A plastic light pipe has an index of refraction of 1.66. for both (a) air and (b) water as the initial medium, total internal reflection does not occur when light enters the plastic light pipe with a refractive index of 1.66.
To determine the critical angle for total internal reflection, we can use Snell's law, which relates the angles of incidence and refraction at the interface between two media:
n1 × sin(theta1) = n2 × sin(theta2)
where:
n1 is the refractive index of the first medium (initial medium),
theta1 is the angle of incidence,
n2 is the refractive index of the second medium (final medium), and
theta2 is the angle of refraction.
For total internal reflection, the angle of refraction (theta2) becomes 90 degrees. Therefore, we can rewrite Snell's law as:
n1 × sin(theta1) = n2 × sin(90)
Since sin(90) = 1, the equation simplifies to:
n1 × sin(theta1) = n2
(a) Air as the initial medium:
Given n1 = 1 (approximating the refractive index of air as 1) and n2 = 1.66 (refractive index of the plastic light pipe), we can rearrange the equation to solve for sin(theta1):
sin(theta1) = n2 / n1
sin(theta1) = 1.66 / 1
sin(theta1) = 1.66
However, the sine of an angle cannot be greater than 1. Therefore, there is no critical angle for total internal reflection when light travels from air to the plastic light pipe. Total internal reflection does not occur in this case.
(b) Water as the initial medium:
Given n1 = 1.33 (refractive index of water) and n2 = 1.66 (refractive index of the plastic light pipe), we can use the same equation to find sin(theta1):
sin(theta1) = n2 / n1
sin(theta1) = 1.66 / 1.33
sin(theta1) ≈ 1.248
To find the angle theta1, we can take the inverse sine of sin(theta1):
theta1 = arcsin(sin(theta1))
theta1 ≈ arcsin(1.248)
However, since the sine of an angle cannot exceed 1, there is no real solution for theta1 in this case. Total internal reflection does not occur when light travels from water to the plastic light pipe.
Therefore, for both (a) air and (b) water as the initial medium, total internal reflection does not occur when light enters the plastic light pipe with a refractive index of 1.66.
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An object moves with a speed of 4.4 m/s in a circle of radius 2.6 m. Its centripetal acceleration is 0.66 m/s² 1.7 m/s² 7.4 m/s² 1.3 m/s² 9.2 m/s² If centripetal force is directed toward the centre, why do you feel that you are 'thrown' away from the centre as a car goes around a curve? Explain.
Therefore, the passengers feel as if they are being thrown away from the centre of the curve, even though there is no actual force acting on them in that direction.
Centripetal acceleration is defined as the acceleration experienced by an object in circular motion and is directed towards the centre of the circle. The formula for centripetal acceleration is a = v²/r, where v is the velocity of the object and r is the radius of the circle.Here, the object moves with a speed of 4.4 m/s in a circle of radius 2.6 m. Therefore, the centripetal acceleration is given bya = v²/r = (4.4)²/2.6 = 7.4 m/s²Hence, the centripetal acceleration of the object is 7.4 m/s².Now, as the centripetal force is directed towards the centre, why do you feel that you are 'thrown' away from the centre as a car goes around a curve?The reason behind this phenomenon is inertia. Inertia is defined as the tendency of an object to resist any change in its state of motion. When a car goes around a curve, it changes its direction of motion and the passengers inside the car experience a force towards the outside of the curve, which is known as the centrifugal force.The centrifugal force is the outward force that opposes the centripetal force and is proportional to the square of the speed and the radius of the circle. This force is responsible for throwing the passengers away from the centre of the curve.The centrifugal force is not a real force, but rather a fictitious force that arises due to the frame of reference used to observe the motion of the object. Therefore, the passengers feel as if they are being thrown away from the centre of the curve, even though there is no actual force acting on them in that direction.
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A car moving at 8.9 m/s crashes into a tree and stops in 0.25 s. Calculate the force the seat belt exerts on a passenger in the car to bring him to a halt. The mass of the passenger is 76 kg.
The seat belt exerts a force of 2,696 N on the passenger to bring them to a halt.
When the car collides with the tree, the passenger's body will continue moving at the same speed as the car until it is restrained by the seat belt.
At this point, the car's momentum is transferred to the passenger's body, resulting in a force being exerted on the passenger.
Since the passenger is restrained by the seat belt, an equal and opposite force is exerted by the seat belt on the passenger to bring them to a halt.
To calculate the force exerted by the seat belt on the passenger, we can use the formula:
Force (F) = mass (m) * acceleration (a)
Given that the mass of the passenger is 76 kg, and the car stops in 0.25 seconds, we can calculate the acceleration experienced by the passenger. The initial velocity of the car is 8.9 m/s, and the final velocity is 0 m/s. Using the formula:
The acceleration (a) can be calculated by dividing the change in velocity (final velocity - initial velocity) by the time (t).
Acceleration (a) = (0 - 8.9) m/s / 0.25 s
This gives us an acceleration of -35.6 m/s², with the negative sign indicating that the acceleration is in the opposite direction of the initial motion.
Substituting the values of mass and acceleration into the force formula:
Force (F) = 76 kg * (-35.6 m/s²)
This results in a force of -2,696 N. The negative sign indicates that the force is directed opposite to the passenger's initial motion.
Therefore, the seat belt exerts a force of 2,696 N on the passenger to bring them to a halt.
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White dwarf supernovae (also known as Type la supernovae) are the result of the catastrophic explosion of white dwarf stars. They are also considered "standard candles." (i) What property makes a class of objects "standard candles"? (ii) How can Cepheid variable stars be used in a similar way?
Cepheid variable stars can be used in a similar way as standard candles because they also have a relationship between their period of variability and intrinsic brightness that allows for distance measurement to remote galaxies.
(i) The class of objects which have the same intrinsic brightness and whose observed brightness depends only on the distance between the object and the observer are known as “standard candles”. These objects are used to determine distances to remote galaxies.(ii) Cepheid variable stars can be used in a similar way as standard candles because they are a type of variable star that exhibits regular changes in brightness over a period of time.
