Which of the following quantities are vectors? Select all that apply. a. Displacement b. Distance c. Velocity d. Speed e. Acceleration

The static thrust of a turbojet engine can be calculated using the formula:

F = ma + (p2 - p1)A

where F is the static thrust, m is the mass flow rate of exhaust gases, a is the acceleration of the gases, p1 is the inlet pressure, p2 is the exit pressure, and A is the area of the exhaust nozzle.

Given that the inlet and exit areas are both 0.45 m², the area A equals 0.45 m².

The velocity of the exhaust gases is given as 100 m/s, and assuming that the exit pressure is atmospheric pressure (101,325 Pa), the velocity pressure can be calculated as:

q = 0.5 * ρ * V^2 = 0.5 * 1.18 kg/m³ * (100 m/s)^2 = 5900 Pa

The temperature of the exhaust gases is given as 800 K, and assuming that the specific heat ratio γ is 1.4, the density of the exhaust gases can be calculated as:

ρ = p/RT = (101,325 Pa)/(287 J/kgK * 800 K) = 0.456 kg/m³

Using the above values, the static thrust can be calculated as follows:

F = ma + (p2 - p1)A

m = ρAV = 0.456 kg/m³ * 0.45 m² * 100 m/s = 20.52 kg/s

a = (p2 - p1)/ρ = (101,325 Pa - 1 atm)/(0.456 kg/m³) = 8367.98 m/s^2

Therefore,

F = 20.52 kg/s * 8367.98 m/s^2 + (101,325 Pa - 1 atm)*0.45 m² = 31680 N

Hence, the static thrust of the turbojet engine is 31680 N.

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The work done by the man against gravity in climbing to the top is 9,480 foot-pounds.

To calculate the work done by the man, we need to determine the total change in potential energy as he climbs up the helical staircase that encircles the silo. The potential energy can be calculated using the formula PE = mgh, where m represents the mass, g represents the acceleration due to gravity, and h represents the height.

In this case, the mass of the man is 190 lb, and the height of the silo is 80 ft. Since the man makes exactly four complete revolutions around the silo, we can calculate the circumference of the helical staircase. The circumference of a circle is given by the formula C = 2πr, where r represents the radius. In this case, the radius of the silo is 15 ft.

To find the work done against gravity, we need to multiply the change in potential energy by the number of revolutions. The change in potential energy is obtained by multiplying the mass, the acceleration due to gravity (32.2 ft/s²), and the height. The number of revolutions is four.

Therefore, the work done by the man against gravity in climbing to the top can be calculated as follows:

Work = 4 * m * g * h

    = 4 * 190 lb * 32.2 ft/s² * 80 ft

    = 9,480 foot-pounds.

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The surface charge density can be calculated by using the formula:σ=q/A, where σ = surface charge density, q = charge of a spherical object A = surface area of a spherical object. So, the surface charge density of a sphere with radius r and charge q is given by;σ = q/4πr².

The total charge of the spheres, q1 + q2 = 55 μC. The force of repulsion between the two spheres, F = 0.71 N.

To find, The surface charge density on the sphere with radius 7.1 cm,σ1 = q1/4πr1². The force of repulsion between the two spheres is given by; F = (1/4πε₀) * q1 * q2 / d², Where,ε₀ = permittivity of free space = 8.85 x 10^-12 N^-1m^-2C²q1 + q2 = 55 μC => q1 = 55 μC - q2.

We have two equations: F = (1/4πε₀) * q1 * q2 / d²σ1 = q1/4πr1². We can solve these equations simultaneously as follows: F = (1/4πε₀) * q1 * q2 / d²σ1 = (55 μC - q2) / 4πr1². Putting the values in the first equation and solving for q2:0.71 N = (1/4πε₀) * (55 μC - q2) * q2 / (38 cm)²q2² - (55 μC / 0.71 N * 4πε₀ * (38 cm)²) * q2 + [(55 μC)² / 4 * (0.71 N)² * (4πε₀)² * (38 cm)²] = 0q2 = 9.24 μCσ1 = (55 μC - q2) / 4πr1²σ1 = (55 μC - 9.24 μC) / (4π * (7.1 cm)²)σ1 = 23.52 μC/m².

