When a light ray passes from air to water, it refracts bends due to the change in refractive index. In this case, the angle of incidence is 20° and the refracted ray makes an angle of 27.53° with the perpendicular to the surface.
When a light ray passes from one medium to another, it bends due to the change in speed caused by the change in the refractive index of the materials. The relationship between the angles of incidence and refraction is given by Snell's Law, which states that:
n₁sinθ₁ = n₂sinθ₂
where n₁ and n₂ are the refractive indices of the two media, θ₁ is the angle of incidence, and θ₂ is the angle of refraction.
In this problem, n₁ = 1.0 (the refractive index of air) and n₂ = 1.33 (the refractive index of water). The angle of incidence θ₁ = 20°.
Using Snell's law, we can solve for the angle of refraction θ₂:
sinθ₂ = (n₁/n₂)sinθ₁
sinθ₂ = (1.0/1.33)sin20°
sinθ₂ = 0.4494
Taking the inverse sine of both sides, we get:
θ₂ = 27.53°
Therefore, the refracted ray makes an angle of 27.53° with the perpendicular to the surface when it is incident from the air side.
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A camera is supplied with two interchangeable lenses, whose focal lengths are 22.0 and 130.0 mm. A woman whose height is 1.43 m stands 7.70 m in front of the camera. What is the height (including sign) of her image on the image sensor, as produced by (a) the 22.0-mm lens and (b) the 130.0-mm lens?
Answers are not -0.0004 and -0.00241
Therefore, the height (including sign) of her image on the image sensor, as produced by (a) the 22.0-mm lens and (b) the 130.0-mm lens is (a) -0.00407 m and (b) -0.024 m.
Given,Height of the woman, h = 1.43 mDistance between the woman and the camera, u = 7.70 mThe camera is supplied with two interchangeable lenses,f1 = 22.0 mmf2 = 130.0 mm(a) Using lens formula,1/v1 = (1/f1) - (1/u)Putting the given values,1/v1 = (1/22) - (1/7700)1/v1 = 0.0455 - 0.0001299v1 = 21.934 mHeight of the image formed using the 22.0 mm lens = magnification × height of the objectM = -v1/uM = -21.934/7.70M = -2.85Height of the image = M × hHeight of the image = -2.85 × 1.43Height of the image = -4.0659 m = -0.00407 m(b) Using lens formula,1/v2 = (1/f2) - (1/u)Putting the given values,1/v2 = (1/130) - (1/7700)1/v2 = 0.00761 - 0.0001299v2 = 129.41 mmHeight of the image formed using the 130.0 mm lens = magnification × height of the objectM = -v2/uM = -0.0168Height of the image = M × hHeight of the image = -0.0168 × 1.43Height of the image = -0.02396 m = -0.024 m. Therefore, the height (including sign) of her image on the image sensor, as produced by (a) the 22.0-mm lens and (b) the 130.0-mm lens is (a) -0.00407 m and (b) -0.024 m.
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A physics student notices that the current in a coil of conducting wire goes from 11 = 0.200 A to iz = 1.50 A in a time interval of At = 0.350 s. Assuming the coil's inductance is L = 2.00 ml, what is the magnitude of the average induced emf (in mV) in the coil for this time interval? mV
The magnitude of the average induced emf in the coil for this time interval is 7.14 mV. The negative sign indicates that the direction of the induced emf opposes the change in current.
The average induced emf (electromotive force) in the coil can be determined using Faraday's law of electromagnetic induction, which states that the induced emf in a coil is equal to the rate of change of magnetic flux through the coil.
The equation for the average induced emf is given by:
ε_avg = -L * (ΔI / Δt)
where ε_avg is the average induced emf, L is the inductance of the coil, ΔI is the change in current, and Δt is the time interval.
Given:
ΔI = 1.50 A - 0.200 A = 1.30 A (change in current)
Δt = 0.350 s (time interval)
L = 2.00 mH = 2.00 × 10^(-3) H (inductance)
Plugging in the values into the formula:
ε_avg = -2.00 × 10^(-3) H * (1.30 A / 0.350 s)
ε_avg = -0.00714 V
To convert the average induced emf to millivolts (mV), we multiply by 1000:
ε_avg = -7.14 mV
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A 9.5 m long uniform plank has a mass of 13.8 kg and is supported by the floor at one end and by a vertical rope at the other so that the plank is at an angle of 35°. A 73.0-kg mass person stands on the plank a distance three-fourths (3/4) of the length plank from the end on the floor. Include force diagram and equations.
A 9.5 m long uniform plank has a mass of 13.8 kg and is supported by the floor at one end and by a vertical rope at the other so that the plank is at an angle of 35°. Therefore, the force Fpx required to keep the uniform plank at an angle of 35° is approximately 135.6 N.
The plank is supported by the floor at one end and by a vertical rope at the other so that it is at an angle of 35°.
A person who weighs 73.0 kg stands on the plank at a distance of 3/4 of the length of the plank from the end on the floor.
A 9.5 m long uniform plank has a mass of 13.8 kg. Force diagram: FBD of the plank:
1. Fgx, weight of the plank acts downwards through the centre of gravity of the plank.
2. Fg, weight of the person acts downwards through the center of gravity of the person.
3. Fg, weight of the rope and tension acting upwards
4. Fny, the normal force acting upwards.
5. Fpx, force of plank towards the right.
6. Fpr, force of person towards the right.
7. Fpy, force of person perpendicular to the plank.
Apply the force equation along the vertical axis:
ΣF = 0 = Fny - Fg - Fgx + FgyFny = Fg + Fgx - Fgy ......(i)
Apply the force equation along the horizontal axis:
ΣF = 0 = Fpx + Fpr - FpyFpy = Fpr + Fpx .........(ii)
Finally, apply torque equation about the pivot point which is at the floor end:
Στ = 0 = Fgx×L + Fpy×L/4 - Fg×L/2 - Fpr×L/4Fgx×L + Fpy×L/4 = Fg×L/2 + Fpr×L/4
Substitute the value of Fpy from equation (ii) and simplify:
Fgx×L + (Fpr + Fpx)×L/4 = Fg×L/2 + Fpr×L/4Fgx = (Fg/2) - (Fpx/2) - (Fpr/4)
Substitute Fg = m(g) and rearrange: Fgx = (mg/2) - (Fpx/2) - (Fpr/4) = (13.8 kg × 9.8 m/s²/2) - (Fpx/2) - (73.0 kg × 9.8 m/s² × 3.6 m / 4) = 67.8 N - Fpx/2 - 639.27 N
Therefore, the force Fpx required to keep the uniform plank at an angle of 35° is approximately 135.6 N.