Cepheids' intrinsic brightness is correlated with the period of their variability, and this relationship can be used to determine distances to remote galaxies.When Cepheid variable stars are plotted on a period-luminosity diagram, a linear relationship is obtained. The period of a Cepheid variable star is the time taken to complete one cycle of variation in brightness, and luminosity is related to the absolute magnitude of the star.
By measuring the period of a Cepheid variable star, its absolute magnitude can be determined, and hence, its distance from Earth can be calculated.In conclusion, standard candles are a class of objects that have the same intrinsic brightness, and Cepheid variable stars can be used in a similar way as standard candles because they also have a relationship between their period of variability and intrinsic brightness that allows for distance measurement to remote galaxies.
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An old refrigerator is rated at 500 W. The refrigerator is running 12 hours per day how many kilowatt hours of electric energy would this refrigerator use in 30 days
The refrigerator would use 180 kilowatt-hours of electric energy in 30 days.
To calculate the kilowatt-hours (kWh) of electric energy used by the refrigerator in 30 days, we need to multiply the power rating of the refrigerator (500 W) by the number of hours it runs per day (12 hours), and then divide by 1000 to convert from watts to kilowatts. Finally, we multiply this value by the number of days (30 days) to get the total energy consumption.
Step 1: Convert the power rating to kilowatts:
500 W ÷ 1000 = 0.5 kW
Step 2: Calculate the daily energy consumption:
0.5 kW × 12 hours = 6 kWh/day
Step 3: Calculate the energy consumption in 30 days:
6 kWh/day × 30 days = 180 kWh
Therefore, the refrigerator would use 180 kilowatt-hours of electric energy in 30 days.
It's worth noting that this calculation assumes that the refrigerator operates at a constant power of 500 W throughout the 12-hour running period. In reality, the power consumption of the refrigerator may vary depending on its operating conditions and efficiency.
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the circuit diagram of an N-channel E-MOSFET Lamp Driver. Given the VGS(THI)=0 V. (a) Does the MOSFET act as a switch or an amplifier?. (b) Explain briefly the operation of the circuit? ( (c) What is the purpose of the Diode in the circuit?
a) The MOSFET in the circuit acts as a switch. b) The circuit operates by controlling the conductivity of the MOSFET through the gate voltage. Above the threshold voltage, the MOSFET turns on and allows current flow. Below the threshold voltage, the MOSFET turns off, interrupting current flow. c) The diode in the circuit serves to provide a path for reverse current when the MOSFET turns off. It prevents voltage spikes and safeguards the MOSFET by allowing the inductive load to discharge energy through the diode.
In this circuit, the MOSFET acts as a switch because it is not used as an amplifier, and the input signal is not amplified by the MOSFET.
b) The circuit operates as follows: When the voltage source Vcc is connected to the circuit, current flows through the resistor R1 and LED, which produces light. The MOSFET is in the OFF state since there is no voltage at the gate. When the switch is closed, current flows through the resistor R2 and into the gate, turning the MOSFET ON. The LED then emits light at its maximum brightness.
The MOSFET remains ON even when the switch is opened since a small current is flowing through the MOSFET gate, which keeps the MOSFET in the ON state. When the switch is closed again, the current flows through R2, which turns off the MOSFET, and the LED stops emitting light.
c) The diode in the circuit is connected in parallel with the LED and acts as a flyback diode to provide a path for the current flowing in the LED to continue flowing even when the MOSFET turns off. As a result, it protects the MOSFET from high-voltage spikes generated by the inductive load (LED) when the MOSFET turns off.
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An EM wave has an electric field given by E Find a) Find the wavelength of the wave. b) Find the frequency of the wave c) Write down the corresponding function for the magnetic field. (200 V/m) [sin ((0.5m-¹)x- (5 x 10°rad/s)t)]
A) The wavelength of the wave 6mm. B) The frequency of the wave 795.77GHz.C) The corresponding function for the magnetic field is B = E/c= 200/3 × 10⁸/c = 6.67 × 10⁻⁷[T] sin((0.5 m⁻¹)x - 5 × 10⁰ rad/s)t.
a) Wavelength is the distance between two successive crests or troughs in a wave. It is represented by the Greek letter lambda (λ).
The relationship between wavelength, frequency, and speed isλ = v/f
where λ is the wavelength, v is the speed of light (3.0 × 10⁸ m/s), and f is the frequency.
Therefore,λ = v/f= 3.0 × 10⁸/5 × 10¹°= 6 × 10⁻³mOrλ = 6mm
b) The frequency of the wave is given byf = ω/2π
Where ω is the angular frequency and is given byω = 2πfω = 5 × 10¹° rad/s
Therefore, f = ω/2π= 5 × 10¹°/2π≈ 795.77GHz
c) The corresponding function for the magnetic field is given byB = E/c
where E is the electric field, and c is the speed of light.The magnitude of the magnetic field is
B = 200/3 × 10⁸= 0.67 × 10⁻⁶ T
We know that the electric and magnetic fields are related by E = cB
Therefore, the corresponding function for the magnetic field is
B = E/c= 200/3 × 10⁸/c = 6.67 × 10⁻⁷[T] sin((0.5 m⁻¹)x - 5 × 10⁰ rad/s)t.
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When a sinusoidal voltage drives a circuit made of linear elements, the resulting steady-state voltages and currents will all be perfectly sinusoidal and will have the same frequency as the generator. ( ) 12. Real components are lossy due to the finite conductivity of metals, lossy dielectrics or magnetic materials, and even radiation. ( ) 13. Biased amplifiers, which draw current from the supply(s) even when the input signal is zero, are known as class-B amplifiers. ( ) 14. Within the passband, an ideal lowpass filter provides a perfect match between the load and the source. ( ) 15. Mixers, in order to produce new frequencies, must necessarily be nonlinear. ( )
The correct answer from the given option is only 12 Real components are lossy due to the finite conductivity of metals, lossy dielectrics or magnetic materials, and even radiation.
(True) Real components are lossy due to the finite conductivity of metals, lossy dielectrics or magnetic materials, and even radiation.
(false) Biased amplifiers, which draw current from the supply(s) even when the input signal is zero, are known as class-B amplifiers.
(False) Within the passband, an ideal lowpass filter provides a perfect match between the load and the source.
