A 0.105-m x 0.233-m x 0.329-m block is suspended from a wire and is completely under water. What buoyant force acts on the block

The net torque acting on the see-saw is 49.1 N·m, and it is trying to rotate the see-saw counterclockwise.

To calculate the net torque acting on the see-saw, we need to consider both the forces acting on it and the distance of those forces from the fulcrum. Assuming that the see-saw is in static equilibrium (not moving), the sum of the torques acting on it must be zero.

First, we need to find the position of the fulcrum. Since the see-saw is not balanced, the fulcrum must be closer to the heavier child. Let's call the distance between the left end of the see-saw and the fulcrum "d", and the distance between the fulcrum and the right end of the see-saw "10 - d", since the see-saw is 10 meters long.

To find the position of the fulcrum, we can use the principle of moments:

40 kg × g × d = 50 kg × g × (10 - d)

where g is the acceleration due to gravity ([tex]9.81 \frac{m}{s^{2} }[/tex]).

Solving for d, we get:

d = 5.0 m

So the fulcrum is 5.0 meters from the left end of the see-saw and 5.0 meters from the right end.

Now we can calculate the torques acting on the see-saw. Let's assume that the upward force exerted by the fulcrum is negligible compared to the weight of the children.

The torque due to the 40 kg child is:

[tex]\tau_1[/tex] = (40 kg) × g × (5.0 m)

[tex]\tau_1[/tex] = 196.2 N·m

The torque due to the 50 kg child is:

[tex]\tau_2[/tex] = (50 kg) × g × (10 - 5.0 m)

[tex]\tau_2[/tex] = 245.3 N·m

Note that the torques are in opposite directions since one child is on the left side of the fulcrum and the other is on the right side.

The net torque acting on the see-saw is the sum of these torques:

[tex]\tau_{net}[/tex] = [tex]\tau_2 - \tau_1[/tex]

[tex]\tau_{net}[/tex] = (245.3 N·m) - (196.2 N·m)

[tex]\tau_{net}[/tex] = 49.1 N·m

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A smooth, dense plaster wall is an almost perfect sound reflector.

Among the given statements, the one that is true is that a smooth, dense plaster wall acts as an almost perfect sound reflector. Sound reflection occurs when sound waves bounce off a surface, like a plaster wall. The other statements are not true because:
1. Open-weave fabric applied directly to a wall does not significantly increase sound absorption. To have a noticeable effect, additional sound-absorbing materials or structures would be needed.
2. A thin layer of wallcovering applied to a sound-reflective wall does not significantly reduce the amount of sound reflected, as the wallcovering's thickness and material properties play a crucial role in sound absorption.
3. Resilient flooring materials like vinyl, cork, asphalt, or rubber sheet or tile may help in reducing impact noise but are not particularly effective at absorbing airborne sound.
In summary, out of the given options, a smooth, dense plaster wall is an almost perfect sound reflector.

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A circuit breaker is designed to interrupt the circuit automatically on a predetermined overcurrent without damage to itself when properly applied within its rating.

A circuit breaker is a type of switch that automatically interrupts electrical flow in a circuit when it detects an excess current or short circuit.

It is designed to protect electrical equipment and prevent damage or fire caused by overheating. Circuit breakers come in different types and ratings, each with specific functions and applications.

When selecting a circuit breaker, it is important to consider factors such as the type of electrical load, the maximum current it can handle, and the trip curve that indicates its response time to overcurrent conditions.

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The scattering of visible light is the phenomenon in which light waves are redirected in different directions as they pass through a medium, such as air or water. The amount of scattering that occurs depends on the wavelength of the light and the size of the particles in the medium.

One important optical effect of scattering is the color of the sky. The atmosphere contains tiny particles, such as dust and water droplets, that scatter sunlight in all directions. This scattered light appears blue to the human eye, as blue light has a shorter wavelength and is more easily scattered than other colors in the visible spectrum. When the sun is lower in the sky, the light must pass through more of the atmosphere, resulting in a larger amount of scattering and a shift towards redder hues during sunrise and sunset.

