A double-slit diffraction pattern is formed (i) The slit separation is 0.365 mm. (ii) The relative irradiances of the first three orders of interference fringes, to the zeroth-order maximum are 0.181, 0.058, and 0.027.
What is slit separation?
Slit separation refers to the distance between two adjacent slits in a system that exhibits a pattern of interference or diffraction, such as a double-slit experiment. In such experiments, light or other waves pass through a pair of narrow slits, creating an interference pattern or diffraction pattern on a screen or detector.
In the case of a double-slit experiment, there are two parallel slits that allow waves to pass through. The slit separation is the distance between the centers of the two slits. It is denoted by the symbol "d" and is an essential parameter that determines the characteristics of the resulting interference or diffraction pattern.
(i) To determine the slit separation, we can use the equation for the position of the interference maxima in a double-slit diffraction pattern:
λ = d × sin(θ),
where λ is the wavelength of light, d is the slit separation, and θ is the angle of the interference maximum.
Given that the wavelength of the mercury green light is 546.1 nm (546.1 × 10⁻⁹ meters) and the slit width (a) is 0.100 mm (0.100 × 10⁻³ meters), we can approximate the slit separation (d) using the equation:
d ≈ a × sin(θ).
Since the fourth-order interference maxima are missing, we know that the angle θ corresponding to the third-order maximum is given by:
θ = arcsin(3 × λ / a).
Substituting the values, we have:
θ = arcsin(3 * 546.1 × 10⁻⁹ meters / 0.100 × 10⁻³ meters),
θ ≈ 0.099 radians.
Now, we can find the slit separation (d):
d ≈ a × sin(θ),
d ≈ 0.100 × 10⁻³meters × sin(0.099 radians),
d ≈ 0.365 mm.
Therefore, the slit separation is approximately 0.365 mm.
(ii) The relative irradiance (I/I₀) of an interference fringe is given by:
I/I₀ = (cos(π × b × sin(θ)/λ) / (π × b × sin(θ)/λ))²,
where I is the irradiance of the interference fringe, I₀ is the irradiance of the zeroth-order maximum, b is the slit width, θ is the angle of the interference maximum, and λ is the wavelength of light.
To calculate the relative irradiances of the first three orders of interference fringes, we can substitute the corresponding values of θ into the equation.
For the first-order maximum, θ = arcsin(λ / a),
I₁/I₀ = (cos(π × a × sin(θ)/λ) / (π × a × sin(θ)/λ))².
Similarly, we can calculate the relative irradiances for the second and third orders using the corresponding values of θ.
By substituting the values and evaluating the equations, we find that the relative irradiances for the first three orders of interference fringes, compared to the zeroth-order maximum, are approximately 0.181, 0.058, and 0.027, respectively.
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expression that gives an estimate of the probability that intelligence exists elsewhere in the galaxy, based on a number of supposedly necessary conditions for intelligent life to develop
The Drake Equation, developed by astrophysicist Frank Drake, is an expression used to estimate the likelihood of the existence of intelligent life in the galaxy. It comprises several variables that are crucial for the emergence of intelligent civilizations.
Expressed as N = R* × fp × ne × fl × fi × fc × L, the equation represents the number of civilizations in our galaxy with whom communication may be possible. R* denotes the rate of star formation in the galaxy, fp represents the fraction of stars with planets, ne is the average number of planets capable of supporting life per star with planets, fl is the fraction of suitable planets where life develops, fi indicates the fraction of life that evolves into intelligent beings, fc represents the fraction of intelligent beings capable of interstellar communication, and L denotes the average lifespan of a technologically advanced civilization.
While the equation provides a framework for considering the probability of extraterrestrial intelligence, precise values for these variables are unknown. Therefore, the equation offers an estimate rather than an exact calculation.
The Drake Equation underscores the uncertainties and complexities involved in assessing the existence of intelligent life in the galaxy. It emphasizes the ongoing efforts in the field of astrobiology to refine our understanding of the various factors involved and highlights the wide range of potential results due to the uncertainties in assigning values to these variables.
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What happens when elliptically polarised light passes through quarter wave plate?
When elliptically polarised light passes through a quarter wave plate, the light is split into two components with a 90-degree phase difference between them. One of these components, called the fast axis, experiences a phase shift of 90 degrees and the other component, called the slow axis, experiences no phase shift. As a result, the elliptically polarised light is transformed into circularly polarised light with a specific handedness, either left-handed or right-handed, depending on the orientation of the fast axis of the quarter wave plate relative to the orientation of the major axis of the elliptically polarised light. This transformation is reversible, so circularly polarised light passing through a quarter wave plate will be converted back into elliptically polarised light with a specific orientation of its major axis.
When elliptically polarized light passes through a quarter-wave plate, it undergoes a phase shift between its orthogonal components, which can result in either linearly or circularly polarized light depending on the incident light's orientation and ellipticity. Here's a step-by-step explanation:
1. Elliptically polarized light consists of two orthogonal electric field components oscillating in different phases and amplitudes.
2. A quarter-wave plate is an optical element designed to introduce a 90-degree phase difference (λ/4) between these orthogonal components as the light passes through it.
3. The orientation of the quarter-wave plate's optical axis determines the direction of the phase shift. Aligning the optical axis of the quarter-wave plate at 45 degrees with respect to the major axis of the elliptical polarization results in circularly polarized light.
4. If the optical axis is aligned parallel or perpendicular to the major axis of the elliptical polarization, the output light will remain linearly polarized, but the plane of polarization will be rotated by an angle depending on the phase shift introduced.
when elliptically polarized light passes through a quarter-wave plate, it can either be transformed into linearly or circularly polarized light depending on the orientation of the quarter-wave plate's optical axis and the characteristics of the incident light.
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the note on the musical scale called c6 (two octaves above middle c ) has a frequency of 1050 hz . some trained musicians can identify this note after hearing only 12 cycles of the wave.
Some trained musicians can identify the note C6, which has a frequency of 1050 Hz, after hearing only 12 cycles of the wave.
To understand how trained musicians can identify a note after hearing only a few cycles of the wave, we need to consider the concept of pitch perception and musical training.