Therefore, the surface charge density on the sphere with radius 7.1 cm is 23.52 μC/m².

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The electric-field between the plates of the capacitor is approximately 2831.46 V/m.

The electric field between the plates of a capacitor can be determined by using the formula: Electric field (E) = Voltage difference (V) / Plate separation distance (d)

In this case, we are given the following values:

Charge (Q) = 14.35 microC = 14.35 * 10^-6 C

Voltage difference (V) = 37.25 V

Plate separation distance (d) = 13.16 mm = 13.16 * 10^-3 m

We can calculate the electric field as follows:

E = V / d

E = 37.25 V / (13.16 * 10^-3 m)

E = 2831.46 V/m

Therefore, the electric-field between the plates of the capacitor is approximately 2831.46 V/m.

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An X-ray photon scatters from a free electron at rest at an angle of 165∘ relative to the incident direction. Use h=6.626×10⁻³⁴ J s for Planck constant. Use c=3.00×10⁸ m/s for the speed of light in a vacuum.

Part A - If the scattered photon has a wavelength of 0.310 nm,  the wavelength of the incident photon is 0.310 nm.

Part B - The energy of the incident photon in electron-volt is 40.1 eV.

Part C - The energy of the scattered photon is 40.1 eV.

Part D - The kinetic energy of the recoil electron is 0 eV.

To solve this problem, we can use the principle of conservation of energy and momentum.

Part A: To find the wavelength of the incident photon, we can use the energy conservation equation:

Energy of incident photon = Energy of scattered photon

Since the energies of photons are given by the equation E = hc/λ, where h is Planck's constant, c is the speed of light, and λ is the wavelength, we can write:

hc/λ₁ = hc/λ₂

Where λ₁ is the wavelength of the incident photon and λ₂ is the wavelength of the scattered photon. We are given λ₂ = 0.310 nm. Rearranging the equation, we can solve for λ₁:

λ₁ = λ₂ * (hc/hc) = λ₂

So, the wavelength of the incident photon is also 0.310 nm.

Part B: To determine the energy of the incident photon in electron-volt (eV), we can use the energy equation E = hc/λ. Substituting the given values, we have:

E = (6.626 × 10⁻³⁴ J s * 3.00 × 10⁸ m/s) / (0.310 × 10⁻⁹ m) = 6.42 × 10⁻¹⁵ J

To convert this energy to electron-volt, we divide by the conversion factor 1.6 × 10⁻¹⁹ J/eV:

E = (6.42 × 10⁻¹⁵ J) / (1.6 × 10⁻¹⁹ J/eV) ≈ 40.1 eV

So, the energy of the incident photon is approximately 40.1 eV.

Part C: The energy of the scattered photon remains the same as the incident photon, so it is also approximately 40.1 eV.

Part D: To find the kinetic energy of the recoil electron, we need to consider the conservation of momentum. Since the electron is initially at rest, its initial momentum is zero. After scattering, the electron gains momentum in the opposite direction to conserve momentum.

Using the equation for the momentum of a photon, p = h/λ, we can calculate the momentum change of the photon:

Δp = h/λ₁ - h/λ₂

Substituting the given values, we have:

Δp = (6.626 × 10⁻³⁴ J s) / (0.310 × 10⁻⁹ m) - (6.626 × 10⁻³⁴ J s) / (0.310 × 10⁻⁹ m) = 0

Since the change in momentum of the photon is zero, the recoil electron must have an equal and opposite momentum to conserve momentum. Therefore, the kinetic energy of the recoil electron is zero eV.

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In this scenario, a police car is moving to the right at 27 m/s, and a speeder is approaching from behind at 36 m/s.

The police officer points a radar gun at the speeder, emitting an electromagnetic wave with a frequency of 7.5×10^9 Hz. The task is to find the difference between the frequency of the wave that returns to the police car after reflecting from the speeder's car and the frequency emitted by the police car.