Another effect of scattering is the darkness of the night sky. During the day, the scattering of sunlight by the atmosphere produces a bright sky that overwhelms the light from stars. However, at night, the atmosphere scatters less light, resulting in a darker sky and clearer view of the stars.

Overall, the scattering of visible light plays a crucial role in determining the optical properties of the atmosphere, including the colors of the sky and the darkness of the night sky.

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The speed of the marble will increase at a constant rate due to the constant acceleration of gravity, while the acceleration of the marble remains constant and always directed towards the center of the Earth.

As the marble falls towards the floor, it experiences a constant force due to gravity, directed towards the center of the Earth. This force causes the marble to accelerate downwards, and the magnitude of this acceleration is constant near the surface of the Earth, and is approximately equal to 9.8 meters per second squared (m/s²).

Initially, when the marble is first dropped, its speed is zero and it is at rest. However, as time passes, the acceleration due to gravity causes the speed of the marble to increase. The speed of the marble will increase at a constant rate, and can be calculated using the equation:

v = gt

where v is the speed of the marble, g is the acceleration due to gravity (approximately 9.8 m/s²), and t is the time elapsed.

On the other hand, the acceleration of the marble remains constant and is always directed towards the center of the Earth. Therefore, the acceleration of the marble does not change with time. As the marble falls towards the ground, its speed will continue to increase, while its acceleration remains constant. Eventually, the marble will reach the ground and come to a stop. At this point, the speed of the marble will be zero again, but it will have gained kinetic energy due to its motion and potential energy due to its position relative to the ground.

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A wind farm is constructed from turbines with a rotor, the output of the wind farm per km² in the given scenario is 6.31 MW. The correct option is C.

The output of a wind farm with turbines having a rotor diameter of 50 m, 40% efficiency, spaced 500 m apart in the downwind direction, and 150 m apart in the crosswind direction, in a 10 m/s wind, can be calculated as follows:

First, determine the number of turbines per square kilometer. There are 1000 m in a kilometer, so the number of rows in the downwind direction is 1000 m / 500 m = 2 rows. In the crosswind direction, there are 1000 m / 150 m = 6.67 rows (approximately 7 rows). Therefore, there are 2 x 7 = 14 turbines per square kilometer.

Next, calculate the power output of a single turbine. The formula for wind turbine power output is:

P = 0.5 × ρ × A × V^3 × Cp

Where P is power output, ρ is air density (approximately 1.225 kg/m³), A is the swept area of the rotor (A = π * (D/2)^2, where D is the rotor diameter), V is wind speed, and Cp is the power coefficient (efficiency).

Using the given values, we get A = π * (50/2)^2 ≈ 1963.5 m², and Cp = 0.4. Therefore:

P = 0.5 × 1.225 × 1963.5 × (10)^3 × 0.4 ≈ 480 kW

Finally, multiply the power output of a single turbine by the number of turbines per square kilometer:

Total power output per km² = 480 kW × 14 ≈ 6,720 kW, or 6.72 MW

Thus, the output of the wind farm per km² is closest to option c. 6.31 MW.

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Complete question:

A wind farm is constructed from turbines with a rotor diameter of 50 m and 40% efficiency that are spaced at a distance of 500 m apart in the prevailing downwind direction and 150 m apart in the crosswind direction. In a wind of 10 m/s, what is the output of the wind farm per Km^2?

Select one:

a. 10.14 MW

b. 13.44 MW

c. 6.31 MW

d. 2.58 MW

The focal length of your eye's lens when you look at an object at your near point is 1.62 cm.

To solve this problem, we can use the lens equation:

1/f = 1/di + 1/do

where f is the focal length of the lens, di is the image distance, and do is the object distance.

When you look at an object at your near point, the object distance is 25 cm and the image distance is the distance between your eye's lens and retina, which is 1.73 cm. We can rearrange the lens equation to solve for the focal length:

1/f = 1/di + 1/do

1/f = 1/1.73 + 1/25

1/f = 0.577 + 0.04

1/f = 0.617

Multiplying both sides by f, we get:

f = 1/0.617

f = 1.62 cm

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The copper item loses 540 W of heat each second.