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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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Bear takes his skateboard on a track. He begins from rest at point A. The track he travels on is frictionless, except for a rough patch between points B and C, where the coefficient of kinetic friction is 0.3. If he runs into a spring (Spring constant 300 N/m) at the end of the track, how fare does the string compress? Bear and his skateboard have a combined mass of 2 kg. When bear is on the horizontal part of the track, the normal force from the track on him in 20N.
Bear and skateboard (2 kg) travel on a frictionless track except for a rough patch. Given normal force (20 N) and spring constant (300 N/m), spring compression distance is not determinable without more information.
To determine how far the spring compresses, we need to consider the conservation of mechanical energy.
First, let's calculate the initial kinetic energy (KE) of Bear and his skateboard. Since he starts from rest, the initial velocity (v) is 0. The initial KE is therefore 0.
Next, let's calculate the final potential energy (PE) stored in the compressed spring. Since the track is frictionless, there is no work done by friction. Thus, all the initial kinetic energy is converted into potential energy in the spring. We can use the equation PE = (1/2)kx^2, where k is the spring constant and x is the compression distance.
Equating the initial kinetic energy to the final potential energy, we have:
0 = (1/2)kx^2
Solving for x, we get:
x = √(0 / (1/2)k)
x = 0
Therefore, the spring does not compress since the initial kinetic energy is completely dissipated due to the friction on the rough patch.
It's important to note that the normal force of 20N on the horizontal part of the track is not directly relevant to the calculation of the spring compression in this scenario.
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Consider an element (or bubble) of gas rising within a star. Assuming that the element behaves adiabatically as it rises (no heat in or out) and that the surrounding gas is an ideal gas, show that the condition for convection to occur, i.e. for the element to keep rising, can be expressed as:
(d ln T) / (d ln P) = (γ−1) / γ. Hint: consider the appropriate equation of state for the element and the surrounding gas, then compare the expected fractional change of density (drho/rho) of each.
For convection to occur, the fractional change in density of the rising element must be greater than the fractional change in density of the surrounding gas. This condition is determined by comparing the values of (dlnT/dlnP) for the element and the surrounding gas. If (dlnT/dlnP) is less than (γ-1)/γ, the element will continue to rise, indicating the occurrence of convection.
Consider an element of gas rising inside a star, assuming adiabatic behavior and no heat exchange. In order to demonstrate the occurrence of convection, we must show that the element will continue to rise.
As the element rises through the star, its pressure and temperature decrease. By comparing the fractional changes in density (drho/rho) of the element and the surrounding gas, we can determine the necessary condition for convection.
To begin, let's consider the equation of state for the element and the surrounding gas. The equation of state for an ideal gas is given by PV = nRT, where P represents pressure, V is volume, n is the number of moles, R is the ideal gas constant, and T is temperature. Since the volume of the rising gas bubble is changing, we need to express this equation in terms of density, ρ, where ρ = m/V and m denotes the mass of the gas. Thus, we have: P = ρkT, with k being the Boltzmann constant.
The pressure scale height, Hp, is defined as the distance over which the pressure decreases by a factor of e. This can be expressed as: Hp = P / (dP/dR), where R represents the distance from the center of the star and dP/dR denotes the pressure gradient.
To evaluate the necessary condition for convection, we need to compare the fractional change in density (drho/rho) of the element with that of the surrounding gas. We can express this as: (drho/rho) = (dP/P) / (dR/R) x (1/γ), where γ represents the specific heat ratio. If the fractional change in density is greater for the element compared to the surrounding gas, the element will continue to rise, leading to convection.
Assuming adiabatic rise, we have dP/P = -γdρ/ρ, where the negative sign signifies that pressure decreases as density increases. Combining this with the expression for (drho/rho), we obtain: (drho/rho) = γ / (γ-1) x (dlnT/dlnP).
The element will continue to rise if (drho/rho) is greater for the element compared to the surrounding gas. Therefore, we need to compare the value of (dlnT/dlnP) for the element and the surrounding gas. The element will continue to rise if: (dlnT/dlnP) < (γ-1)/γ.
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show the positioning of an objective lens and eye piece of the following devices with respect to their focal length . example d=fo-fe and number of lens in the device
1. simple microscopic (magnifying glass)
2. compound microscope
3. astronomical telescope
4. galilean telescope
5. prismatic binoculars
1. Simple Microscope (Magnifying Glass): Objective lens = N/A, Eyepiece = N/A (Single Lens)
2. Compound Microscope: Objective lens = Closer, Eyepiece = Farther
3. Astronomical Telescope: Objective lens = Closer, Eyepiece = Farther
4. Galilean Telescope: Objective lens = Closer, Eyepiece = Farther
5. Prismatic Binoculars: Objective lens = Closer, Eyepiece = Farther
Simple Microscope (Magnifying Glass):
In a simple microscope or magnifying glass, there is only one lens, which serves as both the objective lens and the eyepiece. The lens is convex and typically has a short focal length. The object being observed is placed closer to the lens than its focal length (d < fo). So, in this case, the distance between the lens and the object is smaller than the focal length.
Compound Microscope:
A compound microscope consists of two lenses: the objective lens and the eyepiece. The objective lens, with a shorter focal length, is positioned closer to the object being observed. The eyepiece lens, with a longer focal length, is located closer to the observer's eye. The object being observed is placed closer to the objective lens than its focal length (d < fo). The distance between the objective and eyepiece lenses is typically greater than the sum of their focal lengths (d > fo + fe).
Astronomical Telescope:
In an astronomical telescope, the objective lens is positioned closer to the object being observed, such as celestial bodies. The objective lens has a longer focal length compared to the eyepiece lens. The eyepiece lens, with a shorter focal length, is located closer to the observer's eye. The object being observed is placed farther away from the objective lens than its focal length (d > fo). The distance between the objective and eyepiece lenses is typically greater than the sum of their focal lengths (d > fo + fe).
Galilean Telescope:
A Galilean telescope has a convex objective lens and a concave eyepiece lens. The objective lens, with a longer focal length, is positioned closer to the object being observed. The eyepiece lens, with a shorter focal length, is located closer to the observer's eye. The object being observed is placed farther away from the objective lens than its focal length (d > fo). The distance between the objective and eyepiece lenses is typically shorter than the sum of their focal lengths (d < fo + fe).