The frequency of the wave that returns to the police car after reflecting from the speeder's car is affected by the relative motion of the two vehicles. This phenomenon is known as the Doppler effect.

In this case, since the police car and the speeder are moving relative to each other, the frequency observed by the police car will be shifted. The Doppler effect formula for frequency is given by f' = (v + vr) / (v + vs) * f, where f' is the observed frequency, v is the speed of the wave in the medium (assumed to be the same for both the emitted and reflected waves), vr is the velocity of the radar gun wave relative to the speeder's car, vs is the velocity of the radar gun wave relative to the police car, and f is the emitted frequency.

In this scenario, the difference in frequency can be calculated as the observed frequency minus the emitted frequency: Δf = f' - f. By substituting the given values and evaluating the expression, the difference in frequency can be determined.

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For the following three vectors,3C (2A × B) is equal to 660.00i + 408.00j + 240.00k.

To calculate the value of the expression 3C (2A × B), we need to perform vector operations on A and B.

Given:

A = 2.00i + 3.00j - 7.00k

B = -3.00i + 7.00j + 2.00k

First, let's calculate the cross product of 2A and B:

2A × B = 2(A × B)

To find the cross product, we can use the determinant method or the component method. Let's use the component method:

(A × B)_x = (Ay×Bz - Az × By)

(A × B)_y = (Az × Bx - Ax × Bz)

(A × B)_z = (Ax × By - Ay ×Bx)

Substituting the values of A and B into these equations, we get:

(A × B)_x = (3.00 × 2.00) - (-7.00 ×7.00) = 6.00 + 49.00 = 55.00

(A × B)_y = (-7.00 × (-3.00)) - (2.00 × 2.00) = 21.00 - 4.00 = 17.00

(A × B)_z = (2.00 × 7.00) - (2.00 × (-3.00)) = 14.00 + 6.00 = 20.00

Therefore, the cross product of 2A and B is:

2A × B = 55.00i + 17.00j + 20.00k

Now, let's calculate 3C (2A × B):

Given:

C = 4.00i + 8.00j

3C (2A × B) = 3(4.00i + 8.00j)(55.00i + 17.00j + 20.00k)

Expanding and multiplying each component, we get:

3C (2A × B) = 3(4.00 × 55.00)i + 3(8.00 ×17.00)j + 3(4.00 ×20.00)k

Simplifying the expression, we have:

3C (2A × B) = 660.00i + 408.00j + 240.00k

Therefore, 3C (2A × B) is equal to 660.00i + 408.00j + 240.00k.

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The energy consumption of the school building in a month is 277,703 kWh, and its carbon dioxide emissions are 85,994 kg.CO₂.

The calculation of energy consumption is derived from the formula given below:

Energy consumption = Energy load * Hours of use in a month / system efficiency

Energy load is equal to the product of building’s design heat loss coefficient and the degree day factor. Degree day factor is equal to the difference between the outdoor temperature and internal set point temperature, multiplied by the duration of that period, and summed over the entire month.

The carbon dioxide emissions for that month is calculated by multiplying the energy consumption by 0.31 kg.CO₂/kWh of gas.

As per the given data, energy load = 0.025MW/K * (20°C-5°C) * (24h-5.1h) * 30 days = 10,440 MWh, and the degree day factor is 15°C * (24h-5.1h) * 30 days = 10,818°C-day.

Therefore, the energy consumption of the school building in a month is 277,703 kWh, and its carbon dioxide emissions are 85,994 kg.CO₂.

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The mean free path of a photon in the core in mm can be calculated using the given information which are:Radius of solar core = 0.1R, where R is the solar radius.

The core contains 25% of the sun's total mass First, we will calculate the radius of the core:Radius of core, r = 0.1RWe know that the mass of the core, M = 0.25Ms, where Ms is the total mass of the sun.A formula that can be used to calculate the mean free path of a photon is given by:l = 1 / [σn]Where l is the mean free path, σ is the cross-sectional area for interaction and n is the number density of the target atoms/molecules.