The following formula can be used to determine the heat flux through the copper object:

(kA/L) x (T1-T2) = Q/t

Where Q/t denotes the heat flux (measured in watts), k denotes the thermal conductivity of copper (400 W/mK), A denotes the copper object's surface area (9 m2), L denotes the thickness (0.03 m), and T1 and T2 denote the temperatures of the copper object's two surfaces (343 K and 236 K, respectively).

When we enter the values, we obtain:

Q/t = (400 x 9 / 0.03) x (343 - 236) = 540 W

As a result, 540 W of heat are lost through the copper object each second.

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The fundamental frequency of the organ pipe is 198 Hz.

The fundamental frequency of a closed organ pipe is determined by its length and the speed of sound in the pipe. In this case, the pipe is 0.45 m long and the speed of sound in the pipe is 359 m/s.

To calculate the fundamental frequency, we can use the formula f = (nv)/(2L), where f is the frequency, n is the harmonic number (in this case, n = 1 for the fundamental frequency), v is the speed of sound, and L is the length of the pipe.

Plugging in the given values, we get f = (1*359)/(2*0.45) = 198 Hz. Therefore, the fundamental frequency of the organ pipe is 198 Hz.

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From examining the peak wavelength of the light emitted from a star, we can determine the star's temperature. This is because the peak wavelength of light emitted by a star is directly proportional to its temperature, according to Wien's Law.

Wien's Law states that the wavelength of the peak of the blackbody radiation spectrum is inversely proportional to the temperature of the object emitting the radiation. Therefore, hotter objects emit light with shorter wavelengths, while cooler objects emit light with longer wavelengths.

When a star emits light, its temperature determines the peak wavelength of the emitted light. By analyzing the spectrum of the star's light, astronomers can determine the wavelength at which the light is most intense, and this can be used to estimate the star's temperature. This information can help us learn more about the star's characteristics, such as its size, mass, and age.

In summary, the peak wavelength of light emitted by a star is directly related to its temperature, and by analyzing the star's spectrum, we can determine its temperature and learn more about its properties.

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The volume of the ball is approximately 0.1724 cubic meters.

To find the volume of the ball, we can use the equation:
density = [tex]\frac{mass}{volume}[/tex]
First, let's find the density of the ball. We know that it is submerged in water, so its weight is balanced by the buoyant force. This means that its weight is equal to the weight of the water it displaces.

The weight of the ball is:
Weight = mass x gravity
= 10kg x 9.8[tex]m/s^{2}[/tex]

= 98N

The buoyant force is also equal to the weight of the water displaced, which can be calculated using the formula:
Buoyant force = density x volume x gravity
We can rearrange this formula to solve for density:
Density = [tex]\frac{buoyant force}{ (volume)(gravity)}[/tex]

We know that the ball has an acceleration of 4[tex]m/s^{2}[/tex] when it is released, which means that it is experiencing a net force equal to its weight minus the buoyant force.

We can write this as:
net force = weight - buoyant force
mass x acceleration = mass x gravity - density x volume x gravity
acceleration = acceleration due to gravity - (density x [tex]\frac{volume}{mass}[/tex])

So, 4[tex]m/s^{2}[/tex] = 9.8[tex]m/s^{2}[/tex] - (density x [tex]\frac{volume}{10Kg}[/tex])
Hence, density = (9.8[tex]m/s^{2}[/tex] - 4[tex]m/s^{2}[/tex]) x [tex]\frac{10kg}{volume}[/tex]
density = [tex]\frac{58N/m^{3}}{volume}[/tex]=1000 kg/m³(density of water)

Putting the value of density we get,

[tex]\frac{58N/m^{3}}{volume}[/tex] = [tex]\frac{10kg}{volume}[/tex]
= [tex]\frac{10kg }{58 N/m^{3} }[/tex]
= 0.1724 m³

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When the police car is approaching the observer, the frequency of the siren heard by the observer is higher than the actual frequency due to the Doppler effect. Using the formula for Doppler effect, we can calculate the new frequency:
f' = f (v + v_obs) / (v + v_sound)

Where:
f = actual frequency of the siren (750 Hz)
v = velocity of the police car (32.0 m/s)
v_obs = velocity of the observer (0 m/s)
v_sound = velocity of sound through air (343 m/s)
Plugging in the values, we get:
f' = 750 (32.0 + 0) / (32.0 + 343)
f' = 750 (32.0 / 375)
f' = 64 Hz
Therefore, the frequency from the perspective of the observer when the police car is approaching is 64 Hz.