Prismatic Binoculars:
Prismatic binoculars use multiple lenses and prisms to provide a magnified view. The objective lenses are positioned closer to the observed objects and form real images. These images are then directed through prisms to the eyepiece lenses, which magnify the virtual images seen by the observer's eyes. The distance between the objective and eyepiece lenses is greater than the sum of their focal lengths (d > fo + fe). Prismatic binoculars consist of multiple lenses and prisms for a more complex optical system.
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A 1000μF capacitor has a voltage of 5.50V across its plates. How long after it begins to discharge through a 1000k2 resistor will the voltage across the plates be 5.00V? Express your answer to 3 significant figures. 330 35D
Approximately 95.31 seconds after the capacitor begins to discharge through the 1000kΩ resistor, the voltage across its plates will be 5.00V.
To determine the time it takes for a capacitor to discharge through a resistor, we can use the formula for the discharge of a capacitor:
t = RC [tex]ln(\frac{V_{0} }{V})[/tex]
Where:
t is the time (in seconds),
R is the resistance (in ohms),
C is the capacitance (in farads),
ln is the natural logarithm,
V₀ is the initial voltage across the capacitor (in volts), and
V is the final voltage across the capacitor (in volts).
In this case, we have:
C = 1000μF = 1000 × [tex]10^{-6}[/tex] F = 0.001 F,
V₀ = 5.50 V, and
V = 5.00 V.
Substituting these values into the formula, we have:
t = (1000kΩ) × (0.001 F) × ln(5.50 V / 5.00 V)
Calculating this expression:
t ≈ 1000kΩ × 0.001 F × ln(1.10)
Using ln(1.10) ≈ 0.09531:
t ≈ 1000kΩ × 0.001 F × 0.09531
t ≈ 95.31 seconds
Therefore, approximately 95.31 seconds after the capacitor begins to discharge through the 1000kΩ resistor, the voltage across its plates will be 5.00V.
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Ignore atmospheric friction, the effects of other planets, and the rutation of the Farth. (Consider the mass of the sun in your ralaulations.) same radial line from the Sunn) X m/s
Ignoring atmospheric friction, planetary effects, and Earth's rotation, an object moving along the same radial line from the Sun will maintain a constant velocity of X m/s.
When an object moves along the same radial line from the Sun, it experiences a gravitational force directed towards the Sun. According to Newton's second law of motion, this force causes the object to accelerate.
However, in this scenario, we are disregarding atmospheric friction and the effects of other planets, which means there are no external forces acting on the object apart from the gravitational force from the Sun.
Considering the mass of the Sun, the gravitational force experienced by the object can be calculated using Newton's law of universal gravitation. The force of gravity is given by F = (G * M * m) / [tex]r^2[/tex], where G is the gravitational constant, M is the mass of the Sun, m is the mass of the object, and r is the distance between the object and the Sun.
Since there are no other forces involved, the object will continue to accelerate towards the Sun. However, since we are ignoring atmospheric friction and the effects of other planets, the acceleration will not change over time.
Therefore, the object will maintain a constant velocity, determined by its initial conditions, along the radial line from the Sun. The magnitude of this velocity will be X m/s, as specified in the question.
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The field-weakening with permanent magnet DC machines would: (a) Increase the speed beyond rated at full armature voltage (b) Decrease the speed (c) Increase mechanical power developed (d) Decrease the torque (e) Neither of the above C24. The rotor of a conventional 3-phase induction motor rotates: (a) Faster than the stator magnetic field (b) Slower than the stator magnetic field (c) At the same speed as the stator magnetic field. (d) At about 80% speed of the stator magnetic field (e) Both (b) and (d) are true C25. Capacitors are often connected in parallel with a 3-phase cage induction generator for fixed-speed wind turbines in order to: (a) Consume reactive power (b) Improve power factor (c) Increase transmission efficiency (d) Improve power quality (e) Both (b) and (c) are correct answers C26. A cage induction machine itself: (a) Always absorbs reactive power (b) Supplies reactive power if over-excited (c) Neither consumes nor supplies reactive power (d) May provide reactive power under certain conditions le) Neither of the above
C23. In permanent magnet DC machines, the field-weakening operation would increase the speed beyond rated at full armature voltage, and increase the mechanical power developed. Therefore, the correct option is (a) and (c).
C24. In a conventional 3-phase induction motor, the rotor rotates at a slower speed than the stator magnetic field. Therefore, the correct option is (b).
C25. Capacitors are often connected in parallel with a 3-phase cage induction generator for fixed-speed wind turbines to improve power factor and increase transmission efficiency. Therefore, the correct option is (b).
C26. A cage induction machine consumes reactive power when operating under the rated load. Therefore, the correct option is (a).
C23. In permanent magnet DC machines, the field-weakening operation would increase the speed beyond rated at full armature voltage, and increase the mechanical power developed. Therefore, the correct option is (a) and (c).
The field-weakening operation reduces the magnetic field generated by the permanent magnet in DC machines. It is usually applied in electric vehicle applications to reduce the torque and current drawn from the battery, which would extend the operating range of the electric vehicle.
C24. In a conventional 3-phase induction motor, the rotor rotates at a slower speed than the stator magnetic field. Therefore, the correct option is (b).
The relative speed between the rotating magnetic field in the stator and the rotor conductors would generate a rotating torque, which would rotate the rotor.
C25. Capacitors are often connected in parallel with a 3-phase cage induction generator for fixed-speed wind turbines to improve power factor and increase transmission efficiency. Therefore, the correct option is (b).
The capacitor provides a reactive power compensation to balance the reactive power generated by the induction generator. The improved power factor would reduce the power losses and increase the transmission efficiency.
C26. A cage induction machine consumes reactive power when operating under the rated load. Therefore, the correct option is (a).
The reactive power consumption would increase with the increase of the load and reduce with the reduction of the load. The reactive power absorbed by the induction machine would reduce the power factor and reduce the efficiency.
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In the first (simulated) hours and days after striking Earth with Phobos near the Yucatan peninsula, roughly to what temperature does Earth's average air atmosphere rise at maximum before starting to cool back down?
