rest in t=1.3 s. Find the average resistance force.
The speed just before the ball strikes the ground is 16.66 m/s, the final velocity of the thrown ball is 35.36 m/s, and the average resistance force on the textbook is -1.43 N.
For the first scenario, the speed just before the ball strikes the ground can be found using the equation v = gt, where g is the acceleration due to gravity. Since the ball is dropped, the initial velocity is 0. By substituting the values, we find v = (9.8 m/s²)(1.7 s) = 16.66 m/s.
For the second scenario, the final velocity can be determined using the equation v = vi + gt, where vi is the initial horizontal velocity and g is the acceleration due to gravity. Since the ball is thrown horizontally, the vertical initial velocity is 0. By substituting the values, we have v = 3.2 m/s + (9.8 m/s²)(3.2 s) = 35.36 m/s.
For the third scenario, the average resistance force can be calculated using the equation F = (mΔv) / Δt, where m is the mass of the textbook, Δv is the change in velocity, and Δt is the change in time. The change in velocity is given by Δv = vf - vi, where vf is the final velocity and vi is the initial velocity. Substituting the values, we find Δv = 0 - 1.7 m/s = -1.7 m/s. Then, the average resistance force is F = (1.1 kg)(-1.7 m/s) / 1.3 s = -1.43 N.
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a) What is the thinnest film of MgF2 (n=1.38) on glass (n=1.5) that produces a strong reflection for 600 nm orange light? b) What is the thinnest film that produces a minimum reflection, like an anti-reflection coating?
Answer:
a) Strong reflection for 600 nm orange light is approximately 217.39 nm.
b) Anti-reflection coating, is approximately 434.78 nm.
a) To determine the thinnest film of MgF2 on glass that produces a strong reflection for 600 nm orange light, we can use the concept of thin film interference.
The condition for strong reflection is when the phase change upon reflection is 180 degrees.
The phase change due to reflection from the top surface of the film is given by:
Δφ = 2πnt/λ
Where Δφ is the phase change,
n is the refractive index of the film (MgF2),
t is the thickness of the film, and
λ is the wavelength of the light.
For strong reflection, the phase change should be 180 degrees. Therefore, we can set up the equation:
2πnt/λ = π
Simplifying the equation:
nt/λ = 1/2
Rearranging the equation to solve for the thickness of the film:
t = (λ/2n)
Wavelength of orange light, λ = 600 nm = 600 x 10^(-9) m
Refractive index of MgF2, n = 1.38
Substituting the values into the equation:
t = (600 x 10^(-9) m) / (2 x 1.38)
t ≈ 217.39 nm
Therefore, the thinnest film of MgF2 on glass that produces a strong reflection for 600 nm orange light is approximately 217.39 nm.
b) To determine the thinnest film that produces a minimum reflection, like an anti-reflection coating, we need to consider the condition for destructive interference. For minimum reflection, the phase change upon reflection should be 0 degrees.
Using the same equation as above:
2πnt/λ = 0
Simplifying the equation:
nt/λ = 0
Since the thickness of the film cannot be zero, we need to consider the next possible value that gives destructive interference. In this case, we can choose a thickness that results in a phase change of 360 degrees (or any multiple of 360 degrees).
nt/λ = 1
Rearranging the equation to solve for the thickness:
t = λ/n
Substituting the values:
t = (600 x 10^(-9) m) / 1.38
t ≈ 434.78 nm
Therefore, the thinnest film of MgF2 on glass that produces a minimum reflection, like an anti-reflection coating, is approximately 434.78 nm.
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. A ray of light travels in a glass and exits into the air. The critical angle of the glass-air interface is 39 ∘
. Select possible correct pairs of angles of incident and refraction. 2 The speed of red light in glass A is faster than in glass B. Which of the following is/are TRUE? A. The index of refraction of B is higher than A. B. The speed of light in A is lower than in the air. C. The frequency of the red light is the same in both glasses. 3. Which of the following statement is/are TRUE about the polarization of waves? A. Sound waves can exhibit a polarization effect. B. Polarization is an orientation of an oscillation. C. Radiowave cannot be polarized because it is invisible. 4. Which of the following optical phenomena causes the change in the wavelength of a wave? A. Reflection B. Refraction C. Diffraction 5. Unpolarised light of intensity, I o
passes through three polarisers as shown in FIGURE 2. The second and third polarizers are rotated at angles θ 1
and θ 2
relative to the vertical line. θ 2
is set to 80 ∘
. What is/are the possible values of θ 1
and I 2
? 6. Which of the following optical elements always produce a virtual image? A. Positive lens B. Diverging lens C. Convex mirror 7. FIGURE 3 shows a television receiver which consists of a dish and the signal collector on a house roof. It receives radio waves from a long-distance transmitter containing information about television programs. Which statement is/are TRUE about the receiver? A. The receiver applies the effect of wave reflection. B. The receiver acts as a lens to focus received radiowaves. C. The receiver changes the wavelength of the received radio waves. 8. Which of the following lens has a positive focal length? 9. An image has twice the magnification of its object and is located on the opposite side of the object. The possible optical element(s) which can produce the condition is/are A. positive lens. B. concave lens. C. concave mirror. 10. An object and a converging mirror are positioned with the labelled focal point, F, as shown in FIGURE 4. Which ray(s) come(s) from the object's tip? FIGURE 4 11. Farhan has a far point of 90 cm. Which of the following is TRUE about her? A. He can use a concave mirror to correct her vision. B. He could not sharply see an object beyond 90 cm from his eyes. C. He can use contact lenses with negative optical power to correct her vision.
