What is the current (I) through an 80 toaster when it operating on 220V?

Answers

Answer 1

the current (I) through an 80 W toaster when it operating voltage on 220V is 0.36 A.

Power is the rate of doing work. Power is also defined as work divided by time. i.e. Power = Work ÷ Time. Its SI unit is Watt denoted by letter W. Watt(W) means J/s or J.s-1. Something makes work in less time, it means it has more power. Work is Force times Displacement. Dimension of Power is [M¹ L² T⁻³]. The Electric Power  is current times voltage.

P = VI

Putting all the values,

80W = 220×I

I = 80/220

I = 0.36 A

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Related Questions

As the Sun evolves into a red giant, where will we need to move to within our Solar System if humanity still exists?
Mars
our Moon
Mercury
the moons of the outer planets

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As the Sun evolves into a red giant, if humanity still exists, we would need to move to the moons of the outer planets, such as Jupiter's moon Europa or Saturn's moon Titan.

As the Sun evolves into a red giant, its outer layers will expand and engulf the inner planets, including Mars, our Moon, and Mercury. Therefore, for humanity to survive, we would need to relocate to more distant locations within our Solar System. The moons of the outer planets, such as Europa (a moon of Jupiter) or Titan (a moon of Saturn), present potential options. These moons have diverse environments, including subsurface oceans and thick atmospheres, which could potentially provide resources and protection for human colonization. However, extensive technological advancements would be necessary to enable sustainable habitation and adaptation to the unique conditions of these outer moons.

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does the satellite experience any torque about the center of the planet? yes no

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Yes, the satellite experiences a torque about the center of the planet. This torque is caused by the gravitational force of the planet on the satellite.

The torque is perpendicular to the plane of the orbit and is known as the orbital torque.The magnitude of the orbital torque is equal to the product of the gravitational force and the perpendicular distance between the satellite and the center of the planet. As the satellite moves around the planet, the direction of the torque changes constantly, but the magnitude remains the same.

The torque causes the angular momentum of the satellite to change, which in turn affects the satellite's motion. For example, if the torque is increased, the angular momentum will increase, causing the satellite to move to a higher orbit. Conversely, if the torque is decreased, the angular momentum will decrease, causing the satellite to move to a lower orbit.

Therefore, the torque experienced by a satellite about the center of the planet is an important factor that affects the satellite's motion and orbit.

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A street performer tosses a ball straight up into the air (event 1) and then catches it in his mouth (event 2).For each of the following observers, state whether the time they measure between these two events is the proper time or the dilated time.-the street performer-a stationary observer on the other side of the street-a person sitting at home watching the peformance on tv-a person observing the performance from a moving car

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The proper time is the time interval between two events that occur at the same location in space, while the dilated time is the time interval measured by an observer who is moving relative to the events.

For the events of the street performer tossing a ball straight up into the air and then catching it in his mouth, the time measured by each observer is as follows:

The street performer: Since the events are happening to the performer, he can measure the proper time between the two events.

A stationary observer on the other side of the street: The observer is not moving relative to the events, and is located at the same position for both events, so he can measure the proper time between the two events.

A person sitting at home watching the performance on TV: The TV signal takes time to travel to the person's TV set, so there is a delay between the actual events and the time the person sees them.

The person is not located at the same position for both events, so he cannot measure the proper time between the two events.

A person observing the performance from a moving car: The person is moving relative to the events, so he will measure the dilated time between the two events.

This is because the events appear to be happening at different positions due to the motion of the observer, and the time interval will appear longer than the proper time.

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fluid travels through a hydraulic line at 8 meters per second. if the cross-sectional area of the hydraulic actuator is one-tenth that of the line, at what speed does fluid push the actuator?

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The fluid pushes the hydraulic actuator at a speed of 80 meters per second.

According to the principle of continuity, the mass flow rate of fluid is constant at any point in a closed hydraulic system. This means that the product of the fluid velocity and the cross-sectional area of the pipe must be equal to the product of the fluid velocity and the cross-sectional area of the hydraulic actuator.

Let's denote the velocity of the fluid pushing the actuator as v_a and the cross-sectional area of the hydraulic actuator as A_a. Since the cross-sectional area of the hydraulic line is 10 times that of the actuator, we can write:

A_line = 10*A_a

The mass flow rate is given by:

mass flow rate = density * velocity * area

where density is the density of the fluid, which we'll assume to be constant.

Since the mass flow rate is constant, we can write:

density * velocity_line * A_line = density * v_a * A_a

Canceling out the density term and substituting A_line = 10*A_a, we get:

velocity_line * 10*A_a = v_a * A_a

Simplifying and solving for v_a, we get:

v_a = velocity_line * 10

Substituting the given value of velocity_line = 8 m/s, we get:

v_a = 8 m/s * 10 = 80 m/s

Therefore, the fluid pushes the hydraulic actuator at a speed of 80 meters per second.

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a small, square loop carries a 41 a current. the on-axis magnetic field strength 48 cm from the loop is 6.8 nt .What is the edge length of the loop?

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The edge length of the small, square loop carrying a 41 A current is approximately 2.88 mm. This is found by using the formula for magnetic field strength and solving for the area of the loop

To solve this problem, we need to use the formula for the magnetic field created by a current-carrying loop at a distance from the center of the loop. The formula is:
B = (μ0 * I * A) / (2 * R)
Where B is the magnetic field strength, μ0 is the permeability of free space (4π × 10^-7 T·m/A), I is the current in the loop, A is the area of the loop, and R is the distance from the center of the loop to the point where the magnetic field is measured.
In this problem, we know that the current in the loop is 41 A, the magnetic field strength at a distance of 48 cm from the loop is 6.8 nT (which is 6.8 × 10^-9 T), and the distance from the center of the loop to the point where the magnetic field is measured is R = 48 cm = 0.48 m.
Solving for the area of the loop, we get:
A = (2 * R * B) / (μ0 * I)
A = (2 * 0.48 m * 6.8 × 10^-9 T) / (4π × 10^-7 T·m/A * 41 A)
A = 8.32 × 10^-6 m^2
Now, since the loop is square, we can find the length of one of its edges by taking the square root of its area:
Edge length = √A
Edge length = √(8.32 × 10^-6 m^2)
Edge length = 0.00288 m or 2.88 mm
Therefore, the edge length of the loop is approximately 2.88 mm.
The edge length of the small, square loop carrying a 41 A current is approximately 2.88 mm. This is found by using the formula for magnetic field strength and solving for the area of the loop, which is then used to find the length of one of its edges.