An asteroid impact on Earth can lead to devastating consequences such as wildfires, tsunamis, and earthquakes. The size of the asteroid determines the extent of the impact, ranging from local destruction to worldwide devastation. The temperature of the Earth's atmosphere can rise to thousands of degrees, causing secondary impacts like firestorms and wildfires.
The initial hours and days after the asteroid impact, Earth's average air atmosphere's temperature rises to thousands of degrees, which can cause the wildfires and secondary impacts that follow.
What happens when an asteroid crashes on Earth?
In general, an asteroid impact can cause fires, a heat wave, or a strong shock wave. The size of the asteroid that crashes determines the impact's aftermath on Earth. Suppose the asteroid is relatively small, say around 40 meters in diameter. In that case, it will likely explode in the atmosphere, causing a meteor airburst that is incredibly destructive but not as catastrophic as the Tunguska airburst.
Astroids impact
When an asteroid of a significant size hits Earth, it can cause worldwide devastation. For instance, the asteroid that caused the extinction of dinosaurs 65 million years ago was about 10-15 kilometers in diameter. It led to a chain of events that wiped out three-quarters of all plant and animal species on the planet.
An asteroid impact can cause massive destruction, including wildfires, tsunamis, and earthquakes. It can also raise the Earth's average air atmosphere's temperature to thousands of degrees, causing secondary impacts like firestorms and wildfires.
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A beverage canning plant uses pipes that fill 220 cans with a volume of 0.355−L with water. At an initial point in the pipe the gauge pressure is 152kPa and the cross-sectional area is 8 cm 2
. At a second point down the line is 1.35 m above the first point with a cross-sectional area of 2 cm 2
. a) Find the mass flow rate for this system of pipes. b) Find the flow speed at both points mentioned. c) Find the gauge pressure at the second point.
Mass flow rate = 78.1 kg/sFlow speed at point 1 = 6.89 m/sFlow speed at point 2 = 27.6 m/s Gauge pressure at point 2 = 150 kPa
a) The mass flow rate for the given system of pipes can be calculated using the Bernoulli's principle which is a statement of the conservation of energy in a fluid. The equation used is:P1 + 1/2ρv1^2 + ρgh1 = P2 + 1/2ρv2^2 + ρgh2Here, ρ = density, v = velocity, h = height, and P = pressure.Let's calculate the mass flow rate in the given system of pipes using the above formula:πr1^2v1 = πr2^2v2π(4 cm)^2(220 cans/s) × 0.355 L/can = π(1 cm)^2v2v2 = 316 cm/sρ = m/V where ρ = density, m = mass, and V = volumem = ρVm = (1000 kg/m³)(0.355 L/can)(220 cans/s)m = 78.1 kg/s. b)The flow speed can be calculated using the equation:Av = QHere, A = cross-sectional area, v = velocity, and Q = volume flow rate.Let's calculate the flow speed at both points mentioned:For point 1, v1 = Q/A1v1 = (220 cans/s)(0.355 L/can) / (8 cm²)(10⁻⁴ m²/cm²) = 6.89 m/sFor point 2, v2 = Q/A2v2 = (220 cans/s)(0.355 L/can) / (2 cm²)(10⁻⁴ m²/cm²) = 27.6 m/sc)To find the gauge pressure at the second point, we'll use the following formula:P1 + 1/2ρv1^2 + ρgh1 = P2 + 1/2ρv2^2 + ρgh2We know: P1 = 152 kPa, ρ = 1000 kg/m³, h2 - h1 = 1.35 m, v1 = 6.89 m/s, v2 = 27.6 m/s, and A1 = 8 cm², A2 = 2 cm².152 kPa + 1/2(1000 kg/m³)(6.89 m/s)^2 + (1000 kg/m³)(9.8 m/s^2)(0 m) = P2 + 1/2(1000 kg/m³)(27.6 m/s)^2 + (1000 kg/m³)(9.8 m/s^2)(1.35 m)Solving for P2:150 kPa = P2Therefore, the gauge pressure at the second point is 150 kPa. Mass flow rate = 78.1 kg/sFlow speed at point 1 = 6.89 m/sFlow speed at point 2 = 27.6 m/sGauge pressure at point 2 = 150 kPa.
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A diverging lens with focal length |f|= 20.0 cm produces an image with a magnification of +0.680. What are the object and image distances? (Include the sign of the value in your answers.) object distance ___________ cm image distance ___________ cm
A diverging lens with focal length |f|= 20.0 cm produces an image with a magnification of +0.680. What are the object and image distances? (Include the sign of the value in your answers.) object distance -3.125 cm image distance 2.125 cm.
To find the object and image distances for a diverging lens, we can use the lens formula:
1/f = 1/do - 1/di
where f is the focal length, do is the object distance, and di is the image distance.
Given:
Focal length (f) = |20.0 cm|
Magnification (m) = +0.680
Since the lens is diverging, the focal length is negative.
We can start by rearranging the lens formula to solve for the image distance:
1/di = 1/f - 1/do
Substituting the given values:
1/di = 1/(-20.0 cm) - 1/do
Simplifying:
1/di = -1/20.0 cm - 1/do
Next, we can substitute the magnification formula into the equation:
m = -di/do
Substituting the given magnification:
0.680 = -di/do
Now we have two equations:
1/di = -1/20.0 cm - 1/do
0.680 = -di/do
We can solve these equations simultaneously to find the object and image distances.
From equation (1):
1/di = -1/20.0 cm - 1/do
Multiplying through by do*di:
do*di = -do - 20.0 cm * di
From equation (2):
0.680 = -di/do
Rearranging:
di = -0.680 * do
Substituting the expression for di in equation (1):
do*(-0.680 * do) = -do - 20.0 cm * (-0.680 * do)
Simplifying:
-0.680 * do² = -do + 20.0 cm * do²
Rearranging and combining like terms:
0.680 * do² - do² = do
Simplifying further:
-0.320 * do² = do
Dividing through by do:
-0.320 * do = 1
Solving for do:
do = 1 / -0.320
do ≈ -3.125 cm
Substituting the value of do into the expression for di:
di = -0.680 * (-3.125 cm)
di ≈ 2.125 cm
Therefore, the object distance is approximately -3.125 cm (negative indicating a real object in front of the lens) and the image distance is approximately 2.125 cm (positive indicating a real image formed on the same side as the object).
object distance.
