A solid sphere of mass 1.5 kg and radius 15 cm rolls without slipping down a 35° incline that is 7.0 m long. assume it started from rest. the moment of inertia of a sphere is given by i= (2/5)mr2.

Answers

Answer 1

At the bottom of the incline, the sphere has a translational velocity of 6.32 m/s and a rotational velocity of 42.13 rad/s, and the total energy is split between kinetic and rotational energy with KE = 37.58 J and RE = 21.28 J.

The motion of the sphere can be analyzed by considering its potential energy (PE), kinetic energy (KE), and rotational energy (RE).

At the top of the incline, all of the energy is in the form of potential energy:

PE = mgh

where

m is the mass of the sphere,

g is the acceleration due to gravity (9.81 m/s^2), and

h is the height of the incline.

The height can be calculated as follows:

h = sin(35°) x 7.0 m

  = 4.0 m

PE = (1.5 kg)(9.81 m/s²)(4.0 m)

    = 58.86 J

As the sphere rolls down the incline, its potential energy is converted to kinetic energy and rotational energy.

The kinetic energy can be calculated using the translational velocity of the sphere:

[tex]KE = (1/2)mv^2[/tex]

where

v is the velocity of the sphere.

The velocity can be calculated using the conservation of energy principle, which states that the total energy (PE + KE + RE) remains constant:

PE = KE + RE

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

PE = 0

KE + RE = 58.86 J

The translational velocity of the sphere can be calculated from the KE as follows:

[tex]KE = (1/2)mv^2[/tex]

[tex]v = \sqrt{(2KE/m)[/tex]

[tex]v = \sqrt{(2(58.86 J)/(1.5 kg))[/tex]

  = 6.32 m/s

The rotational energy of the sphere can be calculated using its moment of inertia:

[tex]RE = (1/2)Iw^2[/tex]

where

I is the moment of inertia of the sphere,

w is its angular velocity, and

RE is its rotational energy.

The moment of inertia of a solid sphere is given by

[tex]I = (2/5)mr^2[/tex]

[tex]I = (2/5)(1.5 kg)(0.15 m)^2[/tex]

 = 0.0225 kg*m²

Since the sphere is rolling without slipping, the translational velocity of the sphere is related to its angular velocity by:

v = rw

where

r is the radius of the sphere.

Solving for w:

w = v/r

  = (6.32 m/s)/(0.15 m)

  = 42.13 rad/s

The rotational energy of the sphere can now be calculated:

[tex]RE = (1/2)Iw^2[/tex]

     [tex]= (1/2)(0.0225 kg*m^2)(42.13 rad/s)^2[/tex]

     = 21.28 J

Therefore, at the bottom of the incline, the sphere has a translational velocity of 6.32 m/s and a rotational velocity of 42.13 rad/s, and the total energy is split between kinetic and rotational energy with KE = 37.58 J and RE = 21.28 J.

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Related Questions

Which of the following statements is FALSE? Hints Homeotherms can sustain a high level of physical activity for long periods. Homeotherms require a very low amount of glucose for daily activities O Homeotherms can generate energy rapidly when the situation demands Homeotherms have relatively higher metabolic rates than similar-sized poikilotherms Homeothermy allows organisms to function at a higher level in cold environments

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The false statement is: "Homeotherms require a very low amount of glucose for daily activities."

Homeotherms, organisms that can maintain a constant body temperature, require a relatively high amount of glucose for their daily activities. Glucose is an essential energy source for homeotherms to support their high metabolic rates and sustain physical activity for extended periods. They have the ability to generate energy rapidly when the situation demands, allowing them to respond quickly to challenges or engage in intense activities. Homeotherms also have relatively higher metabolic rates compared to similar-sized poikilotherms (organisms with variable body temperatures). Homeothermy provides advantages in cold environments, as these organisms can function at a higher level by regulating their internal temperature despite external temperature fluctuations.

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a mass oscillates on a spring with a period of 0.83 s and an amplitude of 4.7 cm. Find an equation giving x as a function of time, assuming the mass starts at x=A at time t=0 .

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The equation giving x as a function of time is:

[tex]$x(t) = 4.7 \, \text{cm} \cos(7.54 \, \text{s}^{-1} \, t)$[/tex]

The motion of a mass oscillating on a spring can be described by a sinusoidal function of time, given by the equation:

[tex]$x(t) = A \cos(\omega t + \phi)$[/tex]

where A is the amplitude of the oscillation, [tex]$\omega$[/tex] is the angular frequency, and [tex]$\phi$[/tex] is the phase angle.

The period of the oscillation is given by:

[tex]$T = \frac{2 \pi}{\omega}$[/tex]

where T is the period and [tex]$\omega$[/tex] is the angular frequency.

From the given information, we know that the period of the oscillation is 0.83 s and the amplitude is 4.7 cm. We can use these values to find the angular frequency:

[tex]$\omega = \frac{2 \pi}{T} = \frac{2 \pi}{0.83 \, \text{s}} \approx 7.54 \, \text{s}^{-1}$[/tex]

The phase angle can be found by considering the initial conditions, i.e., the position and velocity of the mass at t=0. Since the mass starts at x=A at time t=0, we have:

[tex]$x(0) = A \cos(\phi) = A$[/tex]

which implies that [tex]\phi = 0$.[/tex]

Therefore, the equation giving x as a function of time is:

[tex]$x(t) = 4.7 \, \text{cm} \cos(7.54 \, \text{s}^{-1} \, t)$[/tex]

This equation describes the motion of the mass as a sinusoidal function of time, with an amplitude of 4.7 cm and a period of 0.83 s. As time increases, the mass oscillates back and forth between the maximum displacement of +4.7 cm and -4.7 cm.

The phase angle of 0 indicates that the mass starts its oscillation at its maximum displacement.

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Three identical very dense masses of 6200 kg each are placed on the x axis. One mass is at x1 = -110 cm , one is at the origin, and one is at x2 = 300 cm .
Part A
What is the magnitude of the net gravitational force Fgrav on the mass at the origin due to the other two masses?
Take the gravitational constant to be G = 6.67×10−11 N⋅m2/kg2 .
Express your answer in newtons to three significant figures.
Part B
What is the direction of the net gravitational force on the mass at the origin due to the other two masses?
+x direction
or
-x direction

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Three identical very dense masses of 6200 kg each are placed on the x axis. One mass is at x1 = -110 cm , one is at the origin, and one is at x2 = 300 cm.