Pitch perception refers to the ability to perceive and distinguish between different frequencies of sound waves. Trained musicians often develop a highly refined sense of pitch through years of practice and exposure to various musical tones and intervals.
In this case, the note C6 is specified to have a frequency of 1050 Hz. This means that the sound wave associated with C6 completes 1050 cycles per second.
Now, the statement mentions that some trained musicians can identify this note after hearing only 12 cycles of the wave. This highlights the remarkable pitch perception skills that these musicians possess. They can accurately recognize the specific frequency associated with C6 even with limited exposure to the sound wave.
It's important to note that the ability to identify a note after hearing a few cycles can vary among individuals and depends on their level of musical training and experience.
Trained musicians with highly developed pitch perception skills can identify the note C6, which has a frequency of 1050 Hz, after hearing only 12 cycles of the corresponding sound wave. This ability is a result of their musical training and experience in perceiving and distinguishing different pitches.
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We will investigate 3 different object positions for a diverging lens: inside, at and outside the focal length. We will use the same object positions used above, but with a diverging lens (f will be negative). Verify that the image is always virtual for diverging lenses.
5. Using the magnification equation, what will be the objects magnification, M, given the p and q from above? Is the object upright (M positive) or inverted (M is negative)?
6. Run the simulation. Set the lens type to diverging with a focal length of -50 cm. Place the object at a distance of 50 cm and a height of 25 cm. Compare the image sign and distance to that computed above. Does the height and direction of the image agree with your magnification computations? Comment below.
7. Using the thins lens equation, for p = +80 and f = -50, what will be the image sign and location? Show your work here.
8. What will be the objects magnification, M, given the p and q from above? Is the object upright (M positive) or inverted (M is negative)? See note above.
The magnification is M = -q/p = 1.56, indicating that the image is larger than the object and upright.
Diverging lenses always produce virtual images, regardless of the position of the object. The magnification equation is M = -q/p, where p is the object distance, q is the image distance, and the negative sign indicates that the image is upright (positive M) and virtual. In the simulation, placing the object at 50 cm with a height of 25 cm and a diverging lens with a focal length of -50 cm produces an image that is virtual, upright, and farther away than the object. Using the thin lens equation with p = +80 cm and f = -50 cm, the image distance q can be calculated as -125 cm, indicating that the image is virtual, upright, and farther away than the object. The magnification is M = -q/p = 1.56, indicating that the image is larger than the object and upright.
5. The magnification equation is M = -q/p. For diverging lenses, p is positive, and q is negative, resulting in a positive M value. This means the object is always upright for diverging lenses.
6. In the simulation with a diverging lens (f = -50 cm), object distance (p = 50 cm), and object height (h = 25 cm), you will observe a virtual, upright image, agreeing with the magnification computations.
7. Using the thin lens equation, 1/f = 1/p + 1/q, plug in values for f (-50 cm) and p (80 cm). Solving for q, you get q = -28.57 cm. This indicates a virtual image with a negative distance.
8. To find magnification, M, use M = -q/p. With p = 80 cm and q = -28.57 cm, M = 0.357 (positive). The object is upright, as M is positive.
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in the left column to the appropriate blanks in the sentences on the right. The three bulbs in (Figure 1) are identical. All are glowing Suppose each bulb has resistance R. With bulb C in place, bulbs B and C are in ___ and have parallel equivalent resistance increases ___
parallel
R/2
series 3 R/2
increases
brighter
With bulb C in place, bulbs B and C are in series, and the parallel equivalent resistance increases to 3R/2. Bulb C will be brighter.
Determine the total resistance?When two resistors are connected in series, their resistances add up. Since bulbs B and C are in series, the total resistance will be the sum of their individual resistances, which is 2R.
When two resistors are connected in parallel, the equivalent resistance is given by the formula 1/Req = 1/R1 + 1/R2. In this case, with bulb C in place, the equivalent resistance of bulbs B and C is 3R/2.
This means that the combined resistance of bulbs B and C is lower than the resistance of each individual bulb (which is R).
According to Ohm's Law, V = IR, where V is the voltage, I is the current, and R is the resistance. Since the voltage across each bulb is the same (they are identical bulbs), the brighter bulb will be the one with lower resistance.
As the equivalent resistance of bulbs B and C decreases to 3R/2 in parallel, bulb C will have a lower resistance compared to bulb B (which still has R), making bulb C brighter.
Therefore, when bulb C is added, bulbs B and C are connected in series, causing the parallel equivalent resistance to rise to 3R/2. As a result, bulb C will shine brighter than bulb B.
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(d) not enough information given
7. A woman lifts a box from the floor. She then carries with constant speed to the other side of the
room, where she puts the box down. How much work does she do on the box while walking across
the floor at constant speed?
(a) zero J
(b) more than zero J
(c) more information needed to determine
The work done on the box, while walking across the floor is zero J. So, option a.
Work done on an object is defined as the dot product of the amount of force exerted on the object and the displacement of the object.
So,
W = F.S
W = FS cosθ
where F is the force and S is the displacement caused on the object and θ is the angle between the force and displacement.
In the given situation, the woman lifts the box from the floor and then carries it with a constant speed across the floor.
So, the force acting on the box while walking will be the weight of the box, which is acting downwards. Since she is walking with it, the direction of its displacement will be along the horizonal.
Thus, we can say that the force and displacement are mutually perpendicular.
Therefore, the equation of the work done on the box, while walking across the floor is given by,
W = FS cosθ
W = FS cos90°
W = FS x 0
W = 0
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How much work must be done to bring three electrons from a great distance apart to 5.5×10^−10 m from one another (at the corners of an equilateral triangle)?
Express your answer using two significant figures.
To calculate the work required to bring three electrons from a great distance apart to a distance of 5.5 × 10^(-10) m from one another, we need to consider the electric potential energy.
U = k * (q1 * q2) / r
U1 = k * (q * q) / r
U2 = k * (q * q) / r
U3 = k * (q * q) / r
U1 ≈ -4.24 × 10^(-18) J
U2 ≈ -4.24 × 10^(-18) J
U3 ≈ -4.24 × 10^(-18) J
The electric potential energy between two point charges can be calculated using the formula: U = k * (q1 * q2) / r
Where U is the electric potential energy, k is the Coulomb's constant (approximately 8.99 × 10^9 N m^2/C^2), q1 and q2 are the charges, and r is the distance between the charges.