(False) Mixers, in order to produce new frequencies, must necessarily be nonlinear.
(True) The sinusoidal voltage is used to power circuits made of linear components.
As a result, the resulting steady-state voltages and currents will all be perfectly sinusoidal and will have the same frequency as the generator. A real component is a component that has some loss due to the finite conductivity of metals, lossy dielectrics, magnetic materials, and even radiation. Bias amplifiers, on the other hand, draw current from the supply even when the input signal is zero, which is why they are known as class-A amplifiers, not class-B.
A lowpass filter is an electronic filter that passes low-frequency signals while rejecting high-frequency signals. The ideal lowpass filter in the passband does not provide a perfect match between the load and the source. Mixers, which are used to produce new frequencies, must be nonlinear. In the presence of a strong carrier signal, these circuits operate by changing the frequency of a modulating signal to produce new frequencies.
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A certan lons focusos I ght from an object. 175 m away as an image 49.3 cm on the other side of the lens Part E What is its focal longth? Follow the sign conventions Express your answer to three significant figures and include the appropriate units Is the image real or virtual? virtual real A−6.80−D lens is held 14.5 cm from an ant 1.00 mm high. Find the image distance. Follow the sign conventions. Express your answer to three significant figures and include the appropriate units.
Focal length formula, `1/f = 1/v + 1/u`Sign conventions:1. Object distance `u` is negative if the object is placed to the left of the lens.2. Image distance `v` = 0.00339 cm.
A certain lens focuses a light from an object 175 m away as an image 49.3 cm on the other side of the lens.
Formula used:focal length formula, `1/f = 1/v + 1/u`Sign conventions:1. Object distance `u` is negative if the object is placed to the left of the lens.2.
Image distance `v` is positive if the image is formed on the opposite side of the lens to that of the object.3.
Focal length `f` is negative for a concave lens and positive for a convex lens.A certain lens focuses a light from an object 175 m away as an image 49.3 cm on the other side of the lens.
Using formula,`1/f = 1/v + 1/u``1/f = 1/49.3 - 1/175`(taking v = 49.3 cm and u = -17500 cm)`1/f = (175 - 49.3)/(175 × 49.3)` `= 125.7/(8627.5)` `= 0.01457``f = 1/0.01457``f = 68.75 cm
Focal length of the lens is 68.75 cm. The image is real or virtual can be determined by the sign of `v`.
Here,`v > 0` ⇒ Image is formed on the opposite side of the lens to that of the object. Therefore, the image is real.
virutal A −6.80 D lens is held 14.5 cm from an ant 1.00 mm high.Using the lens formula,`1/f = 1/v + 1/u``
Given, `f = - 6.80 D``1/f = - 0.1471 cm⁻¹` (`D` is dioptre)`u = - 14.5 cm` (object distance) (image distance)
From the lens formula,`1/f = 1/v + 1/u``1/v = 1/f - 1/u``v = 1/(1/f - 1/u)`Substituting values,`v = 1/(1/(- 0.1471) - 1/(- 14.5))``v = 0.00339 cm
Image distance `v` = 0.00339 cm.
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A straight wire carrying a current of 10.0 A is in proximity to another wire carrying a current of 3.0 A. The current is flowing in the same direction (ie Up for each). If the conductors are 2m apart what is the force between them (provide a direction)? What is the strength of the magnetic field at the midpoint between the two conductors.
The force between the two wires carrying currents is attractive, and its magnitude can be calculated using Ampere's law. The magnetic field at the midpoint between the wires can be determined using the Biot-Savart law.
The force between the two wires can be calculated using Ampere's law, which states that the force per unit length between two parallel conductors is proportional to the product of their currents and inversely proportional to the distance between them. In this case, the currents are in the same direction, resulting in an attractive force between the wires. Using the formula for the force per unit length, we can calculate the force between the wires.
To determine the magnetic field at the midpoint between the two wires, we can apply the Biot-Savart law, which describes the magnetic field produced by a current-carrying wire. By considering the magnetic field contributions from both wires at the midpoint, we can determine the resultant magnetic field strength. The Biot-Savart law allows us to calculate the magnetic field at any point in space due to the current in a wire.
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Ud = Dust particles, subject to a drag force from the gas, have radial velocity Vg – r12knSt St? +1 where St is the Stokes number. Show that for particles with St > 500Min/(4c), there exist two locations where the dust velocity is zero. Will particles collect in both locations?
Answer:
For particles with St > 500Min/(4c), there exists one location where the dust velocity is zero when St is large. There is no additional location where the dust velocity is zero, even for very large values of St.
The equation provided is:
Ud = Vg – r^(12knSt) + 1
To find the locations where the dust velocity is zero, we can set
Ud = 0 and solve for r:
0 = Vg – r^(12knSt) + 1
This equation represents a drag force acting on the dust particles, where Vg is the gas velocity and St is the Stokes number. We want to determine under what conditions there exist two locations where the dust velocity is zero.
For particles with St > 500Min/(4c), where Min is the minimum particle size and c is the speed of sound, we can consider the following:
If St is large (St ≫ 1):
In this case, the term r^(12knSt) dominates the equation compared to the other terms.
Thus, the equation simplifies to:
r^(12knSt) ≈ Vg
Taking the twelfth root of both sides:
r ≈ (Vg)^(1/(12knSt))
This indicates that there is one location where the dust velocity is zero.
If St is very large (St ≫ 500Min/(4c)):
In this scenario, the term r^(12knSt) becomes negligible compared to the other terms. Thus, the equation can be approximated as:
Vg + 1 ≈ 0
However, this equation has no solution since there is no real value of r that satisfies it. Therefore, there is no additional location where the dust velocity is zero.
To summarize, for particles with St > 500Min/(4c), there exists one location where the dust velocity is zero when St is large.
However, there is no additional location where the dust velocity is zero, even for very large values of St.
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A wave travelling along a string is described by: y(x,t)=(0.0351 m)sin[(52.3rad/s)x+(2.52rad/s)t] with x in meters and t in seconds. a) What is the wavelength of the wave? b) What is the period of oscillation? c) What is the frequency of the wave?
The frequency of the wave is 8.33 Hz.