Let's break the formula down for easier understanding:σ = πr² where r is the radius of the core n = N / V where N is the number of target atoms/molecules in the core and V is the volume of the core.l = 1 / [σn] = 1 / [πr²n]We can calculate N and V using the mass of the core, M and the mass of a single atom, m.N = M / m Molar mass of the sun.

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The accuracy of the given timer is 0.346 s.The accuracy of the ruler is not provided in the given information. The relative error in measured acceleration due to gravity (g) in cm is not specified in the question. If the ball falls from a height of y = 100.0 cm or y = 60.0 cm, the value of g (gravitational acceleration) will remain constant.

The equation provided, 2y = [tex]gt^2[/tex], relates the distance fallen (y) to the time squared [tex](t^2)[/tex], but it does not depend on the initial height.

The gravitational acceleration, g, is constant near the surface of the Earth regardless of the starting height of the object.

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The expression for the image distance, d is;d' = 0.00093 m

Given that: Height of candle, h = 0.24 m

Distance of candle from the left of the lens, d= 0.48 m

Focal length of the diverging lens, f = -0.071 m

Image distance, d' is given by the lens formula as;1/f = 1/d - 1/d'

Taking the absolute magnitude of f, we have f = 0.071 m

Substituting the values in the above equation, we have; 1/0.071 = 1/0.48 - 1/d'14.0845

= (0.048 - d')/d'

Simplifying the equation above by cross multiplying, we have;

14.0845d' = 0.048d' - 0.048d' + 0.071 * 0.48d'

= 0.013125d'

= 0.013125/14.0845

= 0.00093 m (correct to 3 significant figures).

Therefore, the expression for the image distance, d is;d' = 0.00093 m

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The radius of the bubble before it reaches the surface is approximately 5.4 × 10^(-4) m

The ideal gas law and the hydrostatic pressure equation.

Temperature at the bottom (T₁) = 25°C = 25 + 273.15 = 298.15 K

Temperature at the top (T₂) = 225°C = 225 + 273.15 = 498.15 K

Using the ideal gas law equation: PV = nRT, where P is the pressure, V is the volume, n is the number of moles, R is the gas constant, and T is the temperature in Kelvin.

(P₁ * V₁) / T₁ = (P₂ * V₂) / T₂

P₁ = pressure at the bottom of the lake

P₂ = pressure at the surface (atmospheric pressure)

V₁ = volume of the bubble at the bottom = 1.00 cm³ = 1.00 × 10^(-6) m³

V₂ = volume of the bubble at the surface (unknown)

T₁ = temperature at the bottom = 298.15 K

T₂ = temperature at the top = 498.15 K

V₂ = (P₂ * V₁ * T₂) / (P₁ * T₁)

P₁ = ρ * g * h

P₂ = atmospheric pressure

ρ = density of water = 1000 kg/m³

g = acceleration due to gravity = 9.8 m/s²

h = height = 41.5 m

P₁ = 1000 kg/m³ * 9.8 m/s² * 41.5 m

P₂ = atmospheric pressure (varies, but we can assume it to be around 1 atmosphere = 101325 Pa)

V₂ = (P₂ * V₁ * T₂) / (P₁ * T₁)

V₂ = (101325 Pa * 1.00 × 10^(-6) m³ * 498.15 K) / (1000 kg/m³ * 9.8 m/s² * 41.5 m * 298.15 K)

V₂ ≈ 1.10 × 10^(-6) m³

The volume of a spherical bubble can be calculated using the formula:

V = (4/3) * π * r³

The radius of the bubble before it reaches the surface is approximately 5.4 × 10^(-4) m

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The missing item that would complete the given alpha decay reaction + He 257 100 Fm → ? is option C. 253.

In an alpha decay reaction, an alpha particle (consisting of two protons and two neutrons) is emitted from the nucleus of an atom. The atomic number and mass number of the resulting nucleus are adjusted accordingly.

In the given reaction, the parent nucleus is Fm (fermium) with an atomic number of 100 and a mass number of 257. It undergoes alpha decay, which means it emits an alpha particle (+ He) from its nucleus.