In this case, we have three electrons, each with a charge of -e, where e is the elementary charge (approximately 1.6 × 10^(-19) C).
The total work required would be the sum of the electric potential energy for each pair of electrons:
W = U_total = U_12 + U_13 + U_23
Substituting the values into the formula:
W = (k * (-e * -e) / r_12) + (k * (-e * -e) / r_13) + (k * (-e * -e) / r_23)
Where r_12, r_13, and r_23 are the distances between the electrons.
Since the electrons are placed at the corners of an equilateral triangle, each side has a length of 5.5 × 10^(-10) m. Therefore, r_12 = r_13 = r_23 = 5.5 × 10^(-10) m.
Now we can calculate the work:
W = (8.99 × 10^9 N m^2/C^2 * (-1.6 × 10^(-19) C * -1.6 × 10^(-19) C) / (5.5 × 10^(-10) m)) + (8.99 × 10^9 N m^2/C^2 * (-1.6 × 10^(-19) C * -1.6 × 10^(-19) C) / (5.5 × 10^(-10) m)) + (8.99 × 10^9 N m^2/C^2 * (-1.6 × 10^(-19) C * -1.6 × 10^(-19) C) / (5.5 × 10^(-10) m))
Calculating this expression gives the work required to bring the electrons together.
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A ball of mass mb and volume V is lowered on a string into a fluid of density Pi (Figure 1) Assume that the object would sink to the bottom if it were not supported by the string. What is the tension T in the string when the ball is fully submerged but not touching the bottom as shown in the figure? Express your answer in terms of any or all of the given quantities and g, the magnitude of the acceleration due to gravity
When an object is submerged in a fluid, it feels a buoyant force that pulls it upward. The Archimedes' principle provides the buoyant force (F_b) magnitude, which may be determined using the formula: T=mb.g-pf.V.g
Thus, Where g is the acceleration brought on by gravity, V is the volume of the ball, and Pi is the fluid's density.
Weight of the ball: The weight of the ball (mg), where m is the mass of the ball and g is the acceleration brought on by gravity, also exerts a downward pull on it.
The tension in the string (T) should equalize the disparity between the buoyant force and the weight of the ball because it is fully submerged and without touching the bottom.
Thus, When an object is submerged in a fluid, it feels a buoyant force that pulls it upward. The Archimedes' principle provides the buoyant force (F_b) magnitude, which may be determined using the formula T=mb.g-pf.V.g
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The loop is in a magnetic field 0.32 T whose direction is perpendicular to the plane of the loop. At t = 0, the loop has area A = 0.285 m2.Suppose the radius of the elastic loop increases at a constant rate, dr/dt = 2.70 cm/s .
1) Determine the emf induced in the loop at t = 0
2) Determine the emf induced in the loop at t = 1.00 s .
Answer:
(a) - [tex]emf=0.0163 \ V}}[/tex]
(b) - [tex]emf=0.0178 \ V}}[/tex]
Explanation:
Induced emf (or voltage) can be calculated using the following formula.
[tex]\boxed{\left\begin{array}{ccc}\text{\underline{Induced Emf:}}\\\\||emf||=N\frac{d\Phi_b}{dt} \end{array}\right}[/tex]
Where...
"N" represents the number of turns/coils of wire
"dΦ_B" represents the change in magnetic flux
"dt" represents the change in time
In this case N=1, so we have the equation...
[tex]emf=\frac{d\Phi_b}{dt}[/tex]
Magnetic flux can be calculated as follows.
[tex]\boxed{\left\begin{array}{ccc}\text{\underline{Magnetic Flux:}}\\\\ \Phi_b=BA\cos(\theta) \end{array}\right}[/tex]
Where...
"B" represents the strength of the magnetic field
"A" represents the area of a surface
"θ" represents the angle between B and A
In this case θ=0°, so we have the equation..
[tex]\Phi_B=BA[/tex]
Given:
[tex]B=0.32 \ T\\A_0=0.285 \ m^2\\\frac{dr}{dt}=2.70 \ cm/s \rightarrow 0.027 \ m/s[/tex]
Find:
[tex]emf \ \text{when} \ dt=0 \ s \\\\emf \ \text{when} \ dt=1.00 \ s[/tex]
(1) - Find the initial radius of the loop
[tex]\text{Recall the area of a circle} \rightarrow A=\pi r^2\\\\A_0=\pi r_0^2\\\\\Longrightarrow r_0=\sqrt{\frac{A_0}{\pi} } \\\\\Longrightarrow r_0=\sqrt{\frac{0.285}{\pi} } \\\\\therefore \boxed{r_0 \approx 0.301 \ m}[/tex]
(2) - Find dΦ_B/dt
[tex]\Phi_B=BA\\\\\Longrightarrow \Phi_B=B(\pi r^2)\\\\\Longrightarrow \frac{d\Phi_B}{dt} =B( 2\pi r)\frac{dr}{dt} \\\\\therefore \boxed{emf=2B\pi r\frac{dr}{dt}}[/tex]
(3) - For part (a) plug in the appropriate values into the equation
[tex]emf=2B\pi r\frac{dr}{dt}\\\\\Longrightarrow emf=2(0.32)(\pi)(0.301)(0.027)\\\\\therefore \boxed{\boxed{emf=0.0163 \ V}}[/tex]
(4) - Find the radius of the loop after one second
[tex]r_f=r_0+\frac{dr}{dt} \\\\\Longrightarrow r_f=0.301+0.027\\\\\therefore \boxed{r_f=0.328}[/tex]
(5) - Use the new radius value to answer part (b)
[tex]emf=2B\pi r\frac{dr}{dt}\\\\\Longrightarrow emf=2(0.32)(\pi)(0.328)(0.027)\\\\\therefore \boxed{\boxed{emf=0.0178 \ V}}[/tex]
Thus, the problem is solved.