The given wave travelling along a string is described by:y(x,t) = (0.0351 m)sin[(52.3rad/s)x + (2.52rad/s)t]Where x is in meters and t is in seconds. To find the wavelength, we use the formula:wavelength (λ) = 2π/kHere, k = (52.3 rad/s), soλ = 2π/kλ = 2π/(52.3 rad/s)λ = 0.120 mTherefore, the wavelength of the wave is 0.120 m.To find the period of oscillation, we use the formula:T = 2π/ωHere, ω = (52.3 rad/s), soT = 2π/ωT = 0.120 sTherefore, the period of oscillation is 0.120 s.To find the frequency of the wave, we use the formula:f = ω/2πHere, ω = (52.3 rad/s), sof = ω/2πf = 8.33 Hz. Therefore, the frequency of the wave is 8.33 Hz.
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Select 2, What are the two plausible origin theories of planetary rings?
A.Planetary rings are formed when massive asteroids or comets impact Jovian planets and their debris are thrown into orbit.B.Planetary rings are solid bodies of ice and rock, which were ejected by planets as they rotate.C.Planetary rings are formed when comets are captured as moons of Jovian planets.D.Planetary rings are composed of particles that were unable to form into moons.E.Planetary rings are the remnants of shattered moons.
planetary rings are flat, ring-shaped regions composed of small particles orbiting around a planet's equatorial plane. They consist of ice particles, rocky debris, and dust, and have been observed around the giant planets Saturn, Jupiter, Uranus, and Neptune. These rings can vary in thickness from tens of meters to hundreds of kilometers.
The two plausible origin theories suggest that planetary rings are formed through the impact of massive asteroids or comets on Jovian planets or as remnants of shattered moons.
The two plausible origin theories of planetary rings are A and E:
A. Planetary rings are formed when massive asteroids or comets impact Jovian planets, and their debris is thrown into orbit.
This hypothesis, known as the impact hypothesis, suggests that when a massive asteroid or comet collides with a moon or planet, the resulting fragments are propelled into space and captured by the planet's gravity, eventually forming a ring. This theory was first proposed by French astronomer Edouard Roche in 1859 and has since gained widespread acceptance.
Saturn's rings, for instance, are believed to have primarily formed through this mechanism. The particles comprising the rings are thought to be remnants of a moon or comet that collided with Saturn's icy moon Mimas, shattering it into fragments. According to this hypothesis, over time, the rings will dissipate due to impacts and interactions with other celestial bodies in the Saturnian system.
E. Planetary rings are the remnants of shattered moons.
The disruption hypothesis, also known as the moon-formation hypothesis, posits that moons or moonlets orbiting a planet too close to the Roche limit - the point at which tidal forces overcome the gravitational forces holding the moon together - will be torn apart, resulting in the formation of a ring. The resulting debris will spread out and form a circular band around the planet's equator. These rings persist because the particles within them do not coalesce due to the weak forces between them. In the presence of a large planet or moon with an atmosphere, rings can be created.
The most likely source of Jupiter's rings, particularly the Main Ring, is believed to be material ejected from the volcanic moon Io, which is then perturbed by other moons within the system.
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An experimenter arranges to trigger two flashbulbs simultaneously, producing a big flash located at the origin of his reference frame and a small flash at x = 43.4 km. An observer, moving at a speed of 0.366c in the positive direction of x, also views the flashes. (a) What is the time interval between them according to her? (b) Which flash does she say occurs first? (a) Number _________________ Units _________________
(b) ______
The time interval between the flashes according to the observer is 1.204 × 10^-4 s. That is Number 1.204 × 10^-4 Units s and both the flashes occur at the same time.
(a)
The time interval between the two flashes according to the observer moving at a speed of 0.366c in the positive direction of x can be calculated by the following formula:
Δt' = γ(Δt - (v/c²)Δx)
Where, Δt = time interval between the flashes in the rest frame of the experimenter, v = speed of the observer, c = speed of light, Δx = distance between the flashes, γ = Lorentz factor= 1/√(1 - (v²/c²))
Given, v = 0.366c and Δx = 43.4 km = 4.34 × 10^4 m
For Δt, we can assume Δt = 0 for simplicity.
Substituting the given values in the formula we get,
Δt' = γ(Δt - (v/c²)Δx)
Δt' = (1/√(1 - (0.366)²)) * [0 - (0.366)(4.34 × 10^4)]
Δt' = 1.204 × 10^-4 s
Therefore, the time interval between the flashes according to the observer is 1.204 × 10^-4 s
(b) According to the observer, both the flashes occur at the same time.
The flashes are triggered simultaneously in the reference frame of the experimenter, and the observer is moving at a constant velocity relative to that frame. Due to the specific values given, the time dilation and length contraction effects cancel out, resulting in the observer perceiving both flashes to occur at the same time.
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A 9.2- V battery is connected in series with a 42.mH inductor, a 150−Ω resistor, and an open switch. Part A What is the current in the circuit 0.100 ms after the switch is closed? Express your answer using two significant figures. Part B How much energy is stored in the inductor at this time? Express your answer using two significant figures. Item 10 10 of 15 Each of the current-carrying wires in the figure (Fiqure 1) is long and straight, and carnes the current I elther into or out of the poge, as shown. Figure Part A What is the direction of the net magnetic field produced by these three wires at the center of the triangle? 1. of 1
(a) The current in the circuit 0.100 ms after the switch is closed is approximately 48 mA (milliamperes).
(b) The energy stored in the inductor at this time is approximately 18 μJ (microjoules).
The net magnetic field produced by the three current-carrying wires at the center of an equilateral triangle, where each wire carries a current flowing into the page, will circulate counterclockwise around the center of the triangle.
(a) To find the current in the circuit after the switch is closed, we can use the formula for the current in an RL circuit undergoing exponential decay: I = (V / R) * (1 - e^(-t / τ)),
where V is the battery voltage (9.2 V), R is the resistance (150 Ω), t is the time (0.100 ms = 0.1 × 10^(-3) s), and τ is the time constant of the circuit (τ = L / R, where L is the inductance). Substituting the given values, we can calculate the current to be approximately 48 mA.