2 A. The index of refraction of B is higher than A.B. The speed of light in A is lower than in the air.C.
The frequency of the red light is the same in both glasses. 3. B. Polarization is an orientation of an oscillation.4. B. Refraction 5. θ1 = 50°, I2 = Io/4.6. C. Convex mirror. 7. A. The receiver applies the effect of wave reflection. 8. Positive lens. 9. A. Positive lens.10. Ray 1 and Ray 3 come from the object's tip.
B. He could not sharply see an object beyond 90 cm from his eyes.Explanation:2. If the speed of light in A is faster than in B, then the index of refraction of A will be lower than in B. So, statement A is not true, statement B is true and the frequency of the red light will be the same in both glasses because the medium change does not affect the frequency of the light.3. Polarization is an orientation of an oscillation. It is a property of transverse waves, including electromagnetic waves such as light and radio waves.4. Refraction is the bending of light when it passes from one transparent medium to another transparent medium. When light travels through different mediums, the speed changes, and this changes the direction of light. This change in direction and speed is called refraction.5. The intensity of unpolarized light after passing through the first polarizer is Io/2 and after passing through the second polarizer, it becomes Io/4.
The final intensity of light depends on the angle between the two polarizers. The value of θ1 can be calculated using the formula, I2 = Io/4 cos²(θ1 - θ2).6. A convex mirror always produces a virtual image that is smaller than the object and appears closer to the mirror than the actual object.7. The signal collector on the house roof of a TV receiver works based on the reflection of radio waves. The curved dish acts as a reflector to focus the incoming radiowaves on the signal collector.8. A positive lens is a lens that converges incoming light rays and has a positive focal length. Convex lens is a positive lens.9. The magnification produced by a lens or mirror depends on the focal length of the element. Only positive lenses have positive focal lengths. So, a positive lens will produce twice the magnification of the object and will be located on the opposite side of the object.10. Ray 1 and Ray 3 come from the object's tip. Ray 1 is parallel to the principal axis of the mirror and after reflection from the mirror passes through the focal point F. Ray 3 passes through the focal point F before reflection from the mirror and becomes parallel to the principal axis of the mirror after reflection.11. Farhan has a far point of 90 cm. It means he cannot see a distant object beyond 90 cm from his eyes.
This means his eye's accommodation power is weak. To correct this condition, he can use concave lenses with negative optical power, not concave mirrors.
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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.
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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You just realized that your analog wristwatch is always 25 seconds behind the real-time. Calculate the angular speed of your Second hand, in milli-ads/s. A 26 kg skip attached to a steel rope on a crane is used to hoist bricks from the ground to the top of a construction site. The steel rope is wound onto a lifting drum with a diameter of 700 mm and rotational frequency of 56 revolutions per minute. The lifting drum is situated on the top floor which is 195 m high. How many seconds will it take to lift bricks, three quarters up the height of the building?
The angular speed of the second hand is 104.67 milli-radians/s.
The drum will take approximately 16.92 seconds to lift bricks three-quarters up the height of the building.
Analog watch is 25 seconds behind the real-time.
Rotational frequency of lifting drum is 56 revolutions per minute.
Diameter of the lifting drum is 700 mm.
The lifting drum is situated on the top floor which is 195 m high.
The mass of the skip is 26 kg.
Conversion factor: 1 minute = 60 s.
Angular speed of the second hand:We know that the time period of the watch is 60 seconds. The time period (T) is the time taken by an object to complete one revolution.
So, Angular speed (ω) = 2π / T = 2π / 60 rad/s = π / 30 rad/s
In milli-radians per second, angular speed = (π / 30) × 10³ milli-radians/s = 104.67 milli-radians/s (approx.)
The length of the steel rope = 195 m. The mass of the skip is 26 kg.
So, Total work done = mgh
where m = mass of the skip = 26 kg
g = acceleration due to gravity = 9.8 m/s²
h = height to which bricks are lifted = (3 / 4) × 195 m = 146.25 m
Total work done = 26 × 9.8 × 146.25 J
Total work done = 37,617 J
The diameter of the lifting drum = 700 mm.