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Stars are mostly made of
A) hydrogen and helium
B) pure hydrogen
C) carbon, hydrogen, oxygen and nitrogen
D) an equal mixture of all elements

Answers

Answer:

Stars are mostly made of Hydrogen and helium. The hydrogen fusion process, which occurs in the core of stars, releases an enormous amount of energy and produces helium as a byproduct.  Option(A) .

Explanation:

This process is what powers the star and allows it to shine. Other elements are also present in stars, but in much smaller amounts compared to hydrogen and helium.

These heavier elements are mostly formed through nuclear fusion processes that occur in the later stages of a star's life or during supernova explosions.

Fusion is a nuclear process where atomic nuclei are combined to form a heavier nucleus, releasing a large amount of energy. This process occurs at extremely high temperatures and pressures, such as in the cores of stars, and is the source of energy for stars and hydrogen bombs.

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A water wave is called a deep-water wave if the water's depth is greater than or equal to one-quarter of the wavelength. The speed of a deep-water wave depends on its wavelength: v=(g1/(28(1/2) Longer wavelengths travel faster. Consider a diving pool that is 6.0 m deep and 12.0 m wide. Standing water waves can set up across the width of the pool. a) Draw the first three standing wave modes for water in the pool. (Hint: What are the boundary conditions at x = 0 and x =L? Can water slosh up and down at the side of the pool?) b) What are the wavelengths for each of these waves? Do they satisfy the condition for being deep-water waves? c) What are the wave speeds for each of these waves? d) Derive a general expression for the frequencies of the possible standing waves. Your expression should be in terms of m,g and L. e) What are the oscillation periods of the first three standing wave modes?

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The boundary conditions at x = 0 and x = L are that the wave amplitude must be zero, since water cannot slosh up and down at the sides of the pool.

a) The first three standing wave modes for water in the pool are:

Mode 1: A single antinode at the center of the pool, with two nodes at the ends.

Mode 2: Two antinodes with one node at the center of the pool.

Mode 3: Three antinodes with two nodes in the pool.

The boundary conditions at x = 0 and x = L are that the wave amplitude must be zero, since water cannot slosh up and down at the sides of the pool.

b) The wavelengths for each of these waves are:

Mode 1: λ = 2L

Mode 2: λ = L

Mode 3: λ = (2/3)L

To check if they satisfy the condition for being deep-water waves, we calculate d = 6.0 m / 4 = 1.5 m for each wavelength:

Mode 1: d = 3.0 m > 1.5 m, so it's a deep-water wave.

Mode 2: d = 1.5 m = 1.5 m, so it's a marginal case.

Mode 3: d = 1.0 m < 1.5 m, so it's not a deep-water wave.

c) The wave speeds for each of these waves can be calculated using the given formula:

v = (gλ/28^(1/2))

where g is the acceleration due to gravity (9.81 m/s^2).

Mode 1: v = (9.81 m/s^2 * 2(12.0 m))/28^(1/2) = 5.03 m/s

Mode 2: v = (9.81 m/s^2 * 12.0 m)/28^(1/2) = 3.52 m/s

Mode 3: v = (9.81 m/s^2 * 2/3(12.0 m))/28^(1/2) = 2.56 m/s

d) The general expression for the frequencies of the possible standing waves can be derived from the wave speed formula:

v = λf

where f is the frequency of the wave.

Rearranging the formula, we get:

f = v/λ = g/(28^(1/2)λ)

The frequency depends on m, which is the number of antinodes in the wave, and L, which is the width of the pool. Since the wavelength is related to the width of the pool and the number of antinodes, we can write:

λ = 2L/m

Substituting this into the frequency formula, we get:

f = (g/28^(1/2))(m/2L)

e)The oscillation periods of the first three standing wave modes are:

Mode 1: T = 4.77 seconds

Mode 2: T = 1.70 seconds

Mode 3: T = 2.95 seconds

These values were calculated using the formula T = 1/f, where f is the frequency of the wave. The frequencies were derived from the wave speed formula and the wavelength formula, and they depend on the number of antinodes and the width of the pool. The oscillation period is the time it takes for the wave to complete one cycle of oscillation.

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An oil film (n = 1.46) floats on a water puddle. you notice that green light (λ = 544 nm) is absent in the reflection.What is the minimum thickness of the oil film? Express your answer to three significant figures.

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An oil film (n = 1.46) floats on a water puddle. you notice that green light (λ = 544 nm) is absent in the reflection. The minimum thickness of the oil film is approximately 105.6 nm.

The minimum thickness of the oil film can be determined using the equation for constructive interference:

2nt = mλ

where n is the refractive index of the oil film, t is the thickness of the oil film, m is an integer representing the order of the interference maximum, and λ is the wavelength of the light.

Since green light (λ = 544 nm) is absent in the reflection, this means that the minimum thickness of the oil film corresponds to destructive interference of the green light.

For destructive interference, the path difference between the reflected rays from the top and bottom surfaces of the oil film must be λ/2.

Thus, we can write:

2nt = (2m + 1)λ/2

Simplifying this expression and plugging in the given values, we get:

t = [(2m + 1)λ/4n]

For the first-order interference (m = 1), the minimum thickness of the oil film is:

t = [(2×1 + 1)×544 nm/4×1.46] ≈ 105.6 nm

Therefore, the minimum thickness of the oil film is approximately 105.6 nm.