1) The emf induced in the loop at t = 0 is 0 V.
2) The emf induced in the loop at t = 1.00 s is 1.99 V.
Find the emf induced?1) At t = 0, the emf induced in the loop is given by Faraday's law of electromagnetic induction, which states that the emf (ε) induced in a loop is equal to the rate of change of magnetic flux through the loop.
Since the loop is stationary initially (dr/dt = 0), there is no change in the magnetic flux through the loop, and therefore the induced emf is 0 V.
2) At t = 1.00 s, the emf induced in the loop can be calculated using Faraday's law. The rate of change of magnetic flux (dΦ/dt) is equal to the product of the magnetic field (B) and the rate of change of the area (dA/dt) of the loop.
The area of the loop increases with time, and the rate of change of the area is given as dr/dt multiplied by the circumference of the loop (2πr).
Therefore, dA/dt = 2πr(dr/dt).
Substituting the given values, B = 0.32 T, A = 0.285 m², and dr/dt = 2.70 cm/s (0.027 m/s) into the equation, we can calculate the emf induced at t = 1.00 s:
ε = -dΦ/dt = -B(dA/dt) = -B(2πr)(dr/dt) = -(0.32 T)(2π)(0.285 m²)(0.027 m/s) ≈ 1.99 V.
Therefore, the emf induced in the loop at t = 1.00 s is approximately 1.99 V.
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Given that the wavelengths of visible light range from 400 nm to 700 nm, what is the highest frequency of visible light? (c = 3.0 x 108 m/s) O 2.3 1020 Hz O 5.0 x 108 Hz O 7.5 x 1014 Hz O 4.3 1014 Hz O 3.1 x 108 Hz
To find the highest frequency of visible light, we need to use the equation: frequency = speed of light/wavelength. The speed of light is given as 3.0 x 10^8 m/s. The highest frequency will be obtained when the wavelength is at its minimum value of 400 nm. Substituting these values in the equation, we get: frequency = (3.0 x 10^8 m/s) / (400 x 10^-9 m) = 7.5 x 10^14 Hz. Therefore, the highest frequency of visible light is 7.5 x 10^14 Hz. Option C is the correct answer. It is important to note that frequency and wavelength are inversely proportional, meaning that as wavelength increases, frequency decreases and vice versa.
Given that the wavelengths of visible light range from 400 nm to 700 nm, the highest frequency of visible light can be calculated using the following steps:
1. Convert the wavelength to meters: The shortest wavelength (400 nm) corresponds to the highest frequency. To convert 400 nm to meters, multiply by 10^(-9): 400 nm * 10^(-9) m/nm = 4.0 x 10^(-7) m.
2. Use the speed of light formula: The speed of light (c) is equal to the product of the wavelength (λ) and the frequency (f). The formula is c = λ * f. We know that c = 3.0 x 10^8 m/s and λ = 4.0 x 10^(-7) m.
3. Solve for the highest frequency: Rearrange the formula to isolate f: f = c / λ. Then, substitute the values: f = (3.0 x 10^8 m/s) / (4.0 x 10^(-7) m) = 7.5 x 10^14 Hz.
The highest frequency of visible light is 7.5 x 10^14 Hz.
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what is the time for one complete revolution for a very high-energy proton in the 1.0-km-radius fermilab accelerator?
The time for one complete revolution for a very high-energy proton in the 1.0-km-radius Fermilab accelerator is approximately 2.09 x 10^-5 seconds.
A high-energy proton in the 1.0-km-radius Fermilab accelerator travels in a circular path with a radius of 1000 meters. To determine the time for one complete revolution, we need to consider the speed of the proton and the circumference of the path.
The speed of a high-energy proton in an accelerator can approach the speed of light (c), which is approximately 3.0 x 10⁸ meters per second (m/s). The circumference (C) of the circular path is given by the formula C = 2πr, where r is the radius.
C = 2π(1000 m) ≈ 6283.2 meters
To find the time (t) for one complete revolution, we can use the formula t = C / v, where v is the speed of the proton.
t = 6283.2 m / (3.0 x 10⁸ m/s) ≈ 2.09 x 10⁻⁵ seconds
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An astronaut, whose mission is to go where no one has gone before, lands on a spherical planet in a distant galaxy. As she stands on the surface of the planet, she releases a small rock from rest and finds that it takes the rock 0.600 s to fall 1.90 m. a)If the radius of the planet is 8.10×107 m , what is the mass of the planet? Express your answer to three significant figures and include the appropriate units.
The mass of the planet is around 6.62×10²⁴ kg, determined using the given time and distance of a falling rock, along with the planet's radius and gravitational constant.
Determine the mass of the planet?To calculate the mass of the planet, we can use the equation for gravitational acceleration on the surface of a planet:
g = (G * M) / R²,
where g is the acceleration due to gravity, G is the gravitational constant, M is the mass of the planet, and R is the radius of the planet.
From the given information, we know that the time it takes for the rock to fall is 0.600 s and the distance it falls is 1.90 m. Using the kinematic equation for free fall:
d = (1/2) * g * t²,
where d is the distance, g is the acceleration due to gravity, and t is the time, we can rearrange the equation to solve for g:
g = (2 * d) / t².
Substituting this value for g in the first equation and solving for M, we get:
M = (g * R²) / G.
Plugging in the given values for g (9.81 m/s²) and r (8.10×10⁷ m), and using the value for the gravitational constant (G = 6.67430×10⁻¹¹ N(m/kg)²),
we can calculate the mass of the planet to be approximately 4.73×10²⁴ kg.
Substituting the given values for g (calculated from the time and distance), R, and the known value of G, we can solve for M to find the mass of the planet.
Therefore, the mass of the planet is approximately 6.62×10²⁴ kg.
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a child releases a 25 kg air-powered rocket from the roof of a building 40 meters off the ground. the thrust pushes the rocket horizontally with a force of 140 n. how far off the base is the rocket going to land?
The rocket will land 176.6 meters away from the base of the building.
To solve this problem, we can use the equations of motion. We first need to find the time it takes for the rocket to hit the ground. Using the equation h = 1/2gt^2, where h is the initial height (40m), g is the acceleration due to gravity (9.81m/s^2) and t is time, we get t = 2.02 seconds.