Part A The magnitude of the net gravitational force on the mass at the origin due to the other two masses is 1.55 × [tex]10^{-6}[/tex] N.

Part B The gravitational force from each mass will act towards the center of mass, which is to the left of the origin. The net gravitational force will be in the -x direction.

Part A

The magnitude of the net gravitational force Fgrav on the mass at the origin due to the other two masses can be calculated using the formula

Fgrav = G * (m1 * m2 /[tex]r1^{2}[/tex]) + G * (m2 * m3 / [tex]r2^{2}[/tex])

Where G is the gravitational constant, m1, m2, and m3 are the masses, r1 and r2 are the distances between the mass at the origin and the masses at x1 and x2, respectively.

Substituting the given values, we get

Fgrav = 6.67×[tex]10^{-11}[/tex] * [(6200 * 6200) / [tex]1.1^{2}[/tex] + (6200 * 6200) / [tex]3^{2}[/tex]]

Fgrav = 1.55 × [tex]10^{-6}[/tex] N

Therefore, the magnitude of the net gravitational force on the mass at the origin due to the other two masses is 1.55 × [tex]10^{-6}[/tex] N.

Part B

The direction of the net gravitational force on the mass at the origin due to the other two masses is in the -x direction because the mass at x1 is on the left side of the origin and the mass at x2 is on the right side of the origin. Therefore, the gravitational force from each mass will act towards the center of mass, which is to the left of the origin.

Hence, the net gravitational force will be in the -x direction.

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When in use, a small dashboard lamp in a car is designed to draw 0. 4 A from the car's 12 V battery. The resistance (measured in Ω ) of this lamp filament must be approximately -

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The resistance of the lamp filament is approximately 30 Ω. This can be calculated using Ohm's Law: resistance (R) = voltage (V) / current (I), where V = 12 V and I = 0.4 A.

Ohm's Law states that the resistance of a circuit element can be determined by dividing the voltage across it by the current flowing through it. In this case, the voltage is 12 V (given) and the current is 0.4 A (given). By substituting these values into the formula R = V / I, we can calculate the resistance of the lamp filament.

[tex]R = 12 V / 0.4 A[/tex]

[tex]R ≈ 30 Ω[/tex]

Therefore, the resistance of the lamp filament is approximately 30 Ω. This means that when the lamp is in use, it will draw 0.4 A of current from the car's 12 V battery.

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a 5.70 kgkg watermelon is dropped from rest from the roof of a 17.5 mm-tall building and feels no appreciable air resistance. Calculate the work done by gravity on the watermelon during its displacement from the roof to the ground Express your answer with the appropriate units.

Answers

The work done by gravity on the watermelon during its displacement from the roof to the ground is 978.5 Joules.

Work is defined as the amount of energy transferred when a force is applied to an object and the object is displaced in the direction of the force.

We know,

Work done = Change in potential energy

Therefore, the work done by gravity on the watermelon during its displacement is equal to the change in its potential energy, that can be calculated using the formula;

ΔU = mgh

where, ΔU = change in potential energy,

              m = mass of the watermelon,

               g = acceleration due to gravity, and

               h = height of the building.

Given, m = 5.70 Kg and h = 17.5 m

Putting the given values in equation, we get:

ΔU = (5.70 kg) × (9.81 m/s²) × (17.5 m)

     = 978.5 J

Therefore, the work done by gravity on the watermelon during its displacement from the roof to the ground is 978.5 Joules.

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A particle moving in one dimension (the x-axis) is described by the wave function ψ(x) = { Ae^-bx, for x ≥ 0 { Ae^bx, for x < 0 where b = 2.00 m^-1, A > 0, and the +x-axis points toward the right, Determine A so that the wave function is normalized, Sketch the graph of the wave function, Find the probability of finding this particle in each of the following regions: within 50.0 cm of the origin, on the left side of the origin (can you first guess the answer by looking at the graph of the wave function?) (iii) between x = 0.500 m and x = 1.00 m.

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a)The graph of the wave function consists of two exponential functions that are mirror images of each other across the y-axis. The amplitude of each function decreases with increasing distance from the origin.

b) The probability of finding the particle within 50.0 cm of the origin is  0.86.

c) The probability of finding the particle on the left side of the origin is 0.14.

d)The probability of finding the particle between x = 0.500 m and x = 1.00 m is 0.119.

To normalize the wave function, we need to find the value of A that satisfies the condition:

∫|ψ(x)|^2 dx = 1, where the integral is taken over all space.

Since ψ(x) is an even function (i.e., ψ(x) = ψ(-x)), we can calculate the integral over only positive values of x and then multiply by 2. Using the wave function given, we get:

∫|ψ(x)|^2 dx = 2 ∫[A^2e^-2bx dx] from 0 to ∞ = 2A^2/b = 1

Solving for A, we get A = √(b/2) = 0.5√2 m^-1.

The graph of the wave function consists of two exponential functions that are mirror images of each other across the y-axis. The amplitude of each function decreases with increasing distance from the origin.

To find the probability of finding the particle within 50.0 cm of the origin, we integrate the probability density function |ψ(x)|^2 over the range -0.5 m to 0.5 m:

P = ∫0.5_-0.5 |ψ(x)|^2 dx = 2 ∫0.5_0 (A^2e^-2bx) dx = (1-e^-b) = 0.86

To find the probability of finding the particle on the left side of the origin, we integrate the probability density function |ψ(x)|^2 over the range -∞ to 0:

P = ∫0_-∞ |ψ(x)|^2 dx = 2 ∫0_∞ (A^2e^-2bx) dx = 1 - (1-e^-b) = 0.14

To find the probability of finding the particle between x = 0.500 m and x = 1.00 m, we integrate the probability density function |ψ(x)|^2 over the range 0.5 m to 1.0 m:

P = ∫1.0_0.5 |ψ(x)|^2 dx = 2 ∫1.0_0.5 (A^2e^2bx) dx = (e^-b - e^-2b) = 0.119

From the graph, we can see that the probability of finding the particle within 50.0 cm of the origin is high, while the probability of finding the particle on the left side of the origin is low. This is because the wave function has a higher amplitude on the right side of the origin, where the particle is more likely to be found.

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two point charges are separated by 7.0 cm. the attractive force between them is 24 the force between them when they are separated by 12]

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The attractive force between two point charges can be calculated using Coulomb's law, which states that the force is directly proportional to the product of the charges and inversely proportional to the square of the distance between them.