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on mars, a rock is launched into the air from the ground with an initial velocity of 144 ft/sec. the acceleration due to gravity on mars is -12 feet per second per second
(a) what is the maximum height attained by the arrow?
(b) With what velocity will the arrow hit mars?

Answers

(a) To find the maximum height attained by the rock, we can use the kinematic equation:  vf^2 = vi^2 + 2ad where vf is the final velocity (0 since the rock reaches its maximum height and stops), vi is the initial velocity (144 ft/sec), a is the acceleration (-12 ft/sec^2), and d is the distance traveled (which is the maximum height attained).

Plugging in the values:

0 = (144 ft/sec)^2 + 2(-12 ft/sec^2)d

Solving for d:

d = (144 ft/sec)^2 / (2 x 12 ft/sec^2)

d = 864 feet

Therefore, the maximum height attained by the rock is 864 feet.

(b) To find the velocity with which the rock hits mars, we can use the same kinematic equation:

vf^2 = vi^2 + 2ad

where vf is the final velocity (which is what we're looking for), vi is the initial velocity (144 ft/sec), a is the acceleration (-12 ft/sec^2), and d is the distance traveled (which is the same as the maximum height attained, 864 feet).

Plugging in the values:

vf^2 = (144 ft/sec)^2 + 2(-12 ft/sec^2)(864 feet)

Solving for vf:

vf = -48 ft/sec or 48 ft/sec

We get two solutions because the velocity could be positive or negative, depending on whether the rock is moving up or down when it hits the ground. However, since the initial velocity is upwards, we can assume that the rock will hit the ground with a negative velocity.

Therefore, the rock will hit mars with a velocity of -48 ft/sec.
Hi! I'm happy to help you with your question about a rock launched on Mars.

(a) To find the maximum height attained by the rock, we need to use the following formula:
h = (v^2 - u^2) / (2 * a)

where h is the height, v is the final velocity (0 ft/sec at maximum height), u is the initial velocity (144 ft/sec), and a is the acceleration due to gravity (-12 ft/sec²).

Using the formula, we get:
h = (0^2 - 144^2) / (2 * -12)
h = (-20736) / (-24)
h = 864 ft

The maximum height attained by the rock is 864 feet.

(b) To find the velocity with which the rock will hit Mars, we'll use the same formula, but with a different final height (h = 0, since it hits the ground).

0 = (v^2 - 144^2) / (2 * -12)

Multiplying both sides by (2 * -12) gives:
0 = v^2 - 20736

Now, add 20736 to both sides:
20736 = v^2

Finally, take the square root of both sides:
v ≈ ±144 ft/sec

Since the rock is falling back to the ground, we'll take the negative value: -144 ft/sec.

The rock will hit Mars with a velocity of approximately -144 feet per second.

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question 1 assume that the atmospheric pressure today is exactly 1.00 atm. what is the pressure at point a, located h = 8 m under the surface of a lake, in atmospheres?

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The pressure at point A, located 8 m under the surface of the lake, is approximately 2.77 atm.

The pressure at a certain depth in a liquid is given by the formula:

P = Po + ρgh

Where P is the pressure at the given depth, Po is the atmospheric pressure (1.00 atm in this case), ρ is the density of the liquid (which we assume to be water, with a density of 1000 kg/m³), g is the acceleration due to gravity (9.81 m/s²), and h is the depth of the point below the surface of the liquid.

At point A, which is located 8 m under the surface of the lake, the pressure can be calculated as:

P = 1.00 atm + (1000 kg/m³)(9.81 m/s²)(8 m)

P = 1.00 atm + 78440 Pa

P = 2.77 atm (approximately)

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Two ideal inductors, L1 and L2, have zero internal resistance and are far apart, so their magnetic fields do not influence each other. (a) Assuming these inductors are connected in series, show that they are equivalent to a single ideal inductor having Leq = L1 + L2. (b) Assuming these same two inductors are connected in parallel, show that they are equivalent to a single ideal inductor having 1/Leq = 1/L1 + 1/L2. (c) What If? Now consider two inductors L1 and L2 that have nonzero internal resistances R1 and R2, respectively. Assume they are still far apart, so their mutual inductance is zero, and assume they are connected in series. Show that they are equivalent to a single inductor having Leq = L1 + L2 and Req = R1 + R2. (d) If these same inductors are now connected in parallel, is it necessarily true that they are equivalent to a single ideal inductor having 1/Leq = 1/L1 + 1/L2 and 1/Req = 1/R1 + 1/R2?

Answers

When Two ideal inductors, L1 and L2, have zero internal resistance and are far apart, so their magnetic fields do not influence each other

(a) When two ideal inductors L1 and L2 with zero internal resistance are connected in series, their inductances add up. This is because the total magnetic flux linkage in the combined system is equal to the sum of the individual flux linkages. Mathematically, Leq = L1 + L2, so they are equivalent to a single ideal inductor with inductance Leq.

(b) When the same inductors are connected in parallel, their equivalent inductance can be found using the formula for parallel connected components: 1/Leq = 1/L1 + 1/L2. This formula shows that the reciprocal of the equivalent inductance is equal to the sum of the reciprocals of the individual inductances.

(c) For inductors L1 and L2 with nonzero internal resistances R1 and R2, when connected in series, their equivalent inductance remains Leq = L1 + L2, as mutual inductance is still zero. The equivalent resistance in series connection is the sum of individual resistances: Req = R1 + R2.

(d) When these inductors with internal resistances are connected in parallel, the formula for equivalent inductance remains the same: 1/Leq = 1/L1 + 1/L2. However, the equivalent resistance formula also follows the parallel connection rule: 1/Req = 1/R1 + 1/R2.

Therefore, it is true that these inductors are equivalent to a single inductor with 1/Leq = 1/L1 + 1/L2 and 1/Req = 1/R1 + 1/R2 when connected in parallel.

It is required to connect a 10 v source with a source resistance of 1mω to a 1 kω load. find the voltage that will appear across the load if

Answers

To find the voltage that will appear across the load, we can use the concept of voltage division.