The question asks for the missing item that would complete the reaction. Looking at the options, option C with a mass number of 253 completes the reaction, resulting in the nucleus with atomic number 98 and mass number 253.

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At point D, the resultant internal loadings in the beam consist of a shear force of 15 kN and a bending moment of 40 kNm in the clockwise direction. At point E, just to the right of the 15-kN load, the resultant internal loadings in the beam consist of a shear force of 40 kN and a bending moment of 80 kNm in the clockwise direction.

To determine the internal loadings in the beam at points D and E, we need to analyze the forces and moments acting on the beam.

At point D, which is located 2 m from the left end of the beam, there is a concentrated load of 15 kN acting downward. This load creates a shear force of 15 kN at point D. Additionally, there is a distributed load of 25 kN/m acting downward over a 1.5 m length of the beam from point C to D. To calculate the bending moment at D, we can use the equation:

M = -wx²/2

where w is the distributed load and x is the distance from the left end of the beam. Substituting the values, we have:

M = -(25 kN/m)(1.5 m)²/2 = -56.25 kNm

Therefore, at point D, the resultant internal loadings in the beam consist of a shear force of 15 kN (acting downward) and a bending moment of 56.25 kNm (clockwise).

Moving to point E, just to the right of the 15-kN load, we need to consider the additional effects caused by this load. The 15-kN load creates a shear force of 15 kN (acting upward) at point E, which is balanced by the 25 kN/m distributed load acting downward. As a result, the net shear force at point E is 25 kN (acting downward). The distributed load also contributes to the bending moment at point E, calculated using the same equation:

M = -wx²/2

Considering the distributed load over the 2 m length from point B to E, we have:

M = -(25 kN/m)(2 m)²/2 = -100 kNm

Adding the bending moment caused by the 15-kN load at point E (clockwise) gives us a total bending moment of -100 kNm + 15 kN x 2 m = -70 kNm (clockwise).

Therefore, at point E, the resultant internal loadings in the beam consist of a shear force of 25 kN (acting downward) and a bending moment of 70 kNm (clockwise).

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The ratio of the radius ry of particle 1's path to the radius rz of particle 2's path is 6:5.

In this scenario, both particle 1 and particle 2 have the same kinetic energy and are moving perpendicular to a uniform magnetic field B. The motion of charged particles in a magnetic field is determined by the equation qvB = mv²/r, where q is the charge, v is the velocity, B is the magnetic field, m is the mass, and r is the radius of the path.

Since both particles have the same kinetic energy, their velocities are equal. Using the equation mentioned above, we can equate the expressions for the radii of the paths of particle 1 and particle 2. Solving for the ratio of the radii, we find that ry/rz = (m1/m2)^(1/2), where m1 and m2 are the masses of particle 1 and particle 2, respectively. Plugging in the given masses, we get ry/rz = (6.0/5.0)^(1/2) = 6/5. Therefore, the ratio of the radius ry of particle 1's path to the radius rz of particle 2's path is 6:5.

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Given that the rate of expansion of the universe is k = 1 + 0.0005T in T million years and we want to know how long it takes for the universe to expand by 10% of its present size. We can write the equation for the rate of expansion as follows:  k = 1 + 0.0005T

where T is the number of million years. We know that the expansion of the universe after T million years is given by: Expansion = k * Present size

Thus, the expansion of the universe after T million years is:

Expansion = (1 + 0.0005T) * Present size

We are given that the universe has to expand by 10% of its present size.

Therefore,

we can write: Expansion = Present size + 0.1 * Present size= 1.1 * Present size

Equating the two equations of the expansion,

we get: (1 + 0.0005T) * Present size = 1.1 * Present size

dividing both sides by Present size, we get:1 + 0.0005T = 1.1

Dividing both sides by 0.0005, we get: T = (1.1 - 1)/0.0005= 200 million years

Therefore, the universe will expand by 10% of its present size in 200 million years. Hence, the correct answer is 200.

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The de Broglie wavelength of the electron after the photon has been scattered is approximately -1.12 picometers (-1.12 pm).