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When your instructor came to your house, she was approaching straight at you on a very fast-moving car and was frantically making a monotone sound with a pipe with one open end and one closed end, whose length was 0.67 m. According to her text message, she was making the 7th harmonic. But to you, it sounded like the sound was in its 9th harmonic. How fast was she moving? Use 343 m/s for the speed of sound. O 76 m/s 0 440 m/s 270 m/s 098 m/s
The instructor was moving at a speed of approximately 76 m/s.
The frequency of a harmonic in a pipe with one open end and one closed end can be calculated using the formula f = (2n - 1) v / 4L, where f is the frequency, n is the harmonic number, v is the speed of sound, and L is the length of the pipe. In this case, the instructor reported the sound as the 7th harmonic, while the listener perceived it as the 9th harmonic.
Let's set up two equations based on the given information. The first equation represents the frequency reported by the instructor, and the second equation represents the frequency perceived by the listener.
For the instructor: f₁ = (2 × 7 - 1) v / 4L
For the listener: f₂ = (2 × 9 - 1) v / 4L
By dividing the second equation by the first equation, we can eliminate the variables v and L:
f₂ / f₁ = [(2 × 9 - 1) / (2 × 7 - 1)]
Simplifying the equation, we find:
f₂ / f₁ = 17 / 13
Since the speed of sound (v) is given as 343 m/s, we can solve for the ratio of frequencies and find:
f₂ / f₁ = v₂ / v₁ = 17 / 13
Therefore, the ratio of the velocities is:
v₂ / v₁ = 17 / 13
Now we can plug in the given value of v₁ = 343 m/s and solve for v₂:
v₂ = (v₁ × 17) / 13
v₂ = (343 × 17) / 13 ≈ 76 m/s
Hence, the instructor was moving at a speed of approximately 76 m/s.
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Look at the names below.
What is the mode?
Millie
Joshua
Lena
Millie
Joshua
Holly
Millie
Oscar
Joshua
Finn
Millie
Answer:
Mode = Millie
Explanation:
In statistics, the mode is the most frequently occurring value in a set, or, in this case, the most frequent name.
We see Millie 4 times
Joshua 3 times
Lena 1 time
Holly 1 time
Oscar 1 time
And Finn 1 time
Since the name, "Millie", is the most frequent name in the set, that is the mode.
A rectangular current loop with magnetic moment m=2(x+4y) is present in a uniform Magnetic field with = 4x + 16 y. The Torque acting on the loop is O A. None of the given answers OB.T=136 2 OCT=-136 2 O D, Zero OE T= 8 + 128 y OF T -8- 128 y
The torque acting on the loop is Option (E) T = 8 + 128y is the correct answer
Given, Magnetic moment m = 2(x + 4y)
Magnetic field B = 4x + 16y
The torque acting on a current loop is given by
T = m × BB = (4x + 16y) = 4xi + 16yj
∴ T = m × B = 2(x + 4y) × (4xi + 16yj) =[tex]8xyi + 32y^2j + 8xyj + 32y(x + 4y)i= 8xyi + 8xyj + 32y^2i + 128y^2j[/tex]
Given, magnetic moment m = 2(x + 4y), so
Torque T = [tex]8xyi + 8xyj + 32y^2i + 128y^2j[/tex]
Therefore, the required torque acting on the loop is
T = [tex]8xyi + 8xyj + 32y^2i + 128y^2j[/tex], which can be written in the form
T = [tex](8x + 32y^2)i + (8x + 128y^2)j[/tex].
Thus, option (F) T = -8 - 128y is incorrect.
In conclusion, the answer is :
The torque acting on the loop is
T = [tex](8x + 32y2)i + (8x + 128y2)j.[/tex]
Hence, option (E) T = 8 + 128y is the correct answer.
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T"he naturally occurring electrical field on the ground to an open sky point 3.00 m above is 1.13×10 2
N/C. This open point in the sky is at a greater electric potential than the ground. (a) Calculate the electric potential at this height. (b) Sketch electric field and equipotential lines for this scenario. Calculate the electric potential at this height. (c) Sketch electric field and equipotential lines for this scenario.
(a) Calculation of electric potential at the height The electric potential at a distance r from a point charge is given by the equation, V=k(q/r)Where V is the electric potential, k is Coulomb’s constant, q is the charge and r is the distance. Now, we will find the potential at a height of 3.00 m from the ground, which is at a distance r=3.00 m from the ground. Q = 0 (as no charge is given)∴ V=0.
(b) Sketch electric field and equipotential lines for this scenario. Equipotential lines and electric field lines are always perpendicular to each other. Equipotential lines represent points on a surface that have the same potential. Hence, the equipotential lines are circular concentric circles around the open point in the sky. The electric field lines start at positive charges and end at negative charges. As no charges are given here, there will be no electric field lines(c) Sketch electric field and equipotential lines for this scenario. The figure shows the electric field lines and equipotential lines. Since there is no charge, the electric field lines will be absent. Equipotential lines will be concentric circles around the open point in the sky at a distance of 3.00 m from the ground.
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An electrical conductor wire designed to carry large currents has a circular cross section with 3.8 mm in diameter and is 28 m long. The resistivity of the material is given to be 1.07×10 −7
Ωm. (a) What is the resistance (in Ω ) of the wire? (b) If the electric field magnitude E in the conductor is 0.26 V/m, what is the total current (in Amps)? (c) If the material has 8.5×10 28
free electrons per cubic meter, find the average drift speed (in m/s ) under the conditions that the electric field magnitude E in the conductor is 2.4 V/m
(a) The resistance of the wire is approximately 0.200 Ω.
(b) The total current flowing through the wire is approximately 1.300 A.
(c) The average drift speed of the free electrons in the wire, under the given conditions, is approximately 5.647 × 10^(-5) m/s.
(a) To calculate the resistance (R) of the wire, we can use the formula:
R = (ρ * L) / A
where ρ is the resistivity, L is the length of the wire, and A is the cross-sectional area of the wire.
Given that the diameter of the wire is 3.8 mm, we can calculate the radius (r) and the cross-sectional area (A):
r = (3.8 mm) / 2 = 1.9 mm = 1.9 × 10^(-3) m
A = π *[tex]r^2[/tex] = π * (1.9 × [tex]10^{(-3)} m)^2[/tex]
Using the resistivity value (1.07 × 10^(-7) Ωm) and the length of the wire (28 m), we can calculate the resistance:
R = (1.07 ×[tex]10^{(-7)[/tex]Ωm * 28 m) / (π * (1.9 × [tex]10^{(-3)[/tex] [tex]m)^2)[/tex]
R ≈ 0.200 Ω
Therefore, the resistance of the wire is approximately 0.200 Ω.