The voltage across the load can be calculated using the voltage division formula:

[tex]V_{load}[/tex] = [tex]V_{source}[/tex] × ([tex]R_{load}[/tex] / ([tex]R_{source}[/tex]+ [tex]R_{load}[/tex]))

Given:

[tex]V_{source}[/tex] = 10 V (voltage of the source)

[tex]R_{source}[/tex] = 1 mΩ = 0.001 Ω (source resistance)

[tex]R_{load}[/tex] = 1 kΩ = 1000 Ω (load resistance)

Substituting the values into the formula, we get:

[tex]V_{load}[/tex] = 10 V × (1000 Ω / (0.001 Ω + 1000 Ω))

= 10 V × (1000 Ω / 1000.001 Ω)

≈ 10 V × 0.999999

≈ 9.999999 V

Therefore, the voltage that will appear across the load is approximately 9.999999 V.

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18.Suppose the boy first runs a distance of 100 metres in 50 seconds in going from his home to the shop in the East direction, and then runs a distance of 100 metres again. in 50 seconds in the reverse direction from the shop to reach back home from where he started (see Figure).
(i) Find the speed of the boy.
(ii) Find the Velocity of the boy
(iii) A boy is sitting on a merry-go-round which is moving with a constant speed of 10m/s. This means that the boy is :
(iv) In which of the following cases of motion, the distance moved and the magnitude of displacement are equal ?

ANSWER IT ASAP!!!

Answers

Suppose the boy first runs a distance of 100 metres in 50 seconds in going from his home to the shop in the East direction, and then runs a distance of 100 metres again. in 50 seconds in the reverse direction from the shop to reach back home from where he started (see Figure).

then The speed of the Boy is 2 m/s

Velocity of the boy is 0 m/s

The speed is given as total distance travelled divided by total time.

Speed = Distance/Time = 200/100 = 2 m/s

The velocity is displacement over time,

velocity = displacement/time

velocity = 0/100 = 0 m/s

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do the measured resistance values for each of the three resistors agree with the printed color bands on each device? explain your answer referencing data table 1.

Answers

The agreement between the measured resistance values and the printed color bands on the resistors can only be determined by comparing the measured values with the expected values based on the color code specified in Data Table 1.

Do the measured resistance values align with the printed color bands on the resistors?

Without the specific values of the measured resistances or the color bands on the resistors, it is not possible to provide a direct answer regarding the agreement between the measured values and the color bands.

However, to determine if the measured resistance values agree with the printed color bands, one would compare the measured values with the expected values based on the color code specified in Data Table 1.

The color bands on resistors indicate their resistance values according to a standardized coding system.

By comparing the measured values with the expected values based on the color bands, one can determine if they agree or if there is a discrepancy that may require further investigation or error analysis.

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a yo-yo has a center shaft that has a 2.5-cm radius. the yo-yo is thrown downwards while the string is held. the yo-yo drops 1.3 meters in 0.40 s. what is the angular acceleration of the yo-yo?

Answers

The angular acceleration of the yo-yo is 49.1 rad/[tex]s^2[/tex].

To find the angular acceleration of the yo-yo, use the equation for the angular acceleration of an object moving in a circular path, which is given by:

a = ([tex]v^2[/tex])/r,

where,

v is the velocity of the object and

r is the radius of the circular path.

Since the yo-yo is dropped downwards, we can assume that it moves in a vertical circular path.

The velocity of the yo-yo can be calculated using the equation v = d/t, where d is the distance the yo-yo drops and t is the time it takes to drop that distance.

Plugging in the given values:

v = 3.25 m/s.

Substituting v and r into the equation for angular acceleration:

a = ([tex]3.25^2[/tex])/(0.025) = 49.1 rad/[tex]s^2[/tex].

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To solve this problem, we need to use the formula for angular acceleration:

α = (Δω) / Δt

where α is the angular acceleration, Δω is the change in angular velocity, and Δt is the time interval.

First, we need to find the initial and final angular velocities of the yo-yo. We know that the yo-yo is initially at rest, so its initial angular velocity is zero. To find the final angular velocity, we can use the formula:

ω = v / r

where ω is the angular velocity, v is the linear velocity, and r is the radius of the shaft.

The yo-yo drops 1.3 meters in 0.40 s, so its average velocity during this time is:

v = Δd / Δt = 1.3 m / 0.40 s = 3.25 m/s

The radius of the shaft is 2.5 cm, or 0.025 m, so the final angular velocity is:

ω = 3.25 m/s / 0.025 m = 130 rad/s

Now we can calculate the angular acceleration:

α = (Δω) / Δt = (130 rad/s - 0 rad/s) / 0.40 s = 325 rad/s^2

Therefore, the angular acceleration of the yo-yo is 325 rad/s^2.

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You wish to obtain a magnification of - 4 from a convex lens of focal length The only possible solution is to O place a virtual object at a distance 5f/4 from the lens O place a real object at a distance 5t/4 from the pins O place a virtual object at a distance 48/5 from the lens. O place a real object at a distance 41/5 from the lens

Answers

To obtain a magnification of - 4 from a convex lens of focal length the one possible solution is to place a virtual object at a distance 5f/4 from the lens. Another solution is to place a real object at a distance 41/5 from the lens.

To obtain a magnification of -4 from a convex lens of focal length, there are only a few possible solutions.

The magnification equation is given by M = -v/u, where v is the image distance and u is the object distance.

Since we want a magnification of -4, we know that:

v/u = -4.

One possible solution is to place a virtual object at a distance 5f/4 from the lens.

This means that the object is placed on the same side of the lens as the observer, and the image formed will also be virtual.

The distance of 5f/4 is obtained by using the lens formula, which states that:

1/f = 1/v + 1/u.

Rearranging this equation, we get

v = uf/(u+f)

Substituting v/u = -4, we get

u = -4f/5

Plugging this value of u into the lens formula and solving for v, we get

v = -5f/4.

Another possible solution is to place a real object at a distance 41/5 from the lens.

This means that the object is placed on the opposite side of the lens as the observer, and the image formed will be real.