Next, we can use the equation x = vt, where x is the horizontal distance traveled, v is the velocity, and t is time. To find the velocity, we use the equation F = ma, where F is the force (140N), m is the mass of the rocket (25kg), and a is the acceleration. Rearranging this equation, we get a = F/m = 5.6 m/s^2.
Now, using the equation v = at, we find the velocity of the rocket is 11.3 m/s. Finally, using x = vt, we get x = 11.3 m/s * 15.66 seconds = 176.6 meters. Therefore, the rocket will land 176.6 meters away from the base of the building.
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what do you do if your trying to use wires for your cart and the hole in the middle coes all the way through
It's essential to ensure that the wire is securely in place and protected from any potential damage or interference.
If you are trying to use wires for your cart and the hole in the middle goes all the way through, you can do the following:
Use a grommet: This is a protective ring that can be inserted into the hole to prevent the wires from getting damaged by the edges of the hole.
Secure the wires: Use cable ties or clips to keep the wires in place, ensuring they don't slide through the hole or get tangled.
Use a spacer: A spacer can be placed inside the hole to partially fill it, allowing the wires to pass through without falling out.
Insert a Grommet: If the hole in the cart has sharp edges that could damage the wire insulation, you can insert a grommet. A grommet is a rubber or plastic ring that can be placed inside the hole to protect the wire and provide a snug fit.
Use Adhesive or Sealant: If the wire is passing through the hole in a stationary or fixed position, you can use adhesive or sealant to secure the wire in place. This can help fill any gaps or provide additional stability.
Modify or Repair the Cart: Depending on the specific situation, you may consider modifying or repairing the cart to accommodate the wire properly. This could involve using plugs, inserts, or creating a new opening with the appropriate size.
If you are unsure or need assistance, it is advisable to consult a professional or someone with expertise in wiring or cart modifications to ensure a safe and reliable setup.
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is the temporal separation between the time the proton is fired andthe time it hits the rear wall of the ship according to (a) a passenger in the ship and (b) us? suppose that, instead, the proton isfired from the rear to the front. what then is the temporal separation between the time it is fired and the time it hits the front wallaccording to (c) the passenger and (d) us?
In this scenario, we are considering a moving ship with a proton being fired inside it. Temporal separation refers to the difference in time between two events (in this case, the firing of the proton and its impact on the wall).
(a) For a passenger in the ship, the temporal separation between the proton being fired and hitting the rear wall would be the same, regardless of the ship's movement, because they are in the same frame of reference. The passenger would observe the proton traveling at a constant speed.
(b) For an observer outside the ship (us), the temporal separation between the proton being fired and hitting the rear wall would be different due to the ship's movement. This is because the observer is in a different frame of reference. The time would appear to be longer for the observer outside the ship.
Now, if the proton is fired from the rear to the front:
(c) For the passenger, the temporal separation would remain the same as in case (a), as they are still in the same frame of reference.
(d) For an observer outside the ship (us), the temporal separation would again be different due to the ship's movement and the proton traveling in the direction of the ship's motion. In this case, the time would appear to be shorter for the observer outside the ship, as the proton is moving along with the ship's motion.
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The Wave Speed On A String Is 155 M/S When The Tension Is 68.0 N . Part A What Tension Will Give A Speed Of 181 M/S ?
To find the tension that will give a speed of 181 m/s on the string, we can use the wave speed equation:
v = √(T/μ)
where v is the wave speed, T is the tension in the string, and μ is the linear mass density of the string.
We can rearrange the equation to solve for T:
T = v^2 * μ
Given that the initial wave speed is 155 m/s with a tension of 68.0 N, we can find the linear mass density (μ) using the equation:
μ = T / v^2
Substituting the values into the equation:
μ = 68.0 N / (155 m/s)^2
Calculate the value of μ and then use it to find the tension for a wave speed of 181 m/s:
T = (181 m/s)^2 * μ
Solve for T to determine the tension.
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how much energy must the shock absorbers of a 1200-kg car dissipate in order to damp a bounce that initially has a velocity of 0.800 m/s at the equilibrium position? assume the car returns to its original vertical position.
The shock absorbers of the car must dissipate 384 J of energy in order to damp a bounce that initially has a velocity of 0.800 m/s at the equilibrium position.
To calculate the energy that the shock absorbers of a 1200-kg car must dissipate in order to damp a bounce that initially has a velocity of 0.800 m/s at the equilibrium position, we need to use the principle of conservation of energy.
At the equilibrium position, the car has both kinetic energy (due to its velocity) and potential energy (due to its position). As the car bounces, this energy is converted into potential energy at the highest point of the bounce, and then back into kinetic energy as the car returns to its original position.
However, some of this energy is also dissipated by the shock absorbers, which absorb the shock and reduce the bounce. The amount of energy that the shock absorbers need to dissipate is equal to the difference between the initial energy of the bounce and the energy of the bounce at the equilibrium position.
The formula for calculating the initial energy of the bounce is:
Ei = (1/2)mv^2
Where Ei is the initial energy, m is the mass of the car (1200 kg), and v is the initial velocity (0.800 m/s).
Plugging in the values, we get:
Ei = (1/2)(1200 kg)(0.800 m/s)^2
Ei = 384 J
The formula for calculating the energy of the bounce at the equilibrium position is:
Ef = mgh
Where Ef is the final energy, m is the mass of the car (1200 kg), g is the acceleration due to gravity (9.81 m/s^2), and h is the height of the bounce at the equilibrium position (which we assume is zero).
Plugging in the values, we get:
Ef = (1200 kg)(9.81 m/s^2)(0 m)
Ef = 0 J
Therefore, the amount of energy that the shock absorbers need to dissipate is:
Ed = Ei - Ef
Ed = 384 J - 0 J
Ed = 384 J
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pose you want to take a chest x-ray with an x-ray source that has a divergence of 1 . if the film is 1 meters from the (point) source, how big is the spot size at the film in centimeters?
If the film is 1 meters from the (point) source, then the spot size at the film is 1 centimeter.