Therefore, we can use the equation:

F = k * q1 * q2 / r^2

where F is the force, k is the Coulomb constant, q1 and q2 are the charges, and r is the distance between them.

In this case, we know that the distance between the charges changes from 7.0 cm to 12 cm. Therefore, we can use the equation to find the new force:

F' = k * q1 * q2 / (12 cm)^2

To solve for F', we need to know the values of k, q1, and q2. Unfortunately, these values are not provided in the question. Therefore, we cannot give an exact answer to this question.

However, we can make some general observations based on the information provided. We know that the force between the charges decreases as the distance between them increases. Therefore, we would expect the force to be smaller when the charges are separated by 12 cm compared to when they are separated by 7 cm. Additionally, we know that the force between the charges is attractive, meaning that the charges have opposite signs. If the charges were of the same sign, the force would be repulsive.

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Assume all angles to be exact A light beam traveling upward in a plastic material with an index of refraction of 160 is incident on an upper horizontal air interface At certain angles of incidence, the light is not transmitted into airThe cause of this reflection refraction total internal reflection

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At incident angles greater than 39.8 degrees, the light beam would undergo total internal reflection and not pass through the interface into the air.

When a light beam traveling in a material encounters an interface with another material, the direction of the light can be affected. The amount of refraction or bending of the light depends on the difference in the indices of refraction between the two materials. The index of refraction is the ratio of the speed of light in a vacuum to the speed of light in the material.

If the incident angle of the light beam is such that the angle of refraction in the second material exceeds 90 degrees, total internal reflection occurs. This means that the light beam is completely reflected back into the original material and does not pass through the interface into the second material.

In this scenario, a light beam is traveling upward in a plastic material with an index of refraction of 1.60 and encounters an upper horizontal air interface. As the angle of incidence increases, the angle of refraction in the air also increases. At a certain angle of incidence, the angle of refraction in the air would exceed 90 degrees, causing the light to undergo total internal reflection and not pass through the interface into the air.

This critical angle of incidence, at which the angle of refraction equals 90 degrees, can be calculated using Snell's law, which relates the angles and indices of refraction of the two materials. The critical angle is given by[tex]$\theta_c = \sin^{-1}(n_2/n_1)$[/tex], where [tex]$n_1$[/tex] is the index of refraction of the first material (plastic in this case) and [tex]$n_2$[/tex] is the index of refraction of the second material (air in this case). Substituting the given values, we get [tex]$\theta_c = \sin^{-1}(1/1.60) \approx 39.8$[/tex] degrees.

Therefore, at incident angles greater than 39.8 degrees, the light beam would undergo total internal reflection and not pass through the interface into the air. This phenomenon of total internal reflection has applications in optical fibers and other optical devices.

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a hollow sphere is rolling along a horizontal floor at 4.50 m/s when it comes to a 27.0 ∘ incline.how far up the incline does it roll before reversing direction?

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If a hollow sphere is rolling along a horizontal floor at 4.50 m/s when it comes to a 27.0 ∘ incline then the hollow sphere rolls up the incline a distance of approximately 0.665 meters before reversing direction.

To solve this problem, we can use the conservation of mechanical energy. At the bottom of the incline, the sphere has kinetic energy due to its motion and no potential energy. At the top of the incline, the sphere has potential energy due to its height and no kinetic energy. Therefore, the initial kinetic energy must be equal to the final potential energy, neglecting any energy losses due to friction.

Let's denote the mass of the hollow sphere as m, its radius as R, and the height it reaches on the incline as h. Then, we can write:

Initial kinetic energy = 1/2 × m × v², where v is the speed of the sphere at the bottom of the incline.

Final potential energy = m × g × h, where g is the acceleration due to gravity.

Setting these two energies equal, we get:

1/2 × m × v²= m ×g ×h

Simplifying and solving for h, we get:

h = v² / (2 ×g) × (1 - sinθ), where θ is the angle of the incline.

Substituting the given values, we get:

h = (4.50 m/s)² / (2 × 9.81 m/s²) × (1 - sin(27°)) ≈ 0.665 m

Therefore, the hollow sphere rolls up the incline a distance of approximately 0.665 meters before reversing direction.

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***50 POINTS
Literally an answer for any of the questions will help I’m so lost

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The magnitude of the charge is 1.05 x 10⁻¹⁰C.

The number of elementary particles needed is 6.56 x 10⁸.

The capacitance of the parallel plate capacitor is 8.8 x 10⁻¹²F.

1) The distance between the charges, r = 1 m

Electrostatic force between the charges, F = 1 N

The expression for the electrostatic force between the charges is given by,

F = (1/4πε₀)q²/r²

where ε₀ is the constant called permittivity of free space.

So,

1 = 9 x 10⁹ x q²/1²

Therefore, the magnitude of the charge,

q = √(1/9 x 10⁹)

q = 1.05 x 10⁻¹⁰C

2) The number of elementary particles needed to create this charge,

n = q/e

n = 1.05 x 10⁻¹⁰/(1.6 x 10⁻¹⁹)

n = 6.56 x 10⁸

3) potential difference between the capacitor plates, V = 12 V

Charge applied to the capacitor plate, q = 1.05 x 10⁻¹⁰C

So, the capacitance of the parallel plate capacitor,

C = q/V

C = 1.05 x 10⁻¹⁰/12

C = 8.8 x 10⁻¹²F

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In a right triangle, one angle measures xo, where sinxo=54. What is cos(90o−xo)?

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Required value of cos(90o−xo) is 1/54.

In a right triangle, one angle measures xo and sinxo=54. We can use the fact that sinxo=opposite/hypotenuse to find the ratio of the opposite side to the hypotenuse. Let's call the opposite side "a" and the hypotenuse "c". So we have:

sinxo = a/c

54 = a/c

We can use the Pythagorean theorem to find the adjacent side of the triangle (let's call it "b"):

a² + b² = c²

We know that this is a right triangle, so we can use the fact that xo + 90o = 180o to find xo's complement angle:

90o - xo

Now we can use the cosine function to find cos(90o - xo):

cos(90o - xo) = adjacent/hypotenuse

cos(90o - xo) = b/c

To find b, we can use the Pythagorean theorem again:

a² + b² = c²

b² = c² - a²

We know that c = a/54, so we can substitute:

b² = (a/54)² - a²

b² = a²(1/54² - 1)

b² = a²(1 - 1/54²)

b² = a²(54² - 1)/54²

b² = a²(2915)/54²

Now we can substitute b into our cosine function:

cos(90o - xo) = b/c

cos(90o - xo) = (a/54)/(a)

cos(90o - xo) = 1/54

So the answer is cos(90o - xo) = 1/54

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3 pt Select True or False for the following statements about action of light on a diffraction grating. o If the distance between the screen and the grating is halved, then distance between the bright fringes doubles. 14. AO True BO False o If the wavelength of the light is increased, then the dis- tance between the bright fringes increases. 15. AO True BO False b If the line density of the grating is halved, then the distance between the bright fringes also halves 10. AO True BO False Printed from LON-CAPAOMSU Licensed under GNU General Public License

Answers

Related to action of light on a diffraction grating, the statements are False, True, and False.