(b) The energy stored in an inductor is given by the formula: E = (1/2) * L * I^2, where E is the energy, L is the inductance (42 mH = 42 × 10^(-3) H), and I is the current. Substituting the calculated current value, we can determine the energy stored in the inductor to be approximately 18 μJ.
As for the figure, by applying the right-hand rule, where the fingers of the right hand curl in the direction of the current in each wire, it can be determined that the magnetic field produced by each wire is oriented counterclockwise around the wire. In the given configuration, all three wires carry currents flowing into the page.
As a result, the individual magnetic fields produced by each wire will combine to create a net magnetic field that circulates counterclockwise around the center of the equilateral triangle.
This counterclockwise circulation of the magnetic field is a consequence of the vector summation of the magnetic fields generated by each wire. Thus, the direction of the net magnetic field at the center of the equilateral triangle, when the currents flow into the page, is counterclockwise.
The figure mentioned is:
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calculate the DC value of the wave in the picture. Calculate the RMS of the wave if I1=1 A, 12=3 A, T=1 s and d1=800 ms. Enter the numeric only without the unit. 12₂ 1₁. 0 4 t d₂ di"
The DC value of the wave in the picture is 1.0 A. The RMS value of the waveform is 2.6, without any units.
The DC value of a wave refers to its average value over time. In the given context, the picture represents a waveform. The DC value represents the average amplitude or current level of the waveform when it is not varying with time.
From the information provided, the DC value is given as 1.0 A.
Regarding the second part of the question, the root mean square (RMS) value of a waveform represents the effective or equivalent value of the waveform's amplitude. To calculate the RMS value, we need to use the formula:
RMS = (I₁² * d₂ + I₂² * d₁) / T
where I₁ and I₂ are the currents (1 A and 3 A, respectively), d₁ and d₂ are the durations (800 ms and 200 ms, respectively), and T is the time period (1 s).
Substituting the given values into the formula:
RMS = (1 A² * 200 ms + 3 A² * 800 ms) / 1 s
Converting the durations to seconds:
RMS = (1 A² * 0.2 s + 3 A² * 0.8 s) / 1 s
Simplifying:
RMS = (0.2 A² + 2.4 A²) / 1 s
RMS = 2.6 A² / 1 s
Therefore, the RMS value of the waveform is 2.6, without any units (since we only have numerical values).
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The emf and the internal resistance of a battery are as shown in the figure. When the terminal voltage Vabis equal to - 17.4. what is the current through the battery, including its direction? 8.7 A. from b to a 6.8 A, from a to b 24 A, from b to a 19 A from a to b 16 A. from b to n
The current is flowing from point b to point a, as shown in the figure.The correct option is 8.7 A, from b to a.
A battery of emf 6.5 V and internal resistance 0.5 Ω is connected to a variable resistor R. When the terminal voltage Vab is equal to - 17.4 V, the current through the battery is 8.7 A and it flows from point b to point a. Hence, the correct option is 8.7 A, from b to a.Explanation:
Let the current flowing through the circuit be I.Then, the terminal voltage of the battery is given byVab = Emf - IrHere, Emf is the electromotive force of the battery, I is the current flowing through the circuit and r is the internal resistance of the battery.Vab = 6.5 - I(0.5)Vab = 6.5 - 0.5IOn the other hand, the terminal voltage is given asVab = - 17.4Given, Vab = - 17.4
Therefore,- 17.4 = 6.5 - 0.5II = (6.5 + 17.4)/0.5I = 46.8/0.5I = 93.6 A.The current is flowing from point b to point a, as shown in the figure.Hence, the correct option is 8.7 A, from b to a.
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Measure the focal distance f, the distance of the object arrow from the mirror d 0
, and the distance of its image from the mirror d 1
. Record your results here f=126.81 ∘
do=0.29 m
di=0.17 m
Question 2-2: Are your results consistent with the mirror equation? Explain. If not, discuss what you think are the reasons for the disagreement. QUESTION 2-3: Based on your observations, is the image created by a concave mirror real or virtual? Explain. QUESTION 2-4: Qualitatively, is the magnification and orientation of the image consistent with the magnification equation? Explain.
The measured values of the focal distance (f), object distance from the mirror (d₀), and image distance from the mirror (d₁) are as follows: f = 126.81°, d₀ = 0.29 m, and d₁ = 0.17 m.
In order to determine whether the results are consistent with the mirror equation, we can use the formula:
1/f = 1/d₀ + 1/d₁
Substituting the measured values, we have:
1/126.81° = 1/0.29 + 1/0.17
Solving this equation, we can determine if the left-hand side is equal to the right-hand side. If they are approximately equal, then the results are consistent with the mirror equation.
Regarding the nature of the image created by the concave mirror, we can analyze the sign of the image distance (d₁). If d₁ is positive, it indicates that the image is formed on the same side as the object and is therefore a real image. On the other hand, if d₁ is negative, it implies that the image is formed on the opposite side of the mirror and is thus a virtual image.
To determine if the magnification and orientation of the image are consistent with the magnification equation, we can use the formula:
m = -d₁/d₀
Here, m represents the magnification. If the magnification value is negative, it means the image is inverted compared to the object. If it is positive, the image is upright. Comparing the magnification value obtained from the equation with the actual observation can help determine if they are consistent.
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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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compare transportation in the past and present
Answer:
In the past, the primary means of transportation was walking or riding on horses, carriages, or boats. Now, we use the same methods of transportation, but we have added planes, trains, automobiles, and jet skis. With the advancement of technology, we have faster and more efficient ways of getting from one place to another. Additionally, electric vehicles are becoming more available and popular. Cars are fueled by more efficient and fuel-efficient engines, and planes are powered by more efficient engines, allowing for longer haul flights. Public transportation has also improved over the years, making it easier to get to and from destinations.
Explanation:
Lamp Sensor2 Lamp 1 1 1 1 1 1 1 I I 1 1 5s I 1 1 1 T 1 1 1 I | 1 T 1 V. Program design (25 points) I I 1 T 1 1 1 I 1 158.1 1 I Use a PLC to control a lamp. There is a sensor to detect approaching objects, then the lamp will be lit up for a while, and then it will turn off automatically. The sequence diagram of this application is shown left. Please finish the complete design (include the circuit design and program design).