Using the lens formula, we can find the image distance as

v = uf/(u+f)

Substituting u = 41/5 and v/u = -4, we get

f = 10/3.

Therefore, the image distance is 10/3.


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A rope of negligible mass is wrapped around a 225 kg solid cylinder of radius 0.400 m. The cylinder is suspended several meters off the ground with its axis oriented horizontally and turns on the axis without friction. (a) If a 75 kg man takes hold of the free end of the rope and falls under the force of gravity, what is his acceleration? (b) What is the angular acceleration of the cylinder? (c) If the mass of the rope were not neglected, what would happen to the angular acceleration of the cylinder as the man falls?

Answers

Plugging in the values, we get: I = (1/2)(225 kg)(0.400 m)² = 18 kg m² Now, we can solve for the angular acceleration: α = τ / I = 294.3 Nm / 18 kg m² = 16.35 rad/s² So, the angular acceleration of the cylinder is 16.35 rad/s².

A man of 75 kg falls while holding the end of a rope wrapped around a 225 kg cylinder, suspended horizontally without friction. The man's acceleration is 1.68 m/s², and the cylinder's angular acceleration is 3.73 rad/s². If the rope's mass were not negligible, the cylinder's angular acceleration would decrease due to increased mass.

(a) To find the man's acceleration, we need to calculate the tension in the rope. Using Newton's second law, the force acting on the man is his weight minus the tension in the rope, and the acceleration is that force divided by his mass. So, the tension is (75 kg)(9.8 m/s²) - (225 kg)(1.68 m/s²) = 425 N, and the man's acceleration is (75 kg)(9.8 m/s²) - 425 N) / 75 kg = 1.68 m/s².

(b) To find the angular acceleration of the cylinder, we can use the equation τ = Iα, where τ is the torque, I is the moment of inertia, and α is the angular acceleration. The torque is equal to the tension times the radius of the cylinder, and the moment of inertia of a solid cylinder is (1/2)MR². Substituting the values, we get τ = (425 N)(0.4 m) = 170 N m, I = (1/2)(225 kg)(0.4 m)² = 7.2 kg m², and α = τ/I = 170 N m / 7.2 kg m² = 3.73 rad/s².

(c) If the mass of the rope were not neglected, the moment of inertia of the system would increase, causing the angular acceleration to decrease as the man falls. The rope would add mass that must be rotated, making it harder to turn the cylinder. The effect would be more pronounced if the rope were thick or if the man fell a greater distance.

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How would the pattern in the last question be different if the slit were 0.06mm wide instead of 0.02mm? Again assume that the slit is vertical.
A: It would look very similar but 3 times broader (including three times more space between dark spots if any.)
B: It would be hard to tell any difference because the slits are so small anyway.
C: The width of the pattern is about the same, but it is three times taller.
D: It would look very similar but 9 times broader (including nine times more space between dark spots if any.)
E: It would look very similar but 3 times narrower (including three times less space between dark spots if any.)
F: It would look very similar but 9 times narrower (including nine times less space between dark spots if any.)
G: The width of the pattern is about the same, but it is about a third as tall.

Answers

If the slit were 0.06mm wide instead of 0.02mm, the pattern would be option A: it would look very similar but 3 times broader (including three times more space between dark spots if any.) This is because the wider slit would allow more light to pass through and diffract, creating a larger interference pattern on the screen.

The spacing between the bright and dark fringes would still be determined by the wavelength of the light and the distance between the slit and the screen, so the pattern would still have the same characteristics as before, but with a broader overall shape.

The size of the slits is important in determining the diffraction pattern, and changing the size can have a significant impact on the resulting interference pattern. However, in this case, the difference between 0.02mm and 0.06mm is not large enough to change the overall pattern drastically, but it would be noticeable in the width of the pattern.

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.A small car might have a mass of around 1000 kg and a coefficient of static friction of about 0.9.
- What is the largest possible force that static friction can exert on this car? (in N)
- What is the smallest possible force that static friction can exert on this car?
- Describe situations when each of the above cases would occur.

Answers

The largest possible force is: F_max = μ_s * m * g = 0.9 * 1000 kg * 9.81 [tex]m/s^{2}[/tex] = 8,823 N.

The largest possible force that static friction can exert on the car can be found by multiplying the coefficient of static friction by the weight of the car. The weight of the car is given by mass times gravitational acceleration (9.81 [tex]m/s^{2}[/tex]).

The smallest possible force that static friction can exert on the car is zero. This occurs when the force applied to the car is less than or equal to the maximum force of static friction.

The largest force of static friction occurs when the car is at rest and there is a force trying to move the car, such as trying to push it from a standstill.

The smallest force of static friction occurs when the car is already moving and there is a force opposing its motion, such as trying to slow down or stop the car. In these situations, the force of static friction acts in the opposite direction of the applied force, preventing the car from moving or slowing it down.

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A hollow cylinder has an inner radius a=25.0mm and outer radius b=60.0mm. A non-uniform current density J=J0r2 flows through the shaded region of the cylinder parallel to its axis. The constant J0 is equal to 5mA/cm4. (da=rdrdθ)
(a) Calculate the total current through the cylinder.
(b) Calcuate the magnitude of the magnetic field at a distance of d=2cm from the axis of the cylinder.

Answers

The total current through a non-uniform current density cylinder was calculated by integration. The magnetic field at a distance of 2 cm from the cylinder's axis was found using Ampere's law.

Total current through

To calculate the total current through the cylinder, we need to integrate the current density over the volume of the shaded region. Since the current density is non-uniform, we need to use a double integral in cylindrical coordinates.