What exactly is a diffraction grating?

A diffraction grating is a device with a large number of parallel and equidistant slits. When light passes through a diffraction grating, it diffracts and produces a series of bright fringes on a screen behind the grating. The distance between the bright fringes depends on several factors, including the distance between the slits in the grating, the angle of incidence of the light, the order of the bright fringe, and the wavelength of the light.

1. If the distance between the screen and the grating is halved, then distance between the bright fringes doubles. False.

If the distance between the screen and the grating is halved, the distance between the bright fringes does not double. The distance between the bright fringes is given by the equation:

d sin θ = mλ

where d is the distance between the slits in the grating

θ is the angle between the incident light and the normal to the grating

m is the order of the bright fringe

λ is the wavelength of the light.

Halving the distance between the screen and the grating will increase the angle θ, but it does not affect d, m, or λ. Therefore, the distance between the bright fringes does not double.

2. If the wavelength of the light is increased, then the distance between the bright fringes increases. True.

The distance between the bright fringes in a diffraction grating is given by the equation:

d sin θ = mλ

where d is the distance between the slits in the grating

θ is the angle between the incident light and the normal to the grating

m is the order of the bright fringe

λ is the wavelength of the light.

If the wavelength of the light is increased, the distance between the bright fringes will also increase. This is because the wavelength appears in the denominator of the equation, so an increase in λ will lead to a proportional increase in the distance between the bright fringes.

3. If the line density of the grating is halved, then the distance between the bright fringes also halves. False.

The distance between the bright fringes in a diffraction grating is given by the equation:

d sin θ = mλ

where d is the distance between the slits in the grating

θ is the angle between the incident light and the normal to the grating

m is the order of the bright fringe

λ is the wavelength of the light.

If the line density of the grating is halved (i.e., the distance between the slits in the grating is doubled), the distance between the bright fringes does not halve. In fact, the distance between the bright fringes is directly proportional to the distance between the slits, so doubling the distance between the slits will also double the distance between the bright fringes.

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Consider the following MOS Amplifier where Ry = 562 k12, R2 = 428 k 2, Rp= 41 kN2, Rs = 20 k 2, and Ru=100 k 2. The MOSFET parameters are: kn = 0.41 mA/V, V1 = 1V, and 1=0.0133 V-1. Find the voltage gain +10V w RD R1 C00 Vout HA 1k12 C00 WA M -RL Vin R2 w C → 00

Answers

Since gm = 0, this MOSFET is in cutoff and not amplifying the input signal. The voltage gain for this MOS Amplifier would be 0 as well, as the MOSFET is not operating in the active region.

To find the voltage gain of the MOS amplifier, we can start by calculating the small signal parameters:

gm = sqrt(2*kn*ID) = sqrt(2*0.41mA/V*(10V/562k12)) = 1.36mS

rds = 1/(kn*ID) = 1/(0.41mA/V*(10V/562k12)) = 138.7k12

ro = rds*(1+lambda*VDS) = 138.7k12*(1+0.0133V-1*10V) = 220.8k12

Next, we can calculate the voltage gain using the following formula:

Av = -gm*(R2||Rs||ro)/(1+gm*Rp)

Av = -1.36mS*(428k2||20k2||220.8k12)/(1+1.36mS*41kN2)

Av = -7.62

So the voltage gain of the MOS amplifier is -7.62.
To find the voltage gain of the given MOS Amplifier, we first need to calculate the values of a few parameters. Using the given component values, we can find the values of gm (transconductance) and r0 (small-signal output resistance).

1. Calculate gm (transconductance):
gm = kn * (V1 - Vt) = 0.41 mA/V * (1V - 1V) = 0 mA/V

However, since gm = 0, this MOSFET is in cutoff and not amplifying the input signal. The voltage gain for this MOS Amplifier would be 0 as well, as the MOSFET is not operating in the active region.

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What resource can take centuries to millions of years to replenish are referred to as

Answers

Resources that can take centuries to millions of years to replenish are typically referred to as non-renewable resources.

Fossil fuels, such as coal, oil, and natural gas, are a well-known example of a non-renewable resource. These fuels are made from the remains of extinct plants and animals that suffered intense pressure and heat to develop millions of years ago. Carbon dioxide and other greenhouse gases are released through the mining and combustion of fossil fuels, causing climate change.

Minerals and metals like copper, gold, iron, and aluminium are another illustration. These resources are frequently concentrated in finite amounts within the crust of the Earth and must be removed via significant mining operations. Significant environmental effects of the extraction process include habitat destruction, water pollution, and soil deterioration.

These non-renewable resources become scarcer as they are used up, which raises prices and raises the possibility of access conflicts.

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.When light reflects off of a windshield or a pool of water, it can become partially or even completely polarized. Consider sunlight that reflects off the smooth surface of an unoccupied swimming pool. (a) At what angle of reflection is the light completely polarized? (b) What is the corresponding angle of refraction for the light that is transmitted (refracted) into the water? (c) At night, an underwater floodlight is turned on in the pool. Repeat parts (a) and (b) for rays from the floodlight that strike the smooth surface from below.
d) Light travels through water with na=1.33 and reflects off a glass surface with nb=1.63 . At what angle of reflection is the light completely polarized?
Express your answer in degrees to three significant figures.

Answers

The corresponding angle of refraction for the light from the floodlight that is transmitted into the water.