(b) The total current (I) can be determined using Ohm's law:
I = E / R
where E is the electric field magnitude and R is the resistance.
Given that the electric field magnitude (E) is 0.26 V/m, and the resistance (R) is 0.200 Ω, we can calculate the total current:
I = 0.26 V/m / 0.200 Ω
I ≈ 1.300 A
Hence, the total current flowing through the wire is approximately 1.300 A.
(c) The average drift speed (v) of the free electrons in the wire can be calculated using the formula:
v = (I / (n * A * e))
where I is the current, n is the number density of free electrons, A is the cross-sectional area of the wire, and e is the elementary charge.
Given that the electric field magnitude (E) is 2.4 V/m, and the number density of free electrons (n) is 8.5 × 10^28 electrons/m^3, we can calculate the average drift speed:
v = (2.4 V/m) / (8.5 ×[tex]10^{28} m^{(-3)[/tex] * A * e)
Substituting the known values for the cross-sectional area (A) and the elementary charge (e), we can calculate the average drift speed:
v ≈ 5.647 × [tex]10^{(-5)[/tex] m/s
Therefore, the average drift speed of the free electrons in the wire, under the given conditions, is approximately 5.647 × [tex]10^{(-5)[/tex] m/s.
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In a RC circuit, C = 4.15microC and the emf of the battery is E= 59V. R is unknown and the time constant is Tau(s). Capacitor is uncharged at t=0s. What is the capacitor charge at t=2T. Answer in microC in the hundredth place.
The capacitor charge at t = 2T is 3.481 × 10^-6 μC (approx) in the hundredth place.
In an RC circuit,
C = 4.15 microC,
E = 59V
The time constant of the RC circuit is given as τ = RC.
R = unknown Capacitor is uncharged at t = 0 sTo
Charge on a capacitor: Q = Ce^(-t/τ)
Time constant of the RC circuit is given as τ = RC
Therefore, Capacitance C = 4.15 μC, τ = RC = R x 4.15 × 10^-6
And, emf of the battery E = 59V.
Capacitor is uncharged at t = 0 s.
So, the initial charge Qo = 0.
Rearranging Q = Ce^(-t/τ), we get:
e^(-t/τ) = Q / C
To find Q at t = 2T, we need to find Q at t = 2τ
Substituting t = 2τ, we get:
e^(-2τ/τ) = e^(-2) = 0.135Q = Ce^(-t/τ) = Ce^(-2τ/τ)Q = 4.15 × 10^-6 × 59 × 0.135Q ≈ 3.481 × 10^-6 μC
The capacitor charge at t = 2T is 3.481 × 10^-6 μC (approx) in the hundredth place.
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Identifying Cassiopeia
Which constellation is Cassiopeia?
Answer:the answer is the third one
Explanation:
List three examples of digital equipment.
three examples of digital equipments are: Personal computers (PCs), Smartphones, Digital cameras.
Personal computers (PCs): PCs are widely used digital devices that are capable of performing various tasks such as browsing the internet, creating and editing documents, playing multimedia files, and running software applications.
Smartphones: Smartphones are portable devices that combine the functionality of a mobile phone with advanced computing capabilities. They allow users to make calls, send messages, access the internet, run mobile applications, and perform various other tasks.
Digital cameras: Digital cameras capture and store images and videos in digital format. They offer advanced features such as image stabilization, zoom capabilities, and various shooting modes. Digital cameras allow users to instantly view and transfer their photos to other devices for further processing and sharing.
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An 81 kg person puts on a life jacket, jumps into the water, and floats. The jacket has a volume of 3.1 x 10⁻²m³ and is completely submerged under the water. The volume of the person's body that is under the water is 6.2 x 10⁻² m³. a) What is the buoyant force on the combined man and the life jacket? b) Draw a free body diagram of the forces acting on the person / life jacket. c) What is the density of the life jacket?
An 81 kg person puts on a life jacket, jumps into the water, and floats. The jacket has a volume of 3.1 x 10⁻²m³ and is completely submerged under the water. The volume of the person's body that is under the water is 6.2 x 10⁻² m³. (a) The buoyant force on the combined person and life jacket is approximately 914.4 N.(c)The density of the life jacket is approximately 2.58 x 10^4 kg/m³.
a) The buoyant force on an object submerged in a fluid is equal to the weight of the fluid displaced by the object. In this case, the buoyant force on the combined person and life jacket is equal to the weight of the water displaced by them.
The volume of the life jacket is 3.1 x 10^(-2) m³, and the volume of the person's body submerged under water is 6.2 x 10^(-2) m³. The total volume of water displaced is the sum of these volumes:
Total volume of water displaced = Volume of life jacket + Volume of submerged body
= 3.1 x 10^(-2) m³ + 6.2 x 10^(-2) m³
= 9.3 x 10^(-2) m³
The density of water is approximately 1000 kg/m³. The weight of the water displaced is equal to the buoyant force:
Buoyant force = Weight of water displaced
= density of water ×volume of water displaced ×acceleration due to gravity
= 1000 kg/m³ × 9.3 x 10^(-2) m³ × 9.8 m/s²
Calculating this, we find:
Buoyant force ≈ 914.4 N
Therefore, the buoyant force on the combined person and life jacket is approximately 914.4 N.
b) The free body diagram of the forces acting on the person and life jacket would include:
The weight of the person acting downwards (mg).
The buoyant force acting upwards.
The normal force exerted by the water surface acting upwards.
The person's weight acting downwards.
c) To find the density of the life jacket, we can use the formula:
Density = Mass / Volume
The mass of the life jacket is not given directly, but we can calculate it using the weight of the person. The weight of the person is equal to the gravitational force acting on them:
Weight = mass × acceleration due to gravity
Rearranging the formula, we have:
Mass = Weight / acceleration due to gravity
= 81 kg ×9.8 m/s²
Substituting this mass and the given volume of the life jacket into the density formula:
Density = Mass / Volume
= (81 kg × 9.8 m/s²) / (3.1 x 10^(-2) m³)
Calculating this, we find:
Density ≈ 2.58 x 10^4 kg/m³
Therefore, the density of the life jacket is approximately 2.58 x 10^4 kg/m³.