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The total energy of the system is 0.832 Joules.

To find the total energy of a 300-g mass attached to a horizontal spring with a force constant of 260 N/m and oscillating along a frictionless horizontal surface with an amplitude of 8.0 cm, we will use the formula for the potential energy stored in a spring at maximum compression or extension, which is given by:

Potential Energy (PE) = (1/2) * k * A^2

where k is the force constant of the spring (260 N/m), and A is the amplitude of oscillation (8.0 cm, which needs to be converted to meters).

Convert the amplitude to meters.
8.0 cm = 0.08 m

Calculate the potential energy stored in the spring at maximum compression or extension.
PE = (1/2) * 260 N/m * (0.08 m)^2
PE = 0.5 * 260 * 0.0064
PE = 130 * 0.0064
PE = 0.832 J (Joules)

Since the oscillating mass and spring system is a simple harmonic oscillator, the total energy is conserved and is equal to the potential energy at maximum compression or extension. Therefore, the total energy of the system is 0.832 Joules.

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On the initial climbout after takeoff with the autopilot engaged, you encounter icing conditions. In this situation, it is recommended that A.  the given situation, it is recommended that the vertical speed mode be disconnected.

Vertical speed mode is a flight control mode used in aircraft autopilot systems, which controls the aircraft's vertical speed by adjusting the pitch angle of the aircraft's wings, using data from vertical speed sensors and other instruments

Autopilot is a system used in aircraft, ships, and other vehicles to automatically control and maintain their course, speed, altitude, and other parameters, with minimal human intervention, using sensors and computerized control systems.

According to the given information:

In the given situation, it is recommended that the vertical speed mode be disconnected. Trusting the autopilot to handle icing conditions may not be safe as it may not have the capability to detect and respond appropriately to the level of icing. Disengaging the vertical speed mode will allow the aircraft to maintain a constant airspeed and prevent the autopilot from potentially increasing the rate of climb, which could lead to ice buildup on the wings. Therefore, it is important for pilots to be aware of the icing conditions and take appropriate actions to ensure the safety of the flight.

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Proxima Centauri is approximately 4.014 × 10^16 meters away from us.

The distance to Proxima Centauri, the nearest star to our solar system, is approximately 4.3 light-years. Since light travels at a speed of approximately 299,792,458 meters per second in a vacuum, we can calculate the distance to Proxima Centauri in meters as follows:

distance = speed × time

where speed is the speed of light in a vacuum and time is the time it takes light to travel to Proxima Centauri, which is 4.3 years.

distance = (299,792,458 meters/second) × (4.3 years) × (365.25 days/year) × (24 hours/day) × (60 minutes/hour) × (60 seconds/minute)

distance ≈ 4.014 × 10^16 meters

Therefore, Proxima Centauri is approximately 4.014 × 10^16 meters away from us.

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The received signal power at the base station is approximately 7.95 × 10⁻¹³watts.

The received signal power at the base station when the gain of the antennas on both the base station and phone is 0 dB can be calculated using the Friis transmission equation:

Pr = PtGtGr(λ/4πd[tex])^2[/tex]

where Pr is the received power, Pt is the transmitted power, Gt is the gain of the transmitting antenna, Gr is the gain of the receiving antenna, λ is the wavelength of the signal, and d is the distance between the transmitting and receiving antennas.

Assuming that the transmitted power is 1 watt (0 dBW) and the wavelength is 0.2 meters (corresponding to a frequency of 1.5 GHz), and setting the antenna gains to 0 dB (i.e., Gt = Gr = 1), we can calculate the received signal power at the base station when the phone is located 1 kilometer away:

Pr = PtGtGr(λ/4πd[tex])^2[/tex]

Pr = 1 × 1 × 1 × (0.2/4π×1000[tex])^2[/tex]

Pr = 7.95 × 10[tex]^-13[/tex]watts

So the received signal power at the base station is approximately 7.95 × 10⁻¹³watts.