What is the angle of reflection at which light is completely polarized when reflecting off an unoccupied swimming pool? What is the corresponding angle of refraction for the transmitted light? What are the equivalent angles for light from an underwater floodlight reflecting off the pool surface from below? What is the angle of reflection at which light is completely polarized when traveling through water and reflecting off a glass surface?When light reflects off a smooth surface, such as the surface of an unoccupied swimming pool, the reflected light becomes completely polarized when the angle of incidence is equal to the Brewster's angle (θ_B). Brewster's angle is defined by the equation:

θ_B = arctan(n2/n1)

where n1 and n2 are the refractive indices of the two media involved, in this case, air and water. The refractive index of air is approximately 1, and the refractive index of water is approximately 1.33. Plugging these values into the equation, we can calculate the Brewster's angle for air-to-water reflection:

θ_B = arctan(1.33/1) ≈ 53.13 degrees

Therefore, the angle of reflection at which the light becomes completely polarized is approximately 53.13 degrees.

The corresponding angle of refraction for the light that is transmitted (refracted) into the water can be found using Snell's law:

n1 * sin(θ_i) = n2 * sin(θ_r)

where n1 and n2 are the refractive indices of the two media, θ_i is the angle of incidence, and θ_r is the angle of refraction.

For this case, the angle of incidence is equal to the Brewster's angle (θ_B), which we calculated in part (a). Plugging the values into Snell's law, we can solve for the angle of refraction (θ_r):

1 * sin(θ_B) = 1.33 * sin(θ_r)

sin(θ_r) = sin(θ_B) / 1.33

θ_r = arcsine(sin(θ_B) / 1.33)

θ_r ≈ arcsine(sin(53.13°) / 1.33) ≈ 40.12 degrees

Therefore, the corresponding angle of refraction for the light that is transmitted into the water is approximately 40.12 degrees.

When the underwater floodlight is turned on in the pool at night, the light rays from the floodlight that strike the smooth surface from below will also experience polarization. The angle of reflection at which the light becomes completely polarized remains the same as in part (a), which is approximately 53.13 degrees.

The corresponding angle of refraction for the light that is transmitted into the water can be calculated using Snell's law, similar to part (b). However, in this case, the light is traveling from water to air, so we need to consider the refractive indices of water and air:

n1 * sin(θ_i) = n2 * sin(θ_r)

where n1 and n2 are the refractive indices of the two media, θ_i is the angle of incidence, and θ_r is the angle of refraction.

For this case, the refractive indices are reversed compared to part (b). Plugging the values into Snell's law, we can solve for the angle of refraction (θ_r):

1.33 * sin(θ_i) = 1 * sin(θ_r)

sin(θ_r) = sin(θ_i) / 1.33

θ_r = arcsine(sin(θ_i) / 1.33)

Since the angle of incidence (θ_i) is equal to the Brewster's angle (θ_B), we can use the same value calculated in part (a):

θ_r = arcsine(sin(53.13°) / 1.33) ≈ 40.12 degrees

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a rectangular channel made of unfinished concrete, 10ft wide, conveys a flow of 40 cfs. the bed slope of the channel is 7 x 10-3. estimate the following; 1.1) Critical depth(1.2) Uniform depth(1.3) If the flow depth at one location is 0.9 ft, estimate the flow depth 100 ft downstream (horizontal) in thechannel if friction and head loss can be neglected.(1.4) Repeat (1.3) if the upstream depth is 0.3 ft.(1.5) Create a specific energy diagram with the computer for this flow/channel, and illustrate cases (1.3) and(1.4) on the diagram. Label the critical depth, super-/sub-critical limbs, and the upstream/downstreamdepths

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The flow depth 100 ft downstream is 0.19 ft.

Q = (1.49/n) × A × R²(2/3) × S²(1/2)

where:

Q = flow rate (cubic feet per second)

n = Manning's roughness coefficient

A = cross-sectional area of the channel (square feet)

R = hydraulic radius (A/P, where P is the wetted perimeter) (feet)

S = bed slope (channel slope) (dimensionless)

Given:

Width of the channel (B) = 10 ft

Flow rate (Q) = 40 c f s

Bed slope (S) = 7 x 10²(-3) (dimensionless)

Critical depth:

The critical depth occurs when the specific energy is minimized. For a rectangular channel, the critical depth (y c) can be calculated using the following formula:

y c = (Q²2 / (B ×sqrt(S)))²(1/3)

Substituting the given values:

y c = (40²2 / (10 × sqrt(7 x 10³(-3))))³(1/3)

y c =3.009 ft

1.2) Uniform depth:

The uniform depth (y) can be approximated as the flow depth when the channel is flowing at the critical depth. Therefore, y = y c =3.009 ft.

The flow depth remains constant along the horizontal section. Therefore, the flow depth downstream (y-downstream) will be the same as the given flow depth (0.9 ft).

Depth 100 ft downstream (horizontal) with an upstream depth of 0.3 ft:

To estimate the flow depth downstream with an upstream depth of 0.3 ft, we can assume that the specific energy remains constant. The specific energy (E) can be calculated as follows,

E = (Q²2 / (2gA²2)) + y

where g is the acceleration due to gravity (32.2 ft/s²2).

First, calculate the specific energy at the given upstream depth:

E-upstream = (40²2 / (2 × 32.2 × (10 × 0.3)²2)) + 0.3

Then, calculate the flow depth downstream (y-downstream) using the same specific energy:

E-downstream = E-upstream

(40²2 / (2 × 32.2 × (10 × y-downstream)²2)) + y-downstream = E-upstream

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a mixture initiall contains 0.50 m a, 0.85 m b. the equilibrium concentration of c is 0.7 m. based on this, determine the value of the equilibrium constant for the reaction.

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It is defined as the ratio of the concentrations of the products to the concentrations of the reactants, with each concentration raised to the power of its stoichiometric coefficient in the balanced chemical equation.The equilibrium constant, denoted by Kc, is a measure of the extent to which a chemical reaction proceeds towards the products at equilibrium.

To determine the equilibrium constant for the reaction, we need to write the balanced chemical equation first:

       aA + bB ⇌ cC

Here, A and B are reactants, and C is the product. The initial concentrations of A and B are given as 0.50 M and 0.85 M, respectively. The equilibrium concentration of C is given as 0.7 M.Now, we need to use the equilibrium constant expression to determine the value of Kc:

        Kc = [C]^c / ([A]^a * [B]^b)

Where [A], [B], and [C] are the molar concentrations of A, B, and C, respectively, and a, b, and c are the coefficients of A, B, and C in the balanced chemical equation.Substituting the given values into the equation, we get:

        Kc = (0.7)^1 / (0.5)^a * (0.85)^b

To solve for the values of a and b, we need to use the stoichiometric coefficients of the balanced chemical equation. Since we don't have that information, we can assume that the reaction is a simple one-to-one ratio, where a = 1 and b = 1. This is a reasonable assumption for most simple chemical reactions.Substituting a = 1 and b = 1 into the equation, we get:

        Kc = (0.7)^1 / (0.5)^1 * (0.85)^1

        Kc = 1.31

Therefore, the equilibrium constant for the reaction is 1.31. This value indicates that the reaction strongly favors the formation of product C at equilibrium.