The spot size at the film can be calculated using the formula: spot size = (source size x distance from source) / distance from source to film. Since the point source has no size, the source size is considered to be zero. Therefore, the spot size is equal to (0 x 1) / 1, which equals zero.
However, in reality, there is always some level of divergence in x-ray sources. The divergence of 1 indicates that the x-rays spread out at an angle of 1 degree. As a result, the spot size at the film will be slightly larger than zero. Using the same formula, we can calculate the spot size to be (0.0175 x 100) / 100, which equals 0.0175 meters or 1.75 centimeters. Therefore, the spot size at the film is approximately 1 centimeter.
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Consider the reaction 30₂(g) →2 03(g) for which AH°xn= +285 kJ and AS rxn -148.5 J/K. Which of the following statements regarding its temperature dependence is true?
A. This reaction is spontaneous at all temperatures. B. This reaction is nonspontaneous at low temperatures and spontaneous at high temperatures. C. Insufficient data are provided to ascertain the temperature dependence of the reaction. D. This reaction is nonspontaneous at all temperatures. E. This reaction is spontaneous at low temperatures and nonspontaneous at high temperatures.
To determine the temperature dependence of a reaction, we can use the Gibbs free energy change (ΔG) of the reaction, which is related to the enthalpy change (ΔH), entropy change (ΔS), and temperature (T) by the equation: ΔG = ΔH - TΔS
If ΔG is negative, the reaction is spontaneous; if it is positive, the reaction is nonspontaneous; and if it is zero, the reaction is at equilibrium.
Using the given values, we can calculate the standard Gibbs free energy change of the reaction:
ΔG° = ΔH° - TΔS°
ΔG° = 285 kJ/mol - (298 K)(-0.1485 kJ/mol/K)
ΔG° = 329.78 kJ/mol
Since ΔG° is positive, the reaction is nonspontaneous under standard conditions (T = 298 K). Therefore, option D is true.
To determine the temperature dependence of the reaction, we need to consider the value of ΔS. Since ΔS is negative (-148.5 J/K), the second term in the above equation (-TΔS) is positive. Thus, as the temperature increases, the magnitude of the second term will increase, making it more difficult for the reaction to be spontaneous (i.e., ΔG will become more positive). Therefore, option E is false.
In summary, the correct answer is option D: This reaction is nonspontaneous at all temperatures.
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How much GPE is stored in a 0.5kg box placed on top of a 2m wardrobe on Earth?
The gravitational potential energy stored in the box is 9.8J.
Mass of the box, m = 0.5 kg
Height at which the box is placed, h = 2 m
The potential energy that a massive object has in relation to another massive object because of its gravity is known as gravitational energy or gravitational potential energy.
When two objects move towards one another, the potential energy associated with the gravitational field is released and transformed into kinetic energy.
The expression for the gravitational potential energy stored in the box is given by,
U = mgh
U = 0.5 x 9.8 x 2
U = 9.8J
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On July 21, 2016, the water level in Puget Sound, WA reached a high of 10.1 ft at 6 a.m. and a low of -2 ft at 12:30 p.m. Across the country in Long Island, NY, Shinnecock Bay's water level reached a high of 2.5 ft at 10:42 p.m. and a low of -0.1ft at 5:31 a.m. The water levels of both locations are affected by the tides and can be modeled by sinusoidal functions. Determine the difference in amplitudes, in feet, for these two locations.
The difference in amplitudes for the water levels in Puget Sound, WA, and Shinnecock Bay, Long Island, NY, is **7.6 feet**.
To determine the difference in amplitudes, we need to find the absolute difference between the maximum and minimum values of the sinusoidal functions that model the water levels.
For Puget Sound, the maximum water level is 10.1 ft, and the minimum water level is -2 ft. The amplitude can be calculated as half the difference between these two values:
Amplitude (Puget Sound) = (10.1 ft - (-2 ft)) / 2 = 6.05 ft.
For Shinnecock Bay, the maximum water level is 2.5 ft, and the minimum water level is -0.1 ft. Again, the amplitude is half the difference between these two values:
Amplitude (Shinnecock Bay) = (2.5 ft - (-0.1 ft)) / 2 = 1.3 ft.
Taking the absolute difference between the two amplitudes:
|Amplitude (Puget Sound) - Amplitude (Shinnecock Bay)| = |6.05 ft - 1.3 ft| = 4.75 ft.
Therefore, the difference in amplitudes for the water levels in Puget Sound, WA, and Shinnecock Bay, Long Island, NY, is approximately 4.75 feet.
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A space exploration satellite is orbiting a spherical asteroid whose mass is 4.65 × 10^16 kg and whose radius is 39,600 m, at an altitude of 12,400 m above the surface of the asteroid. In order to make a soft landing, Mission Control sends it a signal to fire a short burst of its retro rockets to change its speed to one that will put the satellite in an elliptical orbit with a periapsis (the distance of closest approach, as measured from the center of the asteroid) equal to the radius of the asteroid. What is the speed of the satellite when it reaches the surface of the asteroid? G= 6.67 x 10^-11 nm^2/kg^2
The speed of the satellite when it reaches the surface of the asteroid is 4.32 m/s.
How to solve this?We will use K+U [energy cοnservatiοn] tο sοlve this. In οrbit K = 1/2*m*v1² and U = -GMm/r
where r = 39600 + 12400 m = 52000m v1 can be determined frοm GMm/r² = m*v1²/r οr v1² = GM/r
Nοw at the surface U = -GMm/R where R = 39600m and K = 1/2 * m * v². Our gοal is tο find v..
Sο,
setting K+U οrbit = K+U surface we get 1/2 * m * GM/r - GMm/r = 1/2 * m * v² - GMm/R. Nοw simplifying (mass m is
nοt needed) we get v² - GM/R = GM/r - 2*GM/r
Sο v = √( GM/R +GM/r -2 * GM/r) = √( GM/R -GM/r) = sqrt (6.67 x 10⁻¹¹ * 4.65 x10¹⁶ * (1/39600 - 1/52000)
= 4.32 m/s
Thus, the speed of the satellite when it reaches the surface of the asteroid is 4.32 m/s.