So, Radius of the drum, r = 700 / 2 = 350 mm = 0.35 m
Rotational frequency (n) = 56 rev/min = 56 / 60 rev/s = 0.9333 rev/s
Circumference of drum, C = 2πr = 2 × π × 0.35 = 2.1991 m
The distance traveled by the rope in one revolution of the drum = circumference of drum = 2.1991 m
The distance traveled by the rope in one revolution of the drum = 2.1991 m
Energy required to lift the skip one time = Total work done / efficiency
where efficiency = 90% = 0.9
Work done by the rope in one revolution = energy required / efficiency
Work done by the rope in one revolution = 37,617 J / 0.9 = 41,797 J
The work done by the rope in one revolution of the drum is equal to the work done in lifting the skip one time.
Distance covered by the rope in one revolution of the drum = 2.1991 m
Work done by the rope in one revolution of the drum = 41,797 J
So, the force applied to lift the skip = Work done / Distance = 41,797 / 2.1991 = 19,000 N
The time taken to lift the skip three-quarters of the height of the building can be calculated as follows:Height to which the skip is lifted, h = 146.25 m
Let's say the skip is lifted a distance x at time t.
Since the force is constant, the distance is proportional to time.
x / t = F / m(g - a)
where g = acceleration due to gravity = 9.8 m/s²
a = acceleration of the skip = (F / m)
Distance left to lift the skip = h - x
The initial velocity of the skip = 0 m/s
The final velocity of the skip = vf
Time taken, t = (vf - vi) / a
The final velocity can be calculated using the kinematic equation:
v² - u² = 2as
where u = initial velocity = 0 m/s
v² = 2as
Therefore, v = √(2as)
The acceleration of the skip = (F / m) - g.
a = (F / m) - g
Let's substitute the known values in the equations:
x / t = F / m(g - a)
x / t = F / m(g - (F / m) + g)
x / t = F² / ma
Let's substitute the value of acceleration in the above equation:
x / t = F² / m((F / m) - g)
x / t = F² / (mg - F²)
The height to which the skip is lifted, h = 146.25 m.
The skip is lifted three-quarters of this height. Therefore,
x = 3h / 4 = 109.6875 m
Let's substitute this value in the above equation:
109.6875 / t = F² / (mg - F²)
Let's substitute the known values in the above equation:
109.6875 / t = (19,000)² / (26 × 9.8 - (19,000)²)
109.6875 / t = 361,000,000 / 3,044,000
109.6875t = 30.85
t ≈ 0.282 minutes = 16.92 s
Therefore, it will take approximately 16.92 seconds to lift bricks three-quarters up the height of the building.
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A 1.40-m-long metal bar is pulled to the right at a steady 4.8 m/s perpendicular to a uniform, 0.715-T magnetic field. The bar rides on parallel metal rails connected through R=25.8−Ω, as shown in the figure, so the apparatus makes a complete circuit. You can ignore the resistance of the bar and the rails. Calculate the magnitude of the emf induced in the circuit. 4,8 V 0.186 V 2,45 V 124 V
The magnitude of the emf induced in the circuit is 124 V.
When a metal bar is pulled at a steady rate through a magnetic field, an electromotive force (emf) is induced. This emf is caused by a change in the magnetic flux that passes through the circuit that the bar is a part of.
According to Faraday’s law, the magnitude of this induced emf is equal to the rate of change of the magnetic flux, or emf=−NΔΦΔt, where N is the number of turns in the circuit, and ΔΦΔt is the rate of change of the magnetic flux that passes through each turn of the circuit. In this case, the bar is being pulled through a uniform magnetic field of 0.715 T at a steady rate of 4.8 m/s.
The magnetic flux that passes through the circuit is then equal to BAh, where A is the area of each turn of the circuit, h is the height of each turn of the circuit, and B is the strength of the magnetic field. Since the bar is moving perpendicular to the magnetic field, the area of each turn of the circuit that the bar moves through is simply equal to the length of the bar times the height of each turn.
Therefore, A=1.40m×h. The rate of change of the magnetic flux is then equal to BAdhdt, where dhdt is the rate at which the bar is moving through the circuit.
Therefore, emf=−NABdhdt=−NABv. In this case, the bar is connected to parallel metal rails connected through R=25.8Ω, which form a complete circuit.
The induced emf then drives a current I=emfR through this circuit. Since the resistance of the bar and the rails is ignored, the induced emf is simply equal to the voltage across the resistance R, or emf=IR.
Therefore, emf=I(R)=−NABvR.
Substituting the given values, we have emf=−1×0.715×(1.40m×h)×4.8ms−1×25.8Ω=−124V.
Hence the magnitude of the emf induced in the circuit is 124 V.
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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.
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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