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A neon sign requires 13 kV for its operation. A transformer is used to raise the voltage from the line voltage of 220 V (rms) AC to 13 kV (rms) AC.
If the fuse in the transformer’s primary winding blows at 0.45 A (rms), what is the maximum rms current, in milliamperes, that the neon sign can draw, assuming no power loss in the transformer?
How much power, in watts, does the neon sign consume when it draws the maximum current the fuse allows?

Answers

the maximum rms current that the neon sign can draw is 450 mA, and the power consumed by the sign at this maximum current is 5.85 watts. the voltage ratio (13 kV / 220 V).

To calculate the power consumed by the neon sign when drawing the maximum current allowed by the fuse, we can use the formula P = VI, where P is power, V is voltage, and I is current. Given that the voltage is 13 kV and the current is 450 mA (or 0.45 A), the power consumed is 5.85 watts.

Maximum rms current that the neon sign can draw: 450 mA

Power consumed by the neon sign at maximum current: 5.85 watts

The maximum rms current that the neon sign can draw is determined by the fuse in the transformer's primary winding. This fuse is rated at 0.45 A (rms). To find the maximum current drawn by the neon sign, we divide the fuse rating by the voltage ratio between the line voltage and the neon sign voltage. The voltage ratio is calculated by dividing the neon sign voltage (13 kV) by the line voltage (220 V). Multiplying this voltage ratio by the fuse rating gives us the maximum current in amperes, which is then converted to milliamperes.

To determine the power consumed by the neon sign at the maximum current, we use the formula P = VI. The voltage is given as 13 kV (rms), and the maximum current is 450 mA. Plugging these values into the formula, we can calculate the power consumed, which is given in watts.

Therefore, the maximum rms current that the neon sign can draw is 450 mA, and the power consumed by the sign at this maximum current is 5.85 watts.

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the velocity of an object moving along a straight line is v(t) = t^2-10 t 16. find the displacement over the time interval [1, 7]. find the total distance traveled by the object.

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To find the displacement over the time interval [1, 7], we need to integrate the velocity function with respect to time over that interval. The displacement is 119/3 unit.

The velocity function is given as v(t) = t² - 10t + 16.

To find the displacement, we integrate the velocity function:

∫(t² - 10t + 16) dt

Integrating each term separately, we get:

∫t² dt - ∫10t dt + ∫16 dt

= (1/3)t³ - 5t² + 16t + C

Now we can evaluate the definite integral from 1 to 7:

Displacement = [(1/3)(7)³ - 5(7)² + 16(7)] - [(1/3)(1)³ - 5(1)² + 16(1)]

= (343/3 - 245 + 112) - (1/3 - 5 + 16)

= 98/3 - 26/3 + 47

= 119/3

Therefore, the displacement over the time interval [1, 7] is 119/3 units.

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Refer to the Fast Food Scenario to answer the following question. The standard deviation of the process is 0.55. With z = 3, is the fast-food operation currently capable of meeting management specifications? Base your answer on Cpk and round to the nearest hundredth.
a. Cpk = 0.49, so the process is not capable of meeting management specification.
b. Cpk = 0.49, so the process is capable of meeting management specification.
c. Cpk = 1.17, so the process is not capable of meeting management specification.
d. Cpk = 1.17, so the process is capable of meeting management specification.

Answers

The standard deviation of the process is 0.55. With z = 3, is the fast-food operation currently capable of meeting management specifications. = 0.49, so the process is not capable of meeting management specification. Hence option A is correct.

Process capacity () is a metric that accounts for both process variability and process departure from the goal specification. It is determined as the smaller of two ratios: the ratio of the difference between the target specification and the process mean divided by three times the process standard deviation; and the ratio of the difference between the upper and lower specification limits divided by three times the process standard deviation.

= min[(USL - x)/(3σ), (x - LSL)/(3σ)]

where USL is the upper specification limit, LSL is the lower specification limit, x is the process mean, and σ is the process standard deviation.

= min[(12.65 - 11) / (3 × 0.55), (11 - 9.35) / (3 × 0.55)] = min[0.49, 1.17] = 0.49

Since the number is below 1, the process cannot satisfy management requirements. The correct response is (a), meaning that the process cannot fulfil management specifications since = 0.49.

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a thin, 80.0 g disk with a diameter of 6.00 cm rotates about an axis through its center with 0.290 j of kinetic energy. What is the speed of a point on the rim? in m/s

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The speed  of a point on the rim is approximately 1.25 m/s.To determine the speed of a point on the rim of the thin disk, we need to use the formula for kinetic energy, which is KE = (1/2)mv^2, where m is the mass of the object, v is its velocity or speed, and KE is the amount of kinetic energy it possesses .

We also need to use the formula for the diameter of a circle, which is twice the radius. Since the disk has a diameter of 6.00 cm, its radius is half of that or 3.00 cm. From there, we can calculate the moment of inertia of the disk and use it to solve for the speed of a point on the rim. Once we plug in the given values and solve the equation, we find that the speed of a point on the rim is approximately 1.25 m/s.

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A group of particles of total mass 49 kg has a total kinetic energy of 321 j. the kinetic energy relative to the center of mass is 88 j. what is the speed of the center of mass?

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The speed of the center of mass is approximately 3.07 m/s. The center of mass is a point in a system of particles where the mass of the system can be considered to be concentrated.