The volume element in cylindrical coordinates is given by da = r dr dθ, so we have:

I = ∫∫J(r) da= ∫∫J0 [tex]r^2[/tex] da= J0 ∫∫[tex]r^2[/tex] da

The limits of integration for r and θ are determined by the dimensions of the shaded region. The inner and outer radii are a = 25.0 mm and b = 60.0 mm, respectively, and the shaded region extends over the entire circumference of the cylinder, so we have:

∫∫[tex]r^2[/tex] da = ∫[tex]0^2[/tex]π ∫[tex]a^b[/tex] [tex]r^2[/tex] r dr dθ

= ∫[tex]0^2[/tex]π ∫[tex]25.0mm^2[/tex] [tex]60.0mm^2[/tex] [tex]r^3[/tex] dr dθ

= π([tex]60.0^4[/tex] - [tex]25.0^4[/tex])/4 × J0

Plugging in the given value of J0 = [tex]5 mA/cm^4[/tex] and converting the radii to meters, we get:

I = π([tex]60.0^4[/tex] - [tex]25.0^4[/tex])/4 × J0

= π([tex]0.06^4[/tex] - [tex]0.025^4[/tex])/4 × 5 × [tex]10^3[/tex] A

≈ 1.17 A

Therefore, the total current through the cylinder is approximately 1.17 A.

To calculate the magnitude of the magnetic field at a distance of d = 2 cm from the axis of the cylinder, we can use Ampere's law. Since the current flows parallel to the axis of the cylinder, the magnetic field will also be parallel to the axis and will have the same magnitude at every point on a circular path of radius d centered on the axis.

Choosing a circular path of radius d and using Ampere's law, we have:

∮B · dl = μ0 Ienc

where

B is the magnetic field, dl is a small element of the path, μ0 is the permeability of free space, and Ienc is the current enclosed by the path.

The path integral on the left-hand side can be evaluated as follows:

∮B · dl = B ∮dl

= B × 2πd

Since the current flows only through the shaded region of the cylinder, the current enclosed by the circular path of radius d is equal to the total current through the shaded region. Therefore, we have:

Ienc = I = π([tex]60.0^4[/tex] - [tex]25.0^4[/tex])/4 × J0

= π([tex]0.06^4[/tex] - [tex]0.025^4[/tex])/4 × 5 × [tex]10^3[/tex] A

≈ 1.17 A

Substituting these values into Ampere's law and solving for B, we get:

B × 2πd = μ0 Ienc

B = μ0 Ienc / (2πd)

Plugging in the values and converting the radius to meters, we get:

B = μ0 Ienc / (2πd)

= (4π × [tex]10^{-7}[/tex] T·m/A) × 1.17 A / (2π × 0.02 m)

≈ 9.35 × [tex]10^{-5}[/tex] T

Therefore, the magnitude of the magnetic field at a distance of 2 cm from the axis of the cylinder is approximately 9.35 ×

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according to keynes's theory of liquidity preference, velocity increases when

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According to Keynes's theory of liquidity preference, velocity increases when the demand for money decreases. Velocity refers to the speed at which money circulates in an economy and is calculated as the ratio of nominal GDP to the money supply.

When the demand for money decreases, it means that people are more willing to spend and invest rather than hold onto their money. As a result, the velocity of money increases because money is changing hands more frequently to facilitate transactions and economic activity. Keynes argued that changes in the demand for money, influenced by factors such as interest rates, expectations, and economic conditions, can significantly impact the velocity of money. When people have a lower preference for holding money and a higher preference for spending and investing, velocity tends to increase, leading to greater economic activity and potentially higher inflationary pressures.

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a wave is normally incident from air into a medium having μ=μ0, ε=ε0εr, and conductivity σ, where εr and σ are unknown. the following facts are provided:

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When a wave is incident from air into a medium with properties μ=μ0, ε=ε0εr, and conductivity σ, it experiences changes in its propagation characteristics due to the new medium. Here, εr is the relative permittivity of the medium and σ represents its conductivity.

As the wave enters the medium, its speed and attenuation depend on the permittivity, permeability, and conductivity. These factors influence how the wave propagates and how much it is absorbed by the medium. The conductivity, σ, particularly determines the lossiness of the medium, meaning higher conductivity leads to more absorption and less propagation of the wave. The relative permittivity, εr, influences the speed of the wave in the medium, as well as its reflection and refraction properties.

In summary, when a wave is incident from air into a medium with given properties, its propagation characteristics are affected by the medium's permittivity, permeability, and conductivity. Both εr and σ play crucial roles in determining the behavior of the wave within the medium.

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an object is rotating at 6.284 rad/s. what is this in degrees per second?

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An object rotating at 6.284 rad/s has an angular velocity of 360 degrees per second.

1 revolution = 2π radians

Therefore, 1 radian = (1/2π) revolutions

To convert from radians per second to degrees per second, we need to multiply the angular velocity by the conversion factor of (180/π) degrees per radian.

So, the angular velocity in degrees per second is:

6.284 rad/s * (180/π) degrees per radian

= 360 degrees per second (rounded to three significant figures)

An object rotating at 6.284 rad/s has an angular velocity of 360 degrees per second.

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an 7.30-cm-diameter, 400 g solid sphere is released from rest at the top of a 1.70-m-long, 16.0 ∘ incline. it rolls, without slipping, to the bottom. What is the sphere's angular velocity at the bottom of the incline?

Answers

The sphere's angular velocity at the bottom of the incline is 7.25 rad/s.

To solve this problem, we can use the conservation of energy principle. At the top of the incline, the sphere has potential energy, which is converted to kinetic energy as it rolls down the incline. We can equate the initial potential energy to the final kinetic energy:
mgh = 1/2Iω^2 + 1/2mv^2
where m is the mass of the sphere, g is the acceleration due to gravity, h is the height of the incline, I is the moment of inertia of the sphere (which for a solid sphere is 2/5mr^2, where r is the radius of the sphere), ω is the angular velocity of the sphere at the bottom of the incline, and v is the linear velocity of the sphere at the bottom of the incline.
We can solve for ω by rearranging the equation:
ω = sqrt(5/7 * (mgh - 1/2mv^2) / (mr^2))
Plugging in the given values, we get:
ω = sqrt(5/7 * (0.4 kg) * (9.8 m/s^2) * (1.7 m) * sin(16°) / ((0.4 kg) * (0.0365 m)^2))
ω = 7.25 rad/s
Therefore, the sphere's angular velocity at the bottom of the incline is 7.25 rad/s.