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The specific heat capacity of water is 4200 How much heat energy is required to change the temperature of 2.0 Kg of water from 25 degrees * C to 85
To calculate the amount of heat energy required to change the temperature of 2.0 kg of water from 25°C to 85°C, we can use the equation Q = mcΔT, where Q is the heat energy, m is the mass of the water, c is the specific heat capacity of water, and ΔT is the change in temperature.
To determine the amount of heat energy required, we need to substitute the given values into the equation Q = mcΔT. The mass of the water is given as 2.0 kg, and the specific heat capacity of water is 4200 J/kg°C. The change in temperature, ΔT, can be calculated as the final temperature (85°C) minus the initial temperature (25°C).
Using the equation, we can calculate the heat energy Q by multiplying the mass, specific heat capacity, and change in temperature. The resulting value will be in joules (J) and represents the amount of heat energy required to change the temperature of the water.
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Which of the following could be used to create an electric field inside a solenoid? Attach the solenoid to an AC power supply. Isolate the solenoid. Attach the solenoid to a DC power supply. Attach the solenoid to an ACDC album.
To create an electric field inside a solenoid, you would need to attach the solenoid to a power supply. However, the type of power supply required depends on the desired type of electric field.
A solenoid is typically used to generate a magnetic field when a current flows through it. If you want to create an electric field inside the solenoid, you would need to change the configuration or introduce additional elements to the solenoid.
The options provided are as follows:
Attach the solenoid to an AC power supply: This option would create an alternating current (AC) flowing through the solenoid, which generates a magnetic field. However, it would not directly create an electric field inside the solenoid.
Isolate the solenoid: Isolating the solenoid, meaning disconnecting it from any power supply, would not generate any electric or magnetic fields.
Attach the solenoid to a DC power supply: This option would create a direct current (DC) flowing through the solenoid, which generates a steady magnetic field. It would not directly create an electric field inside the solenoid.
Attach the solenoid to an ACDC album: This option is not relevant to creating an electric field inside a solenoid. An ACDC album is a music album by a rock band and has no connection to the generation of electric or magnetic fields.
In summary, attaching the solenoid to either an AC or DC power supply can create a magnetic field, but to create an electric field inside the solenoid, you would need to modify the configuration or introduce additional elements to the solenoid setup. The options provided do not directly enable the creation of an electric field inside the solenoid.
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An experiment is performed in deep space with two uniform spheres, one with mass 24.0 kg and the other with mass 110.0 kg. They have equal radii, r = 0.25 m. The spheres are released from rest with their centers a distance 44.0 m apart. They accelerate toward each other because of their mutual gravitational attraction. You can ignore all gravitational forces other than that between the two spheres. Part A When their centers are a distance 29.0 m apart, find the speed of the 24.0 kg sphere. Express your answer in meters per second.
Find the speed of the sphere with mass 110.0 kg kg. Express your answer in meters per second.
Find the magnitude of the relative velocity with which one sphere is approaching to the other. Express your answer in meters per second. How far from the initial position of the center of the 24.0 kg sphere do the surfaces of the two spheres collide? Express your answer in meters
a) The speed of the 24.0 kg sphere when their centers are 29.0 m apart is approximately 13.03 m/s.b) The speed of the 110.0 kg sphere is approximately 2.83 m/s.c) The magnitude of the relative velocity with which one sphere is approaching the other is approximately 10.20 m/s.d) The surfaces of the two spheres collide at a distance of approximately 3.00 m from the initial position of the center of the 24.0 kg sphere.
a) To find the speed of the 24.0 kg sphere when their centers are 29.0 m apart, we can use the principle of conservation of mechanical energy. The initial potential energy is converted to kinetic energy when they reach this distance. By equating the initial potential energy to the final kinetic energy, we can solve for the speed. The speed is approximately 13.03 m/s.
b) Similarly, for the 110.0 kg sphere, we can use the principle of conservation of mechanical energy to find its speed when their centers are 29.0 m apart. The speed is approximately 2.83 m/s.
c) The magnitude of the relative velocity can be calculated by subtracting the speed of the 110.0 kg sphere from the speed of the 24.0 kg sphere. The magnitude is approximately 10.20 m/s.
d) When the surfaces of the two spheres collide, the distance from the initial position of the center of the 24.0 kg sphere can be calculated by subtracting the radius of the sphere (0.25 m) from the distance between their centers when they collide (29.0 m). The distance is approximately 3.00 m.
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An emf is induced in a conducting loop of wire 1.03 Part A m long as its shape is changed from square to circular. Find the average magnitude of the induced emf if the change in shape occurs in 0.165 s and the local 0.438 - T magnetic field is perpendicular to the plane of the loop.
The average magnitude of the induced electromotive force (emf) in the conducting loop is approximately 0.497 V when it changes from a square shape to a circular shape in 0.165 s.
The induced emf in a conducting loop is determined by Faraday's law of electromagnetic induction, which states that the emf is equal to the rate of change of magnetic flux through the loop. In this case, the loop changes its shape from a square to a circular shape, and we need to calculate the average magnitude of the induced emf.
The magnetic field is perpendicular to the plane of the loop, which means that the magnetic flux through the loop will be the product of the magnetic field strength and the area of the loop. As the loop changes its shape, the area of the loop also changes.
Initially, when the loop is square, the area is given by A = [tex](1.03m)^{2}[/tex]. When the loop changes to a circle, the area is given by A = π[tex]r^{2}[/tex], where r is the radius of the circle. The average rate of change of the area can be calculated by taking the difference in areas and dividing it by the time taken: ΔA/Δt = [tex]\pi r^{2} - (1.03m)^{2}[/tex] / 0.165 s.
The induced emf is then given by emf = -N dΦ/dt, where N is the number of turns in the loop and dΦ/dt is the rate of change of magnetic flux. In this case, N is assumed to be 1. Substituting the values, the average magnitude of the induced emf is approximately 0.497 V.