In this problem, we were given the total mass of a group of particles and its total kinetic energy, as well as the kinetic energy relative to the center of mass. Using the formula for the total kinetic energy of a system of particles, we were able to derive a formula for the velocity of the center of mass in terms of the given quantities.
To find the speed of the center of mass, we can use the formula for kinetic energy and the given information. The total kinetic energy (KE_total) is the sum of the kinetic energy relative to the center of mass (KE_rel) and the kinetic energy of the center of mass (KE_cm). KE_total = KE_rel + KE_cm
We are given: KE_total = 321 J KE_rel = 88 J
First, we need to find KE_cm: KE_cm = KE_total - KE_rel = 321 J - 88 J = 233 J
Now, we can use the formula for kinetic energy to find the speed (v) of the center of mass:
KE_cm = (1/2) * M_total * v^2
Rearrange the formula to solve for v:
v^2 = (2 * KE_cm) / M_total
Plug in the given values:
v^2 = (2 * 233 J) / 49 kg
Calculate v:
v ≈ 3.07 m/s

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when a hockey puck is struck with a hockey stick a(n) acts on the puck and the puck

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When a hockey puck is struck with a hockey stick, a force acts on the puck and the puck exerts an equal and opposite force on the stick.

According to Newton's third law of motion, for every action, there is an equal and opposite reaction. When the hockey stick strikes the puck, it applies a force to the puck in one direction. As a result, the puck exerts an equal magnitude of force but in the opposite direction on the stick.

This interaction between the stick and the puck is what allows the puck to be propelled forward. The force applied to the puck by the stick causes it to accelerate and move in the direction of the applied force. The reaction force exerted by the puck on the stick also affects the motion and stability of the stick in the opposite direction.

The combination of these forces and reactions contributes to the transfer of momentum and energy from the stick to the puck, enabling the puck to move with speed and travel in the desired direction on the ice.

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Barium emits light in the visible region of the spectrum. if each photon of light emitted from barium has an energy of 3.90 ✕ 10^-19 j, what color of visible light is emitted?

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The color of visible light emitted by barium with an energy of 3.90 x 10^-19 J per photon is green.

To determine the color of visible light emitted by barium, we can use the energy of the emitted photons to calculate the wavelength of the light.

We can use the equation E = h * c / λ, where E is the energy (3.90 x 10^-19 J), h is Planck's constant (6.63 x 10^-34 Js), and c is the speed of light (3 x 10^8 m/s).

Solving for λ, we get λ = h * c / E, which yields λ ≈ 509 nm.

The visible light spectrum ranges from 400 nm (violet) to 700 nm (red). A wavelength of 509 nm corresponds to green light, indicating that barium emits green light when excited.

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hat is the process to determine the density (in g∙cm–3) of a cube of metal with an edge length of 22.5 mm and a mass of 14.09 g? data sheet and periodic table equation equation equation equation

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The density of the metal cube is approximately 1.236 g∙cm–3.

The formula to calculate density is:

density = mass / volume

Since we have a cube with an edge length of 22.5 mm, the volume of the cube can be calculated as:

volume = (edge length)^3 = (22.5 mm)^3 = 11390.625 mm^3

However, density is typically measured in grams per cubic centimeter (g∙cm–3), so we need to convert the volume to cubic centimeters:

1 cm = 10 mm, so 1 cm^3 = (10 mm)^3 = 1000 mm^3

Therefore, the volume of the cube in cm^3 is:

volume = 11390.625 mm^3 / 1000 mm^3/cm^3 = 11.390625 cm^3

Now we can substitute the values of mass and volume into the density formula:

density = mass / volume = 14.09 g / 11.390625 cm^3 ≈ 1.236 g∙cm–3

So the density of the metal cube is approximately 1.236 g∙cm–3.

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Which photon has the highest energy?
Group of answer choices
A) a photon with a wavelength of 1000 Angstroms
B) an infrared photon
C) a microwave photon
D) a photon with a wavelength of 2 microns

Answers

Option D, a photon with a wavelength of 2 microns, has the highest energy among the given options.

Photon energy is inversely proportional to its wavelength, meaning that the shorter the wavelength, the higher the energy. The formula for photon energy is E = hc/λ, where E is energy, h is Planck's constant, c is the speed of light, and λ is wavelength.

As explained earlier, photon energy is inversely proportional to its wavelength. This relationship is described by the equation E = hc/λ, where E is energy, h is Planck's constant (6.626 x 10^-34 J.s), c is the speed of light (2.998 x 10^8 m/s), and λ is wavelength.
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A uniform magnetic field, B, is perpendicular to the plane of a circular loop of diameter 10cm formed from wire of diameter 2.5mm and resistivity 1.69E-8 ohm. At what rate must the magnitude of B change to induce a 10 A current?

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The rate of change of the magnetic field, dB/dt, required to induce a 10 A current in the circular loop can be calculated using Faraday's law of electromagnetic induction:

dB/dt = (2πR²I)/(πr²)

where R is the radius of the loop (5 cm), r is the radius of the wire (1.25 mm), and I is the current induced (10 A).

Substituting the values, we get:

dB/dt = (2π(0.05)²(10))/(π(0.00125)²) = 254904.67 T/s

Therefore, the magnitude of the magnetic field must be changing at a rate of approximately 254.9 kT/s to induce a 10 A current in the circular loop.

When a magnetic field changes, it induces an electric field in a closed loop, which in turn creates a current. This is known as Faraday's law of electromagnetic induction. In this problem, a uniform magnetic field is perpendicular to a circular loop of wire. The rate of change of the magnetic field required to induce a 10 A current in the loop is calculated using the formula given above. The resistivity of the wire is not required to calculate the rate of change of the magnetic field.

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what does a high albedo indicate with regard to a planetary object?

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A high albedo indicates that a planetary object reflects a significant amount of incoming sunlight back into space.

Albedo is a measure of the reflectivity of a surface. It quantifies the fraction of solar radiation that is reflected by an object compared to the total amount of radiation incident upon it. Albedo is expressed as a value between 0 and 1, where 0 represents a perfectly absorptive (dark) surface that reflects no light, and 1 represents a perfectly reflective (bright) surface that reflects all incident light. When a planetary object, such as a planet or moon, has a high albedo, it means that it reflects a large portion of the sunlight it receives. This indicates that the surface of the object is relatively bright and does not absorb much of the incoming solar radiation. Instead, it reflects a significant amount of light back into space.

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A thin 100 g disk with a diameter of 8 cm rotates about an axis through its center with 0.15 j of kinetic energy. What is the speed of a point on the rim?

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Speed of a point on the rim is 0.98 m/s.

To find the speed of a point on the rim, we can use the formula for rotational kinetic energy:

Krot = 1/2 I ω^2

where Krot is the rotational kinetic energy, I is the moment of inertia, and ω is the angular velocity.

We can find the moment of inertia of the disk using the formula:

I = 1/2 m r^2

where m is the mass of the disk and r is the radius.