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To solve this problem, we need to use the conservation of energy and the conservation of angular momentum.

First, let's calculate the potential energy at the top of the incline:

U_top = mgh = (0.4 kg)(9.81 m/s^2)(1.7 m) = 6.708 J

where m is the mass of the sphere, g is the acceleration due to gravity, and h is the height of the incline.

At the bottom of the incline, all of the potential energy has been converted to kinetic energy and rotational kinetic energy:

K_bottom = (1/2)mv^2 + (1/2)Iω^2

where v is the linear velocity of the sphere, I is the moment of inertia of the sphere, and ω is the angular velocity of the sphere.

Because the sphere rolls without slipping, we can use the relationship between v and ω:

v = ωr   [where r is the radius of the sphere.]

The moment of inertia of a solid sphere about its center is given by:

I = (2/5)mr^2

U_top = K_bottom

mgh = (1/2)mv^2 + (1/2)(2/5)mr^2ω^2

gh = (1/2)v^2 + (1/5)r^2ω^2

2gh = v^2 + (2/5)r^2ω^2

2(9.81 m/s^2)(1.7 m) = v^2 + (2/5)(0.365 m)^2ω^2

Solving for v and substituting into the equation for ω:

ω = v/r = (5gh/7r)^0.5 = (5(9.81 m/s^2)(1.7 m)/(7)(0.365 m))^0.5 = 3.33 rad/s

Therefore, the sphere's angular velocity at the bottom of the incline is 3.33 rad/s.

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URGENTTTTT



The magnitude of the electrostatic force on the electron is 3. 0 E-10 N. What is the magnitude of the electric field strength at


the location of the electron? [Show all work, including units).

Answers

The magnitude of the electrostatic force on an electron is given as 3.0 E-10 N. This question asks for the magnitude of the electric field strength at the electron's location, including the necessary calculations and units.

To determine the magnitude of the electric field strength at the location of the electron, we can use the equation that relates the electric field strength (E) to the electrostatic force (F) experienced by a charged particle.

The equation is given by E = F/q, where q represents the charge of the particle. In this case, the charged particle is an electron, which has a fundamental charge of -1.6 E-19 C. Plugging in the given force value of 3.0 E-10 N and the charge of the electron, we can calculate the electric field strength.

The magnitude of the electric field strength is equal to the force divided by the charge, resulting in E = (3.0 E-10 N) / (-1.6 E-19 C) = -1.875 E9 N/C.

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compound velocity addition show that two successive lorentz transformations corresponding to speeds and in the same direction are equivalent to a single lorentztransformation with speed v=v1+v2/1+v1v2/c2
is this result compatible with griffiths equation 12.45 (shown here)?
ux=dx/dt=ux-v/(1-vux/c2)
uy=dy/dt=uy/y(1-vux/c2)
uz=dz/dt=uz/y(1-vux/c2)

Answers

Yes, the compound velocity addition formula is compatible with Griffiths' Equations 12.45.

The compound velocity addition formula demonstrates how two successive Lorentz transformations, with speeds v1 and v2 in the same direction, are equivalent to a single Lorentz transformation with speed v = (v1 + v2) / (1 + (v1 * v2 / c^2)). This result is compatible with Griffiths' Equations 12.45:

ux = dx/dt = (ux - v) / (1 - (v * ux / c^2))
uy = dy/dt = uy / γ(1 - (v * ux / c^2))
uz = dz/dt = uz / γ(1 - (v * ux / c^2))

These equations describe the Lorentz transformation of the velocity components in a frame moving with speed v. The compatibility lies in the fact that both the compound velocity addition formula and Griffiths' Equations 12.45 follow the same principles of Special Relativity and describe the transformation of velocities in different inertial frames.

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the work function of a metallic plate is 1.92 ev. determine the maximum kinetic energy of the photoelectrons that could be emitted if a light of wavelength = 458.00 nm strikes the plate's surface.

Answers

The maximum kinetic energy of the photoelectrons that could be emitted is 0.80 eV.

To determine the maximum kinetic energy of the photoelectrons emitted, we can use the photoelectric effect equation:
KE_max = h * (c / λ) - W
where KE_max is the maximum kinetic energy of the photoelectrons, h is Planck's constant (6.63 × 10^-34 Js), c is the speed of light (3.00 × 10^8 m/s), λ is the wavelength of the light (458.00 nm), and W is the work function (1.92 eV).
First, convert the wavelength from nm to meters: λ = 458.00 nm × 10^-9 m/nm = 4.58 × 10^-7 m.
Next, calculate the energy of the incident photons: E_photon = h * (c / λ) = 6.63 × 10^-34 Js × (3.00 × 10^8 m/s) / (4.58 × 10^-7 m) = 4.35 × 10^-19 J.
Convert the work function to Joules: W = 1.92 eV × (1.60 × 10^-19 J/eV) = 3.07 × 10^-19 J.
Now, find the maximum kinetic energy: KE_max = 4.35 × 10^-19 J - 3.07 × 10^-19 J = 1.28 × 10^-19 J.
Finally, convert the kinetic energy to eV: KE_max = 1.28 × 10^-19 J × (1 eV / 1.60 × 10^-19 J) = 0.80 eV.

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The maximum kinetic energy of the photoelectrons emitted from the metallic plate is 0.79 eV when light with a wavelength of 458.00 nm strikes its surface.

To determine the maximum kinetic energy of photoelectrons emitted from a metallic plate, we can use the equation:

E = hf - Φ

where E is the maximum kinetic energy of the photoelectrons, h is Planck's constant ([tex]6.626 \times 10^{-34[/tex] J∙s), f is the frequency of the incident light, and Φ is the work function of the metal.