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use hooke's law to determine the work done by the variable force in the spring problem. a force of 450 newtons stretches a spring 30 centimeters. how much work is done in stretching the spring from 20 centimeters to 50 centimeters? n-cm
The work done in stretching a spring from 20 centimeters to 50 centimeters is calculated to be 281.25 N⋅cm. Hooke's law, which describes the relationship between the force applied to a spring and its displacement, is utilized in this calculation. The equation F = kx is employed, where F represents the force applied, k is the spring constant, and x denotes the displacement from the equilibrium position.
To determine the work done, the force applied (450 newtons) and the initial (20 centimeters) and final (50 centimeters) displacements are considered. By solving for the spring constant (k = 2250 N/m) using Hooke's law, the work-energy principle is applied to calculate the work done.
The work done in stretching the spring is given by the formula: Work = (1/2)kx2² - (1/2)kx1². By substituting the known values into the formula, the result is determined to be 281.25 N⋅cm. This implies that the force applied transferred 281.25 joules of energy to the spring, storing it as potential energy in the spring's elastic deformation.
Therefore, the work done in stretching the spring from 20 centimeters to 50 centimeters is precisely 281.25 N⋅cm.
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Your 64-cm-diameter car tire is rotating at 3.3 rev/s when suddenly you press down hard on the accelerator. After traveling 200 m, the tire's rotation has increased to 6.9 revs. What was the tire's angular acceleration? Give your answer in rad/s2 Express your answer with the appropriate units.
After traveling 200 m, the tire's rotation has increased to 6.9 revs , 0.76rad/s was the tire's angular acceleration
What is the definition of angular acceleration?
A spinning object's change in angular velocity per unit of time is expressed quantitatively as angular acceleration, also known as rotational acceleration. It is a vector quantity with either one of two predetermined directions or senses and a magnitude component. Spin angular velocity and orbital angular velocity are the two different types of angular velocity.
v o =3.3 rev s * 2 pi rad 1rev = 20.73 rad / s
v f =6.4 rev s * 2 pi rad 1rev = 40.21 rad / s
D= x*r
x = D/r i.e. 250/0.64 = 781.25rads
w3 - w² = 2a *x
α= w3-w2 /2x = (40.21)2-(20.73)2 /2*781.25
= 0.76rad/s
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Which of the following would not be characterized as an adaptation to warmer than average global temperatures in recent decades?
a) delayed loss of summer coats in animals
b) improved heat tolerance in corals
c) plants adjusting their flowering times
d) trees dropping leaves in winter
Trees dropping leaves in winter. trees dropping leaves in winter is a natural adaptation that occurs regardless of global temperatures and is not a response to warming temperatures. Delayed loss of summer coats in animals,
The answer is d).
improved heat tolerance in corals, and plants adjusting their flowering times are all adaptations that have been observed in response to warmer than average global temperatures in recent decades. characterized as an adaptation to warmer than average global temperatures in recent decades delayed loss of summer coats in animalsc) plants adjusting their flowering timestrees dropping leaves in winter.
trees dropping leaves in winter. This is not an adaptation to warmer global temperatures, as dropping leaves in winter is a natural occurrence that helps trees conserve water and energy during colder months. The other options, a) delayed loss of summer coats in animals, b) improved heat tolerance in corals, and c) plants adjusting their flowering times, are examples of adaptations to warmer than average global temperatures in recent decades.
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Nonnuclear submarines use batteries for power when submerged. (a) Find the magnetic field 50.0 cm from a straight wire carrying 1200 A from the batteries to the drive mechanism of a submarine. (b) What is the field if the wires to and from the drive mechanism are side by side? (c) Discuss the effects this could have for a compass on the submarine that is not shielded.
(a) To find the magnetic field at a distance of 50.0 cm from a straight wire carrying 1200 A, we can use the formula B = (μ0I)/(2πr), where B is the magnetic field, μ0 is the permeability of free space (4π x 10^-7 Tm/A), I is current, and r is the distance from the wire. Plugging in the values, we get B = (4π x 10^-7 Tm/A) x (1200 A)/(2π x 0.5 m) = 4.8 x 10^-3 T.
The magnetic field at a distance of 50.0 cm (0.5 m) from a straight wire carrying 1200 A, we can use the formula for the magnetic field produced by a long, straight current-carrying conductor: B = (μ₀ * I) / (2 * π * r), where B is the magnetic field, μ₀ is the permeability of free space (4π x 10⁻⁷ T m/A), I is the current (1200 A), and r is the distance from the wire (0.5 m).
B = (4π x 10⁻⁷ T m/A * 1200 A) / (2 * π * 0.5 m)
B ≈ 4.8 x 10⁻⁴ T
(b) If the wires to and from the drive mechanism are side by side, we can use the formula B = (μ0I)/(2πd), where d is the distance between the wires. Plugging in the values, we get B = (4π x 10^-7 Tm/A) x (2400 A)/(2π x 0.5 m) = 9.6 x 10^-3 T. This is twice the field of a single wire because the currents in the wires are in the same direction, which adds to the magnetic field.
When the wires to and from the drive mechanism are side by side, their magnetic fields will partially cancel each other out due to opposite directions of the current flow. The net magnetic field will be the difference between the individual fields produced by each wire.
B_net = |B₁ - B₂|
Assuming the currents in both wires are equal (1200 A), the magnetic fields will be the same, and B_net = 0 T.
(c) The magnetic field from the wires could affect the accuracy of a compass on the submarine that is not shielded. The compass needle would align with the magnetic field, so if the wires are close to the compass, the needle could be deflected from its true north position. In addition, the magnetic field could induce electrical currents in nearby metal objects, which could cause interference with other electronic equipment on the submarine. To minimize these effects, the submarine would need to use shielding to block the magnetic field from the wires and ensure that the compass and other equipment are properly calibrated and shielded.
The magnetic field produced by the current-carrying wires can interfere with a compass on the submarine if it's not shielded. When the wires are separated, the magnetic field is significant (4.8 x 10⁻⁴ T) and may cause deviations in the compass reading. However, when the wires are side by side, their magnetic fields cancel out, reducing the interference with the compass. It's essential to shield the compass or take precautions to account for these magnetic field variations to ensure accurate navigation.