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all galaxies outside of our local group are moving away from our own due to the expansion of the universe. This means that the space between galaxies is stretching, causing them to move away from each other. This phenomenon is known as the Hubble expansion, named after the astronomer Edwin Hubble who first observed it in the 1920s.

the Hubble expansion is caused by the energy of the universe itself. This energy is sometimes referred to as dark energy, and it is thought to be the force behind the accelerating expansion of the universe. As the universe expands, galaxies are carried along with it, causing them to move away from each other.

the reason why all galaxies outside of our local group are moving away from our own is due to the Hubble expansion, caused by the energy of the universe itself. This is a fundamental aspect of our understanding of the universe and has important implications for our theories of its origin and evolution.


This observation was first made by astronomer Edwin Hubble in the 1920s, leading to the formulation of Hubble's Law. Hubble's Law states that the farther a galaxy is from us, the faster it is moving away from us. This phenomenon occurs because the fabric of space itself is expanding, causing galaxies to move apart from each other. The expansion of the universe is driven by a force known as dark energy, which works against the force of gravity to push galaxies apart.

the observation that galaxies outside of our local group are moving away from us can be explained by the expansion of the universe and the influence of dark energy. This observation is supported by Hubble's Law, which demonstrates the relationship between a galaxy's distance and its velocity as it moves away from us.

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Of the possibilities mentioned, gamma rays have the highest energy per photon.

A photon's energy is directly inversely correlated with its wavelength and directly correlated with its frequency. In comparison to the other possibilities, gamma rays have the highest frequency and the shortest wavelength, meaning they contain the largest energy per photon. As opposed to the other possibilities, microwaves have the lowest frequency and the longest wavelength, which results in the lowest energy per photon. The option with the highest energy per photon is gamma rays. This is due to the fact that a photon's energy is inversely proportional to its wavelength and directly proportional to its frequency. In comparison to the other possibilities, gamma rays have the highest frequency and shortest wavelength, meaning they contain the largest energy per photon. Because they have longer wavelengths and lower frequency than gamma rays, visible light and infrared carry less energy. The energy of ultraviolet radiation is more than that of infrared and visible light, although it is still lower than that of gamma rays. Given the choices, microwaves have the lowest energy because they have the longest wavelength and lowest frequency.

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Spiral arms in a galaxy appear bright because they contain far more stars than other parts of the galactic disk.

These stars are densely packed together, and their combined light produces a bright and distinctive pattern. Additionally, the spiral arms contain more hot young stars than other parts of the disk, which also contributes to their brightness.

These young stars are typically formed from the dense molecular clouds that are present in the spiral arms. These clouds provide the necessary raw materials for star formation, making the spiral arms the primary areas of star birth within the disk of the galaxy.

Overall, the high concentration of stars and young hot stars, along with the abundance of molecular clouds, are the reasons why spiral arms appear so bright and distinct in a galaxy.

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The work done for the experiment is 131.94 Joules (since 1 Newton times meter equals 1 Joule).

The work done for the experiment can be calculated by multiplying the force applied with the distance traveled. In this case, the average force applied was 18 Newtons, and the distance traveled was not provided. However, we can calculate the distance traveled by dividing the area under the curve by the force applied.

Therefore, the distance traveled would be 131.88 N*m / 18 N, which equals 7.33 meters.

Finally, we can calculate the work done by multiplying the force and distance, which would be 18 N * 7.33 m = 131.94 Joules.

Therefore, the work done for the experiment is 131.94 Joules.

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The right-hand rule for magnetic force on moving charges is fingers in the direction of the magnetic field and the thumb in the direction of B. The motion of the protons.

When applying the right-hand rule, the palm represents the direction of the force on a positively charged particle (like protons), and the back of the hand represents the force on a negatively charged particle (like electrons). This rule helps visualize the interactions between charged particles and magnetic fields, and it is essential for understanding and solving problems in electromagnetism.