First, we need to calculate the frequency of the light using the equation:

c = λf

where c is the speed of light ([tex]3.0 \times 10^8[/tex] m/s) and λ is the wavelength of the incident light. Rearranging the equation, we find:

f = c / λ

Plugging in the values, we have:

f = ([tex]3.0 \times 10^8[/tex] m/s) / ([tex]458.00 \times 10^{-9[/tex] m) = [tex]6.55 \times 10^{14[/tex] Hz

Now, we can calculate the energy of a single photon using the equation:

E_photon = hf

Plugging in the value of f, we get:

[tex]E_{\text{photon}} = (6.626 \times 10^{-34} \ \text{J} \cdot \text{s}) \times (6.55 \times 10^{14} \ \text{Hz}) = 4.34 \times 10^{-19} \ \text{J}[/tex]

To convert this energy to electron volts (eV), we divide by the electron charge ([tex]1.6 \times 10^{-19}[/tex], giving:

[tex]E_{\text{photon}} = \frac{4.34 \times 10^{-19} \ \text{J}}{1.6 \times 10^{-19} \ \text{C}} = 2.71 \ \text{eV}[/tex]

Finally, we can determine the maximum kinetic energy of the photoelectrons using the equation mentioned earlier:

E = E_photon - Φ

Plugging in the values, we have:

E = (2.71 eV) - (1.92 eV) = 0.79 eV

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the sun has a surface temperature of about 5800 k. at what frequency does the sun emit the most radiation?

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The frequency at which the Sun emits the most radiation is approximately 1.84 × 10^15 Hz, which is in the near-infrared part of the electromagnetic spectrum.

The frequency at which the Sun emits the most radiation can be determined using Wien's displacement law, which states that the peak wavelength of the radiation emitted by a blackbody (like the Sun) is inversely proportional to its temperature. Mathematically, this can be expressed as:

λ_max = b/T

where λ_max is the peak wavelength, T is the temperature in kelvin, and b is a constant known as Wien's displacement constant, which is equal to 2.898 × 10^-3 meter-kelvin.

To find the frequency at which the Sun emits the most radiation, we can use the formula for the speed of light, c = λf, where c is the speed of light, λ is the wavelength, and f is the frequency. Solving for f, we get:

f = c/λ

Substituting λ = λ_max and solving for f, we get:

f_max = c/λ_max = c(b/T)

Plugging in the temperature of the Sun's surface (5800 K) and the value of the constant b, we get:

f_max = (2.998 × 10^8 m/s)(2.898 × 10^-3 m-K)/(5800 K) = 1.84 × 10^15 Hz

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two speakers play identical tones of frequency 250 hz. the speed of sound is 400 m/s. if r1=8.5 m and r2=11.7 m, at the point indicated, what kind of interference is there?

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Assuming the speakers are located at point sources, we can use the equation for the path difference between two points in terms of wavelength:

Δr = r2 - r1

where Δr is the path difference and λ is the wavelength of the sound wave. If the path difference is an integer multiple of the wavelength, constructive interference occurs, while if it is a half-integer multiple, destructive interference occurs.

To find the wavelength of the sound wave, we can use the formula:

v = fλ

where v is the speed of sound, f is the frequency of the tone, and λ is the wavelength.

Plugging in the given values, we get:

λ = v/f = 400/250 = 1.6 m

The path difference between r1 and r2 is:

Δr = r2 - r1 = 11.7 - 8.5 = 3.2 m

To determine the type of interference, we need to see if the path difference is an integer or half-integer multiple of the wavelength.

Δr/λ = 3.2/1.6 = 2

Since the path difference is an integer multiple of the wavelength, we have constructive interference. At the point indicated, the two waves will add together to produce a sound that is louder than the original tones.

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1. if you are using a meter stick to measure how far a ball rolls before stopping, how would you find the uncertainty in distance? explain why this is a valid method to find the uncertainty in this case. 2. if you are using a motion encoder receiver to find the velocity of a cart, how would you find the uncertainty in velocity? explain why this is a valid method to find the uncertainty in this case. 3. if you are using a motion detector to find the acceleration of a ball, how would you find the uncertainty in acceleration? explain why this is a valid method to find the uncertainty in this case.

Answers

To find the uncertainty in distance when using a meter stick to measure the distance a ball rolls, you can consider the smallest division on the meter stick. When using a motion encoder receiver to find the velocity of a cart, the uncertainty in velocity can be determined by the precision of the encoder. When using a motion detector to find the acceleration of a ball, the uncertainty in acceleration can be estimated based on the sensitivity and precision of the motion detector.

1. Let's assume the smallest division is 1 millimeter. The uncertainty in distance can be estimated as half of this smallest division, which is 0.5 millimeters.

This method is valid because the uncertainty is determined by the precision of the measuring instrument. The smallest division on the meter stick represents the smallest unit of measurement that can be reliably determined. Since the position of the ball can fall anywhere within the range of the smallest division, taking half of this value provides a reasonable estimate of the uncertainty.

2. When using a motion encoder receiver to find the velocity of a cart, the uncertainty in velocity can be determined by the precision of the encoder. The uncertainty is typically given by the manufacturer and is usually specified as the resolution or accuracy of the encoder. For example, if the encoder has a resolution of 0.1 m/s, then the uncertainty in velocity would be ±0.1 m/s.

This method is valid because the uncertainty is based on the known precision of the encoder. The encoder measures the displacement of the cart over a certain time period, and the velocity is calculated based on this displacement. The uncertainty in velocity is directly related to the uncertainty in the measured displacement, which is determined by the resolution or accuracy of the encoder.

3. When using a motion detector to find the acceleration of a ball, the uncertainty in acceleration can be estimated based on the sensitivity and precision of the motion detector. The uncertainty is typically given by the manufacturer as a percentage or a specific value. For example, if the motion detector has an uncertainty of ±0.05 m/s^2, then the uncertainty in acceleration would be ±0.05 m/s^2.

This method is valid because the uncertainty is determined by the sensitivity and precision of the motion detector. The motion detector measures the position or velocity of the ball over time and calculates the acceleration based on these measurements. The uncertainty in acceleration is directly influenced by the uncertainty in the position or velocity measurements, which is determined by the specifications of the motion detector.

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