Since the disk has a diameter of 8 cm, its radius is 4 cm or 0.04 m. Therefore, the moment of inertia is:

I = 1/2 (0.1 kg) (0.04 m)^2 = 8.0 x 10^-5 kg m^2

Next, we can rearrange the formula for rotational kinetic energy to solve for ω:

ω = √(2 Krot / I)

Plugging in the given values, we get:

ω = √(2 x 0.15 J / 8.0 x 10^-5 kg m^2) = 24.50 rad/s

Finally, we can use the formula for linear speed at the rim of a rotating object:

v = ω r

where v is the linear speed and r is the radius.

Plugging in the values, we get:

v = (24.50 rad/s) (0.08 m / 2) = 0.98 m/s

Therefore, the speed of a point on the rim of the disk is 0.98 m/s.


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two spheres are rolling without slipping on a horizontal floor. they are made of different materials, but each has mass 5.00 kg and radius 0.120 m . for each the translational speed of the center of mass is 4.00 m/s . sphere a is a uniform solid sphere and sphere b is a thin-walled, hollow sphere.for which sphere is a greater magnitude of work required? (the spheres continue to roll without slipping as they slow down.)

Answers

The sphere that requires a greater magnitude of work is Sphere A, the uniform solid sphere.

The Kinetic energy of the rolling sphere can be expressed as:

[tex]KE = (1/2)mv^2 + (1/2)I\omega^2[/tex]

where m is the mass of the sphere, 'v' is the velocity of the center of mass, I is the moment of Inertia of the sphere and [tex]\omega[/tex] is the angular velocity of the sphere.

We know that both the given spheres have the same mass and center of mass velocity, so we can just ignore the first term and focus on the second term, which represents the rotational kinetic energy.

The moment of inertia of a solid sphere is:

[tex]I_a= (2/5) mr^2[/tex]

where r is the radius of the sphere.

The moment of inertia of the hollow sphere is:

[tex]I_b = (2/3)mr^2[/tex]

Now since both spheres have the same mass and radius, we can compare their inertia directly:

[tex]I_a = (2/5)mr^2 = (2/5)(5.00 kg)(0.120 m)^2 = 0.144 kg m^2\\I_b = (2/3)mr^2 = (2/3)(5.00 kg)(0.120 m)^2 = 0.192 kg m^2[/tex]

Now we can see that sphere B has a greater moment of inertia, it will require a greater magnitude of work to slow down and eventually stop rolling. Therefore sphere A requires a lesser magnitude to work to slow down and eventually stop rolling.

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(Note: it is possible that more than one project should be accepted. You must check all that apply to receive credit - this is an all or nothing question. That is, if they should accept projects A and B and you check only A or only B or if you also check C, your answer will be marked wrong).Question 24 options:Project AProject BProject CProject DProject E When she was 10, Fanny Price went to live with her wealthy, titled aunt and uncle, the Bertrams. Eight years later, Fanny returns to the seaside town of Portsmouth to visit her family. An unwelcome suitor, Mr. Crawford, follows her. Mrs. Price is Fanny's mother.,end italics,from ,begin bold,Mansfield Park,end bold,The Prices were just setting off for church the next day when Mr Crawford appeared again. He came, not to stop, but to join them; he was asked to go with them to the Garrison chapel, which was exactly what he had intended, and they all walked thither together.The family were now seen to advantage. Nature had given them no inconsiderable share of beauty, and every Sunday dressed them in their cleanest skins and best attire. Sunday always brought this comfort to Fanny, and on this Sunday she felt it more than ever. Her poor mother now did not look so very unworthy of being Lady Bertram's sister as she was but too apt to look. It often grieved her to the heart, to think of the contrast between them; to think that where nature had made so little difference, circumstances should have made so much, and that her mother, as handsome as Lady Bertram, and some years her junior, should have an appearance so much more worn and faded, so comfortless, so slatternly, so shabby. But Sunday made her a very creditable and tolerably cheerful-looking Mrs Price, coming abroad with a fine family of children, feeling a little respite of her weekly cares, and only discomposed if she saw her boys run into danger, or Rebecca,superscript,1,baseline, pass by with a flower in her hat.In chapel they were obliged to divide, but Mr Crawford took care not to be divided from the female branch; and after chapel he still continued with them, and made one in the family party on the ramparts.Mrs Price took her weekly walk on the ramparts every fine Sunday throughout the year, always going directly after morning service and staying till dinner-time. It was her public place: there she met her acquaintance, heard a little news, talked over the badness of the Portsmouth servants, and wound up her spirits for the six days ensuing.(from ,begin underline,Mansfield Park,end underline, by Jane Austen),fill in the blank, ,begin bold,,superscript,1,baseline,Rebecca:,end bold, Mrs. Price's servantQuestionHow does setting affect the character of Mrs. Price in the passage?Answer options with 4 options1. Mrs. Price feels self-conscious about the way in which her somewhat shabby appearance is viewed by the people of Portsmouth.2. Although Mrs. Price has friends in Portsmouth, she is aware that she is less popular and less attractive than her sister, Lady Bertram.3. Despite her poor circumstances, the town with its Sunday society, ramparts, and neighbors provides an outlet and revives Mrs. Price.4. On Sundays, Mrs. Price is able to put aside her fears about her children running into danger and enjoy the company of like-minded society. In each of the following cases, no shortage is allowed, and the lead time between placing and recieving an order is 30 days. Determine the optimal inventorypolicy and the associated cost per day.(a) K=$100,h=$.05,D=30 units per day(b)K=$50,h=.05,D=30 units per day which evaluation method is used for evaluating passive solar thermal system? and how to determine heating degree days? What proofreading and revision suggestions did you make to improve the writing sample? How did this process help you become a better writer? Consider the chemical equations shown here. P4(s) 302(g) P4O6(s) P4(s) 502(g) P4O10(s) What is the overall equation for the reaction that produces P4O10 from P4O6 and O2? p4O6(s) O2(g) Right arrow. P4O10(s) p4O6(s) 2O2(g) Right arrow. P4O10(s) p4O6(s) 8O2(g) Right arrow. P4O10(s). A metal bar of length L = 4.6 m slides along two horizontal metal rails. A magnetic field of magnitude B = 1.6 T is directed vertically. (a) If the bar is moving at speed v = 0.46 m/s, what is the emf induced across the ends of the bar? (in V) (b) Which end of the bar is at the higher potential? The end coming out of the page or the end going into the page? Define phothosynthesis ? describe the phothosynthesis ?