To determine the de Broglie wavelength of the electron after the photon scattering, we can use the conservation of momentum and energy.

Given:

Wavelength of the photon before scattering (λ_initial) = 1.73 pm

Scattering angle (θ) = 147°

The de Broglie wavelength of a particle is given by the formula:

λ = h / p

where λ is the de Broglie wavelength, h is the Planck's constant, and p is the momentum of the particle.

Before scattering, both the photon and the electron have momentum. After scattering, the momentum of the electron changes due to the transfer of momentum from the photon.

We can use the conservation of momentum to relate the initial and final momenta:

p_initial_photon = p_final_photon + p_final_electron

Since the photon is initially stationary, its initial momentum (p_initial_photon) is zero. Therefore:

p_final_photon + p_final_electron = 0

p_final_electron = -p_final_photon

Now, let's calculate the final momentum of the photon:

p_final_photon = h / λ_final_photon

To find the final wavelength of the photon, we can use the scattering angle and the initial and final wavelengths:

λ_final_photon = λ_initial / (2sin(θ/2))

Substituting the given values:

λ_final_photon = 1.73 pm / (2sin(147°/2))

Using the sine function on a calculator:

sin(147°/2) ≈ 0.773

λ_final_photon = 1.73 pm / (2 * 0.773)

Calculating the value:

λ_final_photon ≈ 1.73 pm / 1.546 ≈ 1.120 pm

Now we can calculate the final momentum of the photon:

p_final_photon = h / λ_final_photon

Substituting the value of Planck's constant (h) = 6.626 x 10^-34 J·s and converting the wavelength to meters:

λ_final_photon = 1.120 pm = 1.120 x 10^-12 m

p_final_photon = (6.626 x 10^-34 J·s) / (1.120 x 10^-12 m)

Calculating the value:

p_final_photon ≈ 5.91 x 10^-22 kg·m/s

Finally, we can find the de Broglie wavelength of the electron after scattering using the relation:

λ_final_electron = h / p_final_electron

Since p_final_electron = -p_final_photon, we have:

λ_final_electron = h / (-p_final_photon)

Substituting the values:

λ_final_electron = (6.626 x 10^-34 J·s) / (-5.91 x 10^-22 kg·m/s)

Calculating the value:

λ_final_electron ≈ -1.12 x 10^-12 m

Therefore, the de Broglie wavelength of the electron after the photon has been scattered is approximately -1.12 picometers (-1.12 pm).

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The amount of current in an electrical device with a voltage source of Z volts that delivers 6.3 watts of electrical power is given by I = 6.3/Z.

Explanation:

Consider an electrical device connected to a voltage source of Z volts.

The device is designed to consume 6.3 watts of electrical power.

Calculate the amount of current flowing through the device.

Sketch:

+---------[Device]---------+

| |

----|--------Z volts--------|----

To calculate the current flowing through the electrical device, we can use the formula:

    Power (P) = Voltage (V) × Current (I).

Given that the power consumed by the device is 6.3 watts, we can express it as P = 6.3 W.

The voltage provided by the source is Z volts, so V = Z V.

We can rearrange the formula to solve for the current:

     I = P / V

Now, substitute the given values:

     I = 6.3 W / Z V

Therefore, the current flowing through the electrical device connected to a Z-volt source is 6.3 watts divided by Z volts.

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The amount of current flowing through the electrical device is 6.3 watts divided by the voltage source in volts (Z).

To calculate the current flowing through the electrical device, we can use the formula:

Power (P) = Voltage (V) × Current (I)

Given that the power (P) is 6.3 watts, we can substitute this value into the formula. The voltage (V) is represented as Z volts.

Therefore, we have:

6.3 watts = Z volts × Current (I)

Now, let's solve for the current (I):

I = 6.3 watts / Z volts

The sketch below illustrates the circuit setup:

  +---------+

  |         |

---|         |---

|  |         |  |

|  | Device  |  |

|  |         |  |

---|         |---

  |         |

  +---------+

    Voltage

    Source (Z volts)

So, the amount of current flowing through the electrical device is 6.3 watts divided by the voltage source in volts (Z).