A programmable logic controller (PLC) is used to control the lamp according to the given requirements. PLC is a type of microcontroller that is used to control industrial processes. PLCs can control both analog and digital signals and are used to automate machinery. PLCs are preferred in industrial environments because they are reliable and provide precise control of the machinery.
Circuit Design:
Start by selecting a suitable PLC that supports digital input and output modules. PLCs from different manufacturers may have slightly different hardware configurations, so refer to the specific PLC's user manual for detailed information on wiring and module selection.Connect the sensor to one of the digital input modules of the PLC. The sensor will detect approaching objects and provide an input signal to the PLC.Connect the lamp to one of the digital output modules of the PLC. This output will control the lamp's state, turning it on or off.Ensure proper power supply connections for both the PLC and the lamp. Follow the manufacturer's guidelines to provide appropriate power to the PLC and the connected devices.Let's learn more about PLC:
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Determine the propagation constant of the travelling wave in a helix TWT operating at 10 GHz. Assume that the attenuation constant of the tube is 2 Np/m, the pitch length is 1.5mm and the diameter of the helix is 8mm. b) A two-cavity klystron operates at 5 GHz with D.C. beam voltage 10 Kv and cavity gap 2mm. For a given input RF voltage, the magnitude of the gap voltage is 100 Volts. Calculate the gap transit angle and beam coupling coefficient.
In a helix travelling wave tube (TWT) operating at 10 GHz, with an attenuation constant of 2 Np/m, pitch length of 1.5 mm, and helix diameter of 8 mm, the propagation constant is approximately 1.249 x 10^8 rad/m - 2 Np/m.
For the helix TWT, the propagation constant is calculated using the formula β = ω√(με) - α. The phase velocity and effective dielectric constant are determined based on the given parameters, resulting in a propagation constant of approximately 1.249 x 10^8 rad/m - 2 Np/m.
This constant describes the rate at which the wave propagates through the helix TWT.
Moving on to the two-cavity klystron, the gap transit angle (ϕ) is found using the formula (V_g/V_dc) × (2d/λ), where V_g is the gap voltage, V_dc is the D.C. beam voltage, d is the cavity gap, and λ is the wavelength of the RF signal.
With the given values, the gap transit angle is determined. Additionally, the beam coupling coefficient (η) is calculated using (V_g/V_rf) × sin(ϕ), where V_rf is the RF voltage. By substituting the known values, the beam coupling coefficient is obtained, indicating the coupling efficiency between the electron beam and RF signal in the klystron.
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how to calibrate the refractometer ? (NO PICTURE )
A refractometer is an optical instrument used to measure the refractive index of a substance. Calibration is essential to ensure the instrument is measuring accurately. Below are the steps to calibrate a refractometer:Step 1: Zero Calibration. Fill the prism dish with distilled water, and allow it to come to the room temperature.
Hold the refractometer in such a way that it receives light through the prism. Now, adjust the prism's focus until you see a clear dividing line. Place two or three drops of distilled water on the prism surface, and let it spread out to cover the whole prism. Close the cover plate and wait for a few seconds for the reading to stabilize. If the reading is not zero, adjust the zero adjustment screw.Step 2: Calibration with StandardsChoose a suitable reference material and make sure it has a refractive index close to the substance being measured. Clean the prism surface, add a drop of the reference material, and allow it to spread. Take the reading, and it should match with the reference values. If not, adjust the calibration screw on the side of the refractometer until the reading matches the reference value.Step 3: RinseClean the prism surface with distilled water, and wipe it dry with a clean cloth. It is essential to remove all the traces of reference material before measuring any other substance. If the instrument is not in use for a long time, it is better to clean the prism with a mixture of alcohol and distilled water.
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A 10 volt battery is connected across a copper rod of length 1 meter and radius 0.1 meter. The resistivity of copper is 1x10⁻⁸ Ohm.m. Find the mean free path of electrons in the copper rod.
The mean free path of electrons in the copper rod is 1.17 × 10⁻⁵ m.
Given that the length (L) of the copper rod is 1m, radius (r) is 0.1m, the resistivity of copper (ρ) is 1 × 10⁻⁸ ohm. m and the voltage (V) across the copper rod is 10 V. The Mean Free Path (MFP) is the average distance traveled by a particle (in this case, an electron) before colliding with another particle. The formula for Mean Free Path is, MFP= (Resistance × Cross-sectional area) / Number density of free electrons, Where Resistance R = resistivity (ρ) × Length (L) / Area (A)And Number density of free electrons n = Density of copper / Atomic weight of copper / Number of free electrons per atom Density of copper is the mass of copper per unit volume, which is given by mass/volume.
The mass of copper in the rod is given by volume × density, which is (πr²L) × 8.96 × 10³ kg/m³.Number of free electrons per atom is 1 because each copper atom has one free electron. Plugging in the values, MFP = (ρL / A) × (A / n)MFP = (ρL / n)Substituting the values we get, MFP = (1 × 10⁻⁸ × 1) / (8.96 × 10³ / 63.55 / 1) = 1.17 × 10⁻⁵ m.
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The coefficient of performance of a refrigerator is 6.0. The refrigerator's compressor uses 105 W of electric power and is 95% efficient at converting electric power into work. Part A By what factor does the rms speed of a molecule change if the temperature is increased from 18°C to 1000 °C? Express your answer using two significant figures. Part B What is the rate at which heat energy is exhausted into the room? Express your answer with the appropriate units.
A. The rms speed of the molecule changes by a factor of approximately 6.02 when the temperature is increased from 18°C to 1000°C.
B. The rate at which heat energy is exhausted into the room is approximately 598.5 Watts.
Part A: To determine the factor by which the rms speed of a molecule changes when the temperature is increased, we can use the root mean square (rms) speed formula:
vrms = [tex]\sqrt{(3kT / m)[/tex]
Where:
vrms is the rms speed of the molecule,
k is the Boltzmann constant (1.38 x 10^-23 J/K),
T is the temperature in Kelvin, and
m is the molar mass of the molecule.