In summary, the right-hand rule for magnetic force on moving charges involves pointing your fingers in the direction of the magnetic field and your thumb in the direction of the motion of the protons (or charged particles). This allows you to determine the direction of the force experienced by the moving charges in a magnetic field. Therefore the correct option B

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The right hand rule for magnetic force on moving charges is fingers in the direction of the magnetic field and the thumb in the direction of the ___.

a. Force

b. motion of the protons

c. Coulombs

d. Current

e. None.

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There will be a minimum time delay of 2.54 seconds between when a question is asked and when a response is received from the astronaut on the moon.

In order to determine the minimum time delay in communicating with an astronaut on the moon, we need to calculate the time it takes for the signal to travel from Earth to the moon and back.

The speed of light in a vacuum is approximately 3.00 x 10⁸ m/s. The distance between the Earth and the Moon is 3.8 x 10⁸ m. Therefore, the time it takes for a signal to travel from Earth to the moon is:

t1 = d / v = (3.8 x 10⁸ m) / (3.00 x 10⁸ m/s) = 1.27 seconds

Similarly, the time it takes for a signal to travel from the moon to Earth is also 1.27 seconds. Therefore, the total minimum time delay in communicating with an astronaut on the moon is:

t = t1 + t2 = 1.27 s + 1.27 s = 2.54 seconds

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The oscillation frequency of the circuit will be around 2124 Hz.

The formula f = 1/(2(LC)) determines the resonant frequency of a series RLC circuit. With the supplied values plugged in, we obtain f = 1/(2(1.0x10-6 x 15x10-3)) 2124 Hz.

The inductor and capacitor in this circuit function as an LC oscillator, storing and exchanging energy. The following formula can be used to determine the frequency of oscillation:

f = 1 / (2π√LC)

L is the inductance in henries, C is the capacitance in farads, and f is the frequency in hertz.

When we enter the provided values, we obtain:

f = 1 / (1 x 10-6 F x 15 x 10-3 H)

f = 1 / (2π x 3.87 x 10^-3)

f ≈ 41 kHz

The circuit will therefore oscillate at a frequency of about 41 kHz.

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The average angular velocity of the lathe is 3.75 rad/s.

First, we can find the final angular velocity of the lathe at the end of the constant velocity phase by using the kinematic equation:

ωf = ωi + αt

where ωi is the initial angular velocity (which is zero in this case), α is the angular acceleration ([tex]0.60 rad/s^2)[/tex], and t is the time it takes to reach the constant velocity (10 s):

ωf = 0 + 0.60 rad/s^2 * 10 s = 6.0 rad/s

Next, we can use the constant velocity phase to find the total angle turned by the lathe during this period, which is given by:

θ2 = ω * t2

where ω is the constant angular velocity during this period (which is also 6.0 rad/s) and t2 is the time period (20 s):

θ2 = 6.0 rad/s * 20 s = 120 rad

Finally, we can use the deceleration phase to find the total angle turned by the lathe during this period, which is given by:

θ3 = ωf * t3 + (1/2) * (-α) * t3^2

where ωf is the final angular velocity (6.0 rad/s), α is the angular deceleration (-0.60 rad/s^2), and t3 is the time period (10 s):

θ3 = 6.0 rad/s * 10 s + (1/2) * (-0.60 rad/s^2) * (10 s)^2 = 30 rad

The total angle turned by the lathe is therefore:

Δθ = θ1 + θ2 + θ3 = 0 + 120 rad + 30 rad = 150 rad

The total time taken by the lathe is:

Δt = t1 + t2 + t3 = 10 s + 20 s + 10 s = 40 s

Therefore, the average angular velocity of the lathe is:

ω_avg = Δθ / Δt = 150 rad / 40 s = 3.75 rad/s

So the average angular velocity of the lathe is 3.75 rad/s.

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Full  Question: A lathe, initially at rest, accelerates at 0.60 rad/s^2 for 10 s, then runs at a constant angular velocity for 20 s, and finally decelerates uniformly for 10 s to come to a complete stop. What is its average angular velocity?