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A diagram illustrating the photoelectric effect would typically show light photons striking the surface of a metal, causing the ejection of electrons from the material. The diagram would also depict the energy levels of the material, illustrating how the energy of the photons must surpass the work function for electron emission to occur.

The photoelectric effect refers to the phenomenon in which electrons are emitted from a material's surface when it is exposed to light of a sufficiently high frequency or energy. The effect played a crucial role in establishing the quantum nature of light and laid the foundation for the understanding of photons as particles.

Here's a simplified explanation of the photoelectric effect:

1. When light (consisting of photons) with sufficient energy strikes the surface of a material, it interacts with the electrons within the material.

2. The energy of the photons is transferred to the electrons, enabling them to overcome the binding forces of the material's atoms.

3. If the energy transferred to an electron is greater than the material's work function (the minimum energy required to remove an electron from the material), the electron is emitted.

4. The emitted electrons, known as photoelectrons, carry the excess energy as kinetic energy.

A diagram illustrating the photoelectric effect would typically show light photons striking the surface of a metal, causing the ejection of electrons from the material. The diagram would also depict the energy levels of the material, illustrating how the energy of the photons must surpass the work function for electron emission to occur.

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The fraction of the ice above the water level is 0.6 meters (option c).

The ice floats on water because its density is less than that of water. The volume of ice seen above the surface is dependent on its density, which is less than water density. The volume of the ice is dependent on the water that it displaces. An ice cube measuring 1 m has a volume of 1m^3.

Let V be the fraction of the volume of ice above the water, and let the volume of the ice be 1m^3. Therefore, the volume of water displaced by ice will be V x 1m^3.The mass of the ice is 917kg/m^3 * 1m^3, which is equal to 917 kg. The mass of water displaced by the ice is equal to the mass of the ice, which is 917 kg.The weight of the ice is equal to its mass multiplied by the gravitational acceleration constant (g) which is equal to 9.8 m/s^2.

Hence the weight of the ice is 917kg/m^3 * 1m^3 * 9.8m/s^2 = 8986.6N.The buoyant force of water will support the weight of the ice that is above the surface, hence it will be equal to the weight of the ice above the surface. Therefore, the buoyant force on the ice is 8986.6 N.The formula for the buoyant force is as follows:

Buoyant force = Volume of the fluid displaced by the object × Density of the fluid × Gravity.

Buoyant force = V*1m^3*1025 kg/m^3*9.8m/s^2 = 10002.5*V N.

As stated earlier, the buoyant force is equal to the weight of the ice that is above the surface. Hence, 10002.5*V N = 8986.6

N.V = 8986.6/10002.5V = 0.8985 meters.

To find the fraction of the volume of ice above the water, we must subtract the 0.4 m of ice above the water from the total volume of the ice above and below the water.V = 1 - (0.4/1)V = 0.6 meters.

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The fraction of initial energy lost in this collision is 0. This implies that no energy is lost, indicating an elastic collision.

To determine the fraction of initial energy lost in the collision, we need to compare the initial kinetic energy with the final kinetic energy after the collision.

Given:

Initial speed of the first stone (v_1) = 2.0 m/s

Angle of deflection for the first stone (θ_1) = 28°

Angle of deflection for the second stone (θ_2) = 42°

Let's calculate the final speeds of the first and second stones using the given information:

Using trigonometry, we can find the components of the final velocities in the x and y directions for both stones.

For the first stone:

vx_1 = v_1 * cos(θ_1)

vy_1 = v_1 * sin(θ_1)

For the second stone:

vx_2 = v_2 * cos(θ_2)

vy_2 = v_2 * sin(θ_2)

Since the second stone is initially stationary, its initial velocity is zero (v_2 = 0).