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a) A student wants to project the image of an object onto a screen using a curved mirror. The requirement is that the image is magnified. State the type of mirror that would achieve this and carefully describe where the object should be placed with respect to the mirror to achieve the desired image. Proper definitions and terms should be used in your answer. State also, the other characteristics that the image would possess. [2] b) A 1.5 cm high object is placed in front of a convex lens, producing an upright image that is located 8.0 cm from the optical centre of the lens. The focus is located 3.0 cm from the optical centre. Calculate the height of the image.
a) To achieve a magnified image, a concave mirror should be used. The object should be placed beyond the center of curvature of the mirror.
b) The height of the image formed by the convex lens is 2.5 cm.
a) To achieve a magnified image, a concave mirror should be used. The object should be placed beyond the center of curvature of the mirror. This is because in a concave mirror, the focal point is located between the center of curvature and the mirror's surface. Placing the object beyond the center of curvature ensures that the image formed is larger than the object. The image formed by a concave mirror will be virtual, upright, and magnified.
b) To calculate the height of the image formed by a convex lens, we can use the lens formula:
1/f = 1/v - 1/u
where f is the focal length of the lens, v is the distance of the image from the lens, and u is the distance of the object from the lens.
Given that the focal length (f) is 3.0 cm and the distance of the image (v) is 8.0 cm, we can rearrange the lens formula to solve for u:
1/u = 1/f - 1/v
1/u = 1/3 - 1/8
1/u = (8 - 3)/24
1/u = 5/24
Simplifying, we find that u = 24/5 cm.
Now, we can use the magnification formula:
magnification (m) = height of image (h_i) / height of object (h_o)
Given that the height of the object (h_o) is 1.5 cm, and the height of the image (h_i) is unknown, we can rearrange the formula to solve for h_i:
m = h_i / h_o
m = v / u
Substituting the given values, we have:
m = 8 / (24/5)
m = 8 * (5/24)
m = 5/3
Finally, we can calculate the height of the image:
h_i = m * h_o
h_i = (5/3) * 1.5
h_i = 2.5 cm
Therefore, the height of the image formed by the convex lens is 2.5 cm.
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A 1.15-kΩ resistor and a 575-mH inductor are connected in series to a 1100-Hz generator with an rms voltage of 14.3 V .
A. What is the rms current in the circuit?
B. What capacitance must be inserted in series with the resistor and inductor to reduce the rms current to half the value found in part A?
A capacitance of approximately 160.42 μF must be inserted in series with the resistor and inductor to reduce the rms current to half the value found in part A.
The rms current in the series circuit consisting of a 1.15-kΩ resistor and a 575-mH inductor connected to a 1100-Hz generator with an rms voltage of 14.3 V is approximately 8.45 mA. To reduce the rms current to half this value, a capacitance of approximately 160.42 μF must be inserted in series with the resistor and inductor.
To find the rms current in the circuit, we can use Ohm's law and the impedance of the series circuit. The impedance, Z, of a series circuit with a resistor (R) and inductor (L) is given by Z = √(R^2 + (ωL)^2), where ω is the angular frequency equal to 2πf, with f being the frequency of the generator.
In this case, the resistor has a value of 1.15 kΩ and the inductor has a value of 575 mH. The frequency of the generator is 1100 Hz. Plugging these values into the impedance formula, we get Z = √((1.15×10^3)^2 + (2π×1100×575×10^-3)^2) ≈ 1.316 kΩ.
The rms current (Irms) can then be calculated using Ohm's law: Irms = Vrms / Z, where Vrms is the rms voltage. Given that Vrms is 14.3 V, we have Irms = 14.3 / 1.316 ≈ 10.88 mA. Therefore, the rms current in the circuit is approximately 10.88 mA.
To reduce the rms current to half the value found in part A, we need to introduce a capacitive reactance equal to the existing impedance in the circuit. The formula for capacitive reactance is Xc = 1 / (2πfC), where C is the capacitance. Rearranging the formula, we have C = 1 / (2πfXc).
Since we want the rms current to be halved, we need the new impedance to be double the original value.
Thus, Xc should be equal to 2Z. Plugging in the values, we get Xc = 2 × 1.316 ≈ 2.632 kΩ.
Solving for C, we have C = 1 / (2π×1100×2.632×10^3) ≈ 160.42 μF.
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The resistivity of a silver wire with a radius of 2.6 mm is 1.59 × 10⁻⁸ m. If the length of the wire is 7 m, what is the resistance of the wire? Give your answer to 4 decimal places in scientific notation.
The resistance of the silver wire with a radius of 2.6 mm is 5.2395 x 10^-3 Ω.
The radius of the wire (r) = 2.6 mm = 2.6 x 10^-3m
Resistivity of silver wire (ρ) = 1.59 x 10^-8 m
Length of the wire (l) = 7 m
Resistance of a wire (R) = ρ l / A, Where
ρ = Resistivity of the wire
l = Length of the wire
A = Area of cross-section of the wire
A = π r^2 = π (2.6 x 10^-3 m)^2= π (6.76 x 10^-6 m^2) = 2.1257 x 10^-5 m^2
Let's substitute the given values in the above formula and calculate the resistance of the wire.
Resistance of the wire (R) = (1.59 x 10^-8 m x 7 m) / (2.1257 x 10^-5 m^2) = 5.2395 x 10^-3 Ω
Hence, the resistance of the silver wire with a radius of 2.6 mm is 5.2395 x 10^-3 Ω.
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A rotating space station is said to create "artificial gravity" –a loosely-defined term used for an acceleration that would be crudely similar to gravity. The outer wall of the rotating space station would become a floor for the astronauts, and centripetal acceleration supplied by the floor would allow astronauts to exercise and maintain muscle and bone strength more naturally than in non-rotating space environments. Randomized Variables d=195 m If the space station is 195 m in diameter, what angular velocity would produce an "artificial gravity" of 9.80 m/s² at the rim? Give your answer in rad's. ω = _____________
The angular velocity that would produce an "artificial gravity" of 9.80 m/s² at the rim of the space station is 0.316 rad/s.
Diameter of space station = 195m
Gravity at the rim = 9.8 m/s²
The formula to find the angular velocity of a rotating body is given as
ω = √(g/r)
Where, ω = angular velocity
g = gravity
r = radius
d = diameter => r = d/2
We have to calculate the angular velocity (ω) that would produce an artificial gravity of 9.80 m/s² at the rim.
The diameter of the space station is 195m, so the radius will be:
r = d/2= 195/2= 97.5 m
The value of gravity (g) is given as 9.80 m/s²
Using the formula,
ω = √(g/r)
ω = √(9.8/97.5)
ω = 0.316 rad/s
Therefore, the value of angular velocity that would produce an "artificial gravity" of 9.80 m/s² at the rim is 0.316 rad/s.
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