A. The woman has a farsighted vision problem (also called hyperopia).

B.The focal length of eyeglass lenses needed to correct her problem is 12.5 cm.

C. The man has a nearsighted vision problem (also called myopia).

D. The focal length of eyeglass lenses needed to correct his problem is 30 cm.

A. The woman has a farsighted vision problem (also called hyperopia). This is because she can only produce sharp images on her retina for objects that are relatively far from her eyes (150 cm to 25 cm).
B. To correct her farsightedness, we can use the lens formula: 1/f = 1/u + 1/v. Here, f is the focal length of the eyeglass lens, u is the object distance (25 cm, the closest distance she can see clearly), and v is the image distance (the desired near point of 25 cm). Solving for f:
1/f = 1/25 + 1/25
1/f = 2/25
f = 25/2 = 12.5 cm
The focal length of eyeglass lenses needed to correct her problem is 12.5 cm (converging lenses).
C. The man has a nearsighted vision problem (also called myopia). This is because he can only produce sharp images on his retina for objects that are 3.0 m or more from his eyes.
D. To correct his nearsightedness and allow him to read a book held 30 cm from his eyes, we again use the lens formula:
1/f = 1/u + 1/v
In this case, u is the object distance (300 cm, as he can see clearly at 3.0 m), and v is the desired near point (30 cm). Solving for f:
1/f = 1/300 + 1/30
1/f = 1/30
f = 30 cm
The focal length of eyeglass lenses needed to correct his problem is 30 cm (diverging lenses).

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Answer:

The power (P) formula for DC circuits is:

P = V x I

where P is the power in watts, V is the voltage in volts, and I is the current in amperes.

To find the current I, we can rearrange the formula as:

I = P / V

Given that the city needs 10 MW of power, and the voltage is 100 V, we can calculate the current as:

I = 10,000,000 W / 100 V = 100,000 A

Now, to calculate the resistance (R) of the copper wire, we can use the formula:

R = ρ x L / A

where ρ is the resistivity of copper, L is the length of the wire, and A is the cross-sectional area of the wire.

The resistivity of copper is approximately 1.68 x 10^-8 Ω m.

The cross-sectional area of the wire can be calculated from its diameter (d) as:

A = π x (d/2)^2

Assuming the wire has a diameter of 1 cm, we can calculate the cross-sectional area as:

A = π x (0.5 cm)^2 = 0.785 cm^2 = 7.85 x 10^-5 m^2

Now we can calculate the resistance of the wire as:

R = 1.68 x 10^-8 Ω m x 10,000 m / 7.85 x 10^-5 m^2 = 2.15 Ω

Finally, using Ohm's law (V = IR), we can calculate the voltage drop (V) across the wire as:

V = IR = 100,000 A x 2.15 Ω = 215,000 V

This means that the voltage at the power source needs to be 215,100 V to supply the city with 10 MW of power over a 10 km copper wire with a diameter of 1 cm.

a copper wire 10 km long that needs to supply a city with 10 Mwatts of power--say from a waterfall. If the city ran on DC power, with voltages of 100 V, the current running through the copper wire would be 100,000 amperes (A).

current refers to the flow of electric charge through a conductor. It is measured in amperes (A) and is defined as the rate of flow of charge per unit time.

Power is the rate at which energy is transferred or work is done. It is measured in watts (W) and is calculated as the product of voltage and current in an electrical circuit.

According to the given information:

To calculate the current running through the copper wire, we need to use Ohm's Law, which states that current (I) is equal to power (P) divided by voltage (V).
First, we need to convert the power from megawatts to watts, so 10 MW is equal to 10,000,000 watts.
Next, we can use the formula:
I = P / V
I = 10,000,000 / 100
I = 100,000
Therefore, the current running through the copper wire would be 100,000 amperes (A).
It's important to note that a wire of that length and with such a high current would need to be properly designed and loaded with the appropriate content to prevent overheating and other safety hazards.