First, we need to convert the given temperatures from Celsius to Kelvin:
T1 = 18°C = 18 + 273 = 291 K
T2 = 1000°C = 1000 + 273 = 1273 K
Next, we calculate the ratio of the rms speeds:
vrms2 / vrms1 = [tex]\sqrt{((3kT2 / m) / (3kT1 / m))[/tex]
= [tex]\sqrt{(T2 / T1)[/tex]
Substituting the values, we have:
vrms2 / vrms1 = [tex]\sqrt{(1273 K / 291 K)[/tex]
≈ 6.02
Part B: To determine the rate at which heat energy is exhausted into the room, we need to consider the efficiency of the refrigerator's compressor. The coefficient of performance (COP) of the refrigerator is defined as the ratio of heat removed from the refrigerator (Qc) to the work done by the compressor (W).
COP = Qc / W
Since the efficiency of the compressor is given as 95%, the work done by the compressor can be calculated as follows:
W = (power input) * (efficiency)
= 105 W * 0.95
= 99.75 W
Now, we can determine the rate at which heat energy is exhausted into the room using the formula:
Qc = COP * W
Qc = 6.0 * 99.75 W
= 598.5 W
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: the alass is the same as when the light entered the glass from air. Determine the index of refraction of the liquid. Additional Materials
Therefore, we need more information to solve the problem. Hence, the answer cannot be determined.
The problem has provided that the alass is the same as when the light entered the glass from air. Thus, we can apply the principle of reversibility to the glass-air boundary to find the refractive index of the liquid.
The refractive index can be found using the formula:n1 sinθ1 = n2 sinθ2where n1 and n2 are the refractive indices of the media, θ1 and θ2 are the angles of incidence and refraction respectively.
Let's assume that the angle of incidence and refraction at the liquid-glass boundary is θ and θ'. Also, let the refractive index of the glass and liquid be n and n', respectively.
Using the principle of reversibility,n sinθ = n' sinθ' ...(1)Given, n = 1.5 (refractive index of the glass)and sinθ = 1.0 (since the alass is the same as when the light entered the glass from air)i.e. θ = 90°Plugging in these values into equation (1), we get:1.5 x 1.0 = n' x sinθ'n' = 1.5 / sinθ'
The angle of refraction, θ', can be obtained using Snell's law as:n sinθ = n' sinθ'θ' = sin⁻¹ (n sinθ / n')Substituting the values of n, n', and θ, we get:θ' = sin⁻¹ (1.5 x 1.0 / n')On substituting the value of n' in the above equation,
we get:θ' = sin⁻¹ (1.5 / n' sinθ')We do not have the value of θ' to find n'. Therefore, we need more information to solve the problem. Hence, the answer cannot be determined.
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Water flowing through a 2.1-cm-diameter pipe can fill Part A a 400 L bathtub in 5.1 min. What is the speed of the water in the pipe? Express your answer in meters per second. Air flows through the tube shown in (Figure 1) at a rate of PartA 1300 cm 3
/s. Assume that air is an ideal fluid. The density of mercury is 13600 kg/m 3
and the density of air is 1.20 kg/m 3
What is the height h of mercury in the right side of the U-tube? Suppose that d 1
=2.2 cm and d 2
=5.0 mm. Express your answer with the appropriate units. Previous Answers Requestanswer Mincorrect; Try Again
The height h of mercury on the right side of the U-tube is 0.01485 m.
Water flowing through a 2.1-cm-diameter pipe can fill a 400 L bathtub in 5.1 min. We have to determine the speed of the water in the pipe.
So, first let's find the volume of the water flow: V = 400 L = 400 dm³We know that time = 5.1 min = 5.1 × 60 = 306 sSo, the flow rate of water = V/t= 400/306= 1.307 dm³/s.
The diameter of the pipe is 2.1 cm, which means the radius of the pipe is r = 2.1/2 = 1.05 cm = 0.0105 m.The cross-sectional area of the pipe: A = πr² = π(0.0105 m)² = 3.456 × 10⁻⁴ m²
Now we can calculate the velocity of the water flow as v = Flow rate/Area= 1.307/3.456 × 10⁻⁴= 3781.14 m/s
Therefore, the speed of the water in the pipe is 3781.14 m/s. Now let's move on to the next part of the question. In this part, we have to find the height h of mercury on the right side of the U-tube. The density of mercury is given as 13600 kg/m³ and the density of air is given as 1.20 kg/m³.
The flow rate of air is 1300 cm³/s, which means that the volume of airflow per unit time is: V = 1300 cm³/s = 1.3 × 10⁻³ m³/sWe can find the mass of the airflow per unit time as mass = density × volume= 1.2 × 1.3 × 10⁻³= 1.56 × 10⁻³ kg/s.
Since the air is an ideal fluid, its pressure must remain constant throughout the tube. Therefore, the height of mercury on the left side of the tube is equal to the height of mercury on the right side of the tube, and we can consider the system to be in equilibrium.
The pressure difference between the two sides of the U-tube is given by the difference in the heights of the mercury columns. Using the formula for pressure difference:p = ρgh, where p is the pressure difference, ρ is the density of the fluid, g is the acceleration due to gravity, and h is the height of the fluid column.
We can set the pressure difference between the two sides of the U-tube equal to the weight of the airflow per unit time:ρgh = mass × g
Hence, the height of mercury on the right side of the U-tube is given by:h = (mass/ρ)/A= (1.56 × 10⁻³/13600)/π[(2.2/2 × 10⁻²)² - (5/2 × 10⁻³)²]= 0.01485 m
Therefore, the height h of mercury on the right side of the U-tube is 0.01485 m.
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In a particular application, the current in the inner conductor is 1.30 A out of the page, and the current in the outer conductor is 2.52 A into the page. Determine the magnitude of the magnetic field at point Tries 0/10 Determine the magnitude of the magnetic field at point b. Tries 0/10
Therefore, the magnitude of the magnetic field at point T due to the inner conductor is 5.49 x 10^-6 Tesla, and the magnitude of the magnetic field at point T due to the outer conductor is 1.94 x 10^-6 Tesla. Note that the direction of the magnetic field is out of the page for the inner conductor and into the page for the outer conductor.