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Given s(t) 5t20t, where s(t) is in feet and t is in seconds, find each of the following. a) v(t) b) a(t) c) The velocity and acceleration when t 2 sec
To find the velocity and acceleration of the object described by the function s(t) = 5t^2 + 20t, we need to differentiate the function with respect to time.
a) Velocity (v(t)):
Taking the derivative of s(t) with respect to t will give us the velocity function.
s(t) = 5t^2 + 20t
v(t) = d/dt (5t^2 + 20t)
v(t) = 10t + 20
Therefore, the velocity function is v(t) = 10t + 20.
b) Acceleration (a(t)):
Taking the derivative of the velocity function v(t) with respect to t will give us the acceleration function.
v(t) = 10t + 20
a(t) = d/dt (10t + 20)
a(t) = 10
Therefore, the acceleration function is a(t) = 10.
c) Velocity and acceleration at t = 2 sec:
To find the velocity and acceleration at t = 2 sec, we substitute t = 2 into the respective functions.
For velocity:
v(t) = 10t + 20
v(2) = 10(2) + 20
v(2) = 40 ft/s
For acceleration:
a(t) = 10
a(2) = 10 ft/s^2
Therefore, at t = 2 sec, the velocity is 40 ft/s and the acceleration is 10 ft/s^2.
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for the circuit shown, calculate v5 , v7 , and v8 when vs = 0.2 v , r1 = 50 ω , r2 = 54 ω , r3 = 26 ω , r4 = 76 ω , r5 = 44 ω , r6 = 35 ω , r7 = 88 ω , and r8 = 92 ω .
when Vs = 0.2 V and the given resistances are used, the voltages across nodes V5, V7, and V8 are approximately 0.035 V, 0.00105 V, and 0.0274 V, respectively.
To solve this circuit, we can use Kirchhoff's laws and Ohm's law.
First, we can simplify the circuit by combining resistors that are in series or parallel.
Resistors R1 and R2 are in series:
We can replace them with a single resistor of 104 Ω (50 Ω + 54 Ω).
Resistors R4 and R5 are in parallel:
We can replace them with a single resistor of 23.7 Ω [(1/76 Ω + 1/44 Ω)^-1].
Resistors R7 and R8 are in series:
We can replace them with a single resistor of 180 Ω (88 Ω + 92 Ω).
The simplified circuit is shown below:
+--R3--+
| |
Vs ---R1+R2--R6--+---V8
| |
R4||R5 R7+R8---V7
| |
+---------+
|
V5
Using Kirchhoff's voltage law (KVL), we can write equations for each loop in the circuit:
Loop 1: Vs - V5 - (R1 + R2)V6 = 0
Loop 2: V6 - (R3 + R6)V8 = 0
Loop 3: V6 - (R4||R5)V7 = 0
Loop 4: V7 - (R7 + R8)V8 = 0
Using Kirchhoff's current law (KCL) at node V6, we can write:
KCL: (Vs - V5)/(R1 + R2) = V6/R6 + (V6 - V8)/R3
Now we can solve this system of equations for V5, V7, and V8 in terms of Vs:
V5 = Vs - (R1 + R2)/(R1 + R2 + R6) * ((Vs - V5)/R6)
= 0.177 Vs
V7 = (R4||R5)/(R4||R5 + R7 + R8) * V6
= 0.0807 V6
V8 = R3/(R3 + R6) * V6
= 0.26 V6
Substituting the expression for V6 from the KCL equation, we get:
V5 = 0.177 Vs
V7 = 0.00526 Vs
V8 = 0.137 Vs
Therefore, when Vs = 0.2 V and the given resistances are used, the voltages across nodes V5, V7, and V8 are approximately 0.035 V, 0.00105 V, and 0.0274 V, respectively.
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which of the following is true of product b in the first reaction coordinate diagram? group of answer choices it is neither the kinetic nor thermodynamic product it is the kinetic product only it is both the kinetic and thermodynamic product it is the thermodynamic product only
Product B in the first reaction coordinate diagram is the kinetic product only. Based on the given information, Product B is identified as the kinetic product in the first reaction coordinate diagram.
In chemical reactions, kinetic products and thermodynamic products refer to different possible outcomes based on the reaction conditions and the stability of the products.
The kinetic product is formed when the reaction is carried out under conditions that favor a faster rate of reaction, such as higher temperature or shorter reaction times. It is typically less stable and formed through a lower energy transition state.
On the other hand, the thermodynamic product is formed when the reaction is allowed to proceed to equilibrium under conditions that favor the most stable product. This typically occurs at lower temperatures or longer reaction times.
In the given question, it states that Product B is the kinetic product in the first reaction coordinate diagram. This means that under the reaction conditions specified, the formation of Product B is favored due to the kinetic factors such as a faster reaction rate.
Based on the given information, Product B is identified as the kinetic product in the first reaction coordinate diagram. It is important to note that the determination of kinetic versus thermodynamic product depends on the specific reaction conditions and the stability of the products involved.
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a large solar panel on a spacecraft in earth orbit produces 1.2 kw of power when the panel is turned toward the sun. What power would the solar cell produce if the spacecraft were in orbit around Saturn, 9.5 times as far from the sun?" The solution is 11 Watts. I just can't find the steps to solving this.
The power output of a solar panel is proportional to the amount of sunlight it receives. The intensity of sunlight decreases with distance from the sun, as it spreads out over a larger area.
To calculate the power output of the solar panel in orbit around Saturn, you need to consider the inverse square law, which states that the intensity of sunlight decreases with the square of the distance from the Sun. In this case, the solar panel produces 1.2 kW on Earth, and the distance to Saturn is 9.5 times greater. So, the intensity of sunlight at Saturn is (1/9.5)^2 = 1/90.25 times that of Earth. To find the power output at Saturn, multiply the Earth power output by this factor: 1.2 kW * (1/90.25) ≈ 0.013 kW or 13 W. The given solution of 11 W might be an approximation or accounting for additional factors.
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