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The negative value for Kmax indicates that the electron is bound to the tungsten surface and cannot be ejected. The speed of the fastest electrons ejected from a tungsten surface [tex]$K_{max} = -6.08 \times 10^{-19} \text{ J}$[/tex].

When light with photon energy greater than or equal to the work function of a metal surface shines on it, electrons can be ejected from the surface. The maximum kinetic energy of the ejected electrons is given by the difference between the photon energy and the work function, and can be calculated using the equation:

Kmax = hν - φ

where Kmax is the maximum kinetic energy of the ejected electrons, h is Planck's constant, ν is the frequency of the incident light, and φ is the work function of the metal.

In this case, the photon energy of the incident light is 5.99 eV, which is greater than the work function of tungsten, which is 4.50 eV. Therefore, electrons can be ejected from the tungsten surface, and the maximum kinetic energy of the ejected electrons can be calculated as follows:

[tex]$K_{max} = (6.626 \times 10^{-34} \text{ J s}) \times (4.53 \times 10^{14} \text{ Hz}) - (4.50 \text{ eV} \times 1.602 \times 10^{-19} \text{ J/eV})$[/tex]

[tex]$K_{max} = 1.13 \times 10^{-19} \text{ J} - 7.21 \times 10^{-19} \text{ J}$[/tex]

[tex]$K_{max} = -6.08 \times 10^{-19} \text{ J}$[/tex]

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To compare the starting coordinate of a touch with the ending coordinate of a touch, you will need to record both coordinates and then calculate the difference between them.

One way to do this is to use the touch screen coordinates provided by the device's operating system. When a touch is detected, the operating system typically provides information about the touch event, including the starting and ending coordinates of the touch.

You can then use this information to calculate the difference between the starting and ending coordinates. The difference can be calculated in either the x or y direction, or both.

For example, if you want to calculate the difference in the x direction, you can subtract the starting x-coordinate from the ending x-coordinate. If you want to calculate the difference in the y direction, you can subtract the starting y-coordinate from the ending y-coordinate.

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The smallest separation between the two slits that will produce a second-order maximum for some visible light is 1400 nanometers (nm).

To determine the smallest separation between two slits that will produce a second-order maximum for some visible light, we can use the formula for the condition of constructive interference in a double-slit experiment.

The condition for constructive interference at a given angle θ can be expressed as:

d * sin(θ) = m * λ,

where d is the slit separation, θ is the angle of the maximum, m is the order of the maximum (in this case, m = 2 for the second-order maximum), and λ is the wavelength of the light.

For the second-order maximum, m = 2. We can rearrange the formula to solve for the slit separation (d):

d = (2 * λ) / sin(θ).

To find the smallest separation, we need to consider the largest possible wavelength in the visible spectrum, which is 700 nm (red light). Thus, we can substitute λ = 700 nm into the formula.

d = (2 * 700 nm) / sin(θ).

The smallest separation occurs when sin(θ) is at its maximum value of 1. Therefore, we can substitute sin(θ) = 1 into the formula.

d = (2 * 700 nm) / 1 = 1400 nm.

Hence, the smallest separation between the two slits is 1400 nanometers (nm).

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The force per unit length experienced by the two long parallel wires separated by 2.3 cm and carrying the same current is 0.3 n/m. We can use this information to find the value of the current. The force between two long parallel wires carrying currents is given by the formula F = (μ₀/4π) * (2I₁I₂L/d)

The force per unit length, I₁ and I₂ are the currents in the wires, L is the length of the wires, d is the distance between the wires, and μ₀ is the permeability of free space. We are given F = 0.3 n/m, d = 2.3 cm = 0.023 m, and I₁ = I₂ = I (since the wires are carrying the same current). We know that μ₀/4π = 10^-7 Tm/A.  Substituting the given values in the formula, we get 0.3 n/m = (10^-7 Tm/A) * (2I² * L/0.023 m Simplifying the equation, we getI² = (0.3 n/m * 0.023 m)/(2 * 10^-7 Tm/A)I² = 3.45 A²Taking the square root, we get I = 1.86 A Therefore, the current in the two long parallel wires separated by 2.3 cm and experiencing a force per unit length of 0.3 n/m is 1.86 A.

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