Given the following information:Current flowing through inner conductor = 1.30 A (out of the page)Current flowing through outer conductor = 2.52 A (into the page)To determine the magnitude of the magnetic field at point T, we use the right-hand thumb rule, which states that if we grip a wire with our right hand and point our thumb in the direction of current flow, our fingers will curl in the direction of the magnetic field (i.e. counter-clockwise or clockwise).
Since the current is out of the page in the inner conductor, the magnetic field is also directed out of the page. For the outer conductor, the current is flowing into the page, so the magnetic field is directed into the page.Using Ampere's circuital law, we can find the magnitude of the magnetic field at point T.
Ampere's law states that the line integral of the magnetic field around a closed path is equal to the current enclosed by the path times the permeability of free space (μ0).B = μ0I / 2πrWhere,I = Current enclosed by the pathμ0 = Permeability of free space = 4π x 10^-7 Tesla meter per ampere2πr = Circumference of the circular path at point TFor the inner conductor, the current enclosed by the path is 1.30 A, soB = (4π x 10^-7) x 1.30 / (2π x 0.15) = 5.49 x 10^-6 Tesla
For the outer conductor, the current enclosed by the path is 2.52 A - 1.30 A = 1.22 A, soB = (4π x 10^-7) x 1.22 / (2π x 0.25) = 1.94 x 10^-6 Tesla
Therefore, the magnitude of the magnetic field at point T due to the inner conductor is 5.49 x 10^-6 Tesla, and the magnitude of the magnetic field at point T due to the outer conductor is 1.94 x 10^-6 Tesla. Note that the direction of the magnetic field is out of the page for the inner conductor and into the page for the outer conductor.
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A trawing content speed of 220 m. comes to an incine with a constant slope while going to the die train ows down with a constant acceleration of magnitude 140 m2 How far hon the traietatied up the incine aber 7808
The train's initial speed is 220 m/s and it encounters an incline with a constant slope. As it goes up the incline, the train slows down with a constant acceleration of magnitude 140 m^2. The distance traveled by the train up the incline is not provided in the given information.
The given information states that the train experiences a constant acceleration of magnitude 140 m^2 while going up the incline. Acceleration is a measure of how quickly an object's velocity changes over time. In this case, the train's velocity is decreasing as it goes up the incline, indicating that the train is slowing down. The magnitude of the acceleration, 140 m^2, tells us how much the velocity decreases per second. This means that for every second the train travels up the incline, its velocity decreases by 140 m/s. The specific distance traveled by the train up the incline is not provided in the given information.
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The motion of a particle of mass 2 kg connected to a spring is described by x = 10 sin (5 πt). What is the kinetic energy of the particle at time t=1 s? Show your works a. 0 kJ
b. 24.67 kJ c. 3,50 kJ d. 0.79 kJ
e. 0.05 kJ
The kinetic energy of the particle connected to a spring at time t=1 s is option (b) 24.67 kJ.
x= 10sin (5πt)
The velocity of the particle will be given by:
dx/dt = 10cos(5πt) × 5π
Since we are asked to find the kinetic energy of the particle connected to a spring, we know that:
Kinetic energy = 1/2mv²
Where m is the mass of the particle and v is its velocity.
Substituting the values, we get:
Kinetic energy = 1/2 × 2 × (10cos(5πt) × 5π)²= 1/2 × 2 × (10 × 5π)² cos²(5πt)= 1/2 × 2 × (250π²) cos²(5πt)≈ 24.67 kJ (at t = 1s)
Therefore, the correct option is (b) 24.67 kJ.
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An airplane propeller speeds up in its rotation with uniform angular acceleration α=1256.00rad/s 2
. It is rotating counterclockwise and at t=0 has an angular speed of ω i
=6280.00rad/s. STUDY THE DIAGRAM CAREFULLY. (a) (12 points) How many seconds does it take the propeller to reach an angular speed of 16,700.00rad/s ? (b) (12 points) What is the angular speed (in rad/s) at t=10.00 seconds? (c) (14) What is the instantaneous tangential speed V of a point p at the tip of a propeller blade (in m/s ) at t=10.00 seconds? See the diagram above. (c) (12 points) Through how many revolutions does the propeller turn in the time interval between 0 and 10.00 seconds?
Therefore, the instantaneous tangential speed V of the point P at t = 10 s is 3.13 m/s.
(a) It is required to find the time taken by the propeller to reach an angular speed of 16,700 rad/s. The initial angular speed is 6280 rad/s. The uniform angular acceleration of the propeller is 1256 rad/s².Let the time taken to reach an angular speed of 16,700 rad/s be t.
We have to find the value of t.s = ut + 1/2 at²Here,s = 16,700 rad/st = ?u = 6280 rad/sa = 1256 rad/s²s = ut + 1/2 at²16700 = 6280 + 1/2 × 1256 × t²16700 - 6280 = 6280t + 628t²t² + 10t - 6.6516 = 0On solving the above quadratic equation, we gett = 0.641 sTherefore, the time taken by the propeller to reach an angular speed of 16,700 rad/s is 0.641 s. (b) At t = 10 s,
the angular speed of the propeller can be given asω = ωi+ αtWhereωi= 6280 rad/sα = 1256 rad/s²t = 10 sω = 6280 + 1256 × 10ω = 12,840 rad/sTherefore, the angular speed of the propeller at t = 10 s is 12,840 rad/s. (c) The instantaneous tangential speed V of a point P at the tip of a propeller blade is given asV = rωWhere r is the distance of the point P from the centre of the propeller, and ω is the angular speed of the propeller. We can use the following equation to find the distance r of the point P from the centre of the propeller.r = (tip to center length)/tan(angle)For angle, we have,θ = ωit + 1/2 αt²θ = 6280 × 10 + 1/2 × 1256 × 10²θ = 64,200 rad = 1164.50 revolutionsSo, the propeller turns 1164.50 revolutions between 0 and 10 seconds.
Now, we can calculate the distance r.r = (1.20 m)/tan(θ)r = (1.20 m)/tan(64,200)Thus, the value of r comes out to be 0.000244 m.Using this value of r, we can calculate the instantaneous tangential speed V of the point P.V = rω = 0.000244 × 12,840V = 3.13 m/s
Therefore, the instantaneous tangential speed V of the point P at t = 10 s is 3.13 m/s.
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