Now, we can calculate the final velocities:

vx_1 = v1 * cos(θ_1)

vy_1 = v1 * sin(θ_1)

vx_2 = 0 (as v_2 = 0)

vy_2 = 0 (as v_2 = 0)

The final kinetic energy (Kf) can be calculated using the formula:

Kf = (1/2) * m * (vx1^2 + vy1^2) + (1/2) * m * (vx2^2 + vy2^2)

Since the second stone is initially stationary, its final kinetic energy is zero:

Kf = (1/2) * m * (vx_1^2 + vy_1^2)

The initial kinetic energy (Ki) can be calculated using the formula:

Ki = (1/2) * m * v_1^2

Now, we can determine the fraction of initial energy lost in the collision:

Fraction of initial energy lost = (K_i - K_f) / K_i

Substituting the expressions for K_i and K_f:

[tex]Fraction of initial energy lost = [(1/2) * m * v1^2 - (1/2) * m * (vx_1^2 + vy_1^2)] / [(1/2) * m * v_1^2]Simplifying and canceling out the mass (m):Fraction of initial energy lost = (v_1^2 - vx_1^2 - vy_1^2) / v_1^2Using the trigonometric identities sin^2(θ) + cos^2(θ) = 1, we can simplify further:[/tex]

Therefore, the fraction of initial energy lost in this collision is 0. This implies that no energy is lost, indicating an elastic collision.

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#SPJ11[tex]Fraction of initial energy lost = (v_1^2 - vx_1^2 - vy_1^2) / v_1^2Fraction of initial energy lost = (v_1^2 - v_1^2 * cos^2(θ_1) - v_1^2 * sin^2(θ_1)) / v_1^2Fraction of initial energy lost = (v_1^2 * (1 - cos^2(θ_1) - sin^2(θ_1))) / v_1^2Fraction of initial energy lost = (v_1^2 * (1 - 1)) / v1^2Fraction of initial energy lost = 0[/tex]

a) The entropy of mixing per one mole of formed air, is approximately 6.11 J/K. b) A specific value for the entropy of mixing per one mole of formed air cannot be determined

We find that the entropy of mixing per one mole of formed air is approximately 6.11 J/K. When gases are mixed together, the entropy of the system increases due to the increase in disorder. To calculate the entropy of mixing, we can use the formula:

ΔS_mix = -R * (x1 * ln(x1) + x2 * ln(x2))

where ΔS_mix is the entropy of mixing, R is the gas constant, x1 and x2 are the mole fractions of the individual gases, and ln is the natural logarithm. Since four moles of nitrogen and one mole of oxygen are mixed together to form air, the mole fractions of nitrogen and oxygen are 0.8 and 0.2, respectively. Substituting these values into the formula, along with the gas constant, we find ΔS_mix ≈ 6.11 J/K.

b) The entropy of mixing per one mole of formed air, when four moles of nitrogen and one mole of oxygen are mixed together at different temperatures, depends on the temperature difference between the gases.

The entropy change is given by ΔS_mix = R * ln(Vf/Vi), where Vf and Vi are the final and initial volumes, respectively. Since the temperatures are different, the final volume of the mixture will depend on the specific conditions. Therefore, a specific value for the entropy of mixing per one mole of formed air cannot be determined without additional information about the final temperature and volume.

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The time period of motion of a satellite revolving around Earth with an orbital radius of 1.5 x 10^4 km is 67805.45 seconds

The time period of a satellite revolving around Earth with an orbital radius of 1.5 x 10^4 km can be calculated as follows: Given values are:

Mass of Earth (M) = 5.97 x 10^24 kg

Radius of Earth (R) = 6.38 x 10^3 km

Newton's Gravitational Constant (G) = 6.67 x 10^-11 N m^2/kg^2

Mass of the Satellite (m) = 1050 kg

Formula used for finding the time period is

T= 2π√(r^3/GM) where r is the radius of the orbit and M is the mass of the Earth

T= 2π√((1.5 x 10^4 + 6.38 x 10^3)^3/(6.67 x 10^-11 x 5.97 x 10^24))T = 2π x 10800.75T = 67805.45 seconds

The time period of motion of the satellite is 67805.45 seconds.

We have given the radius of the orbit of a satellite revolving around the Earth and we have to find its time period of motion. The given values of the mass of the Earth, the radius of the Earth, Newton's gravitational constant, and the mass of the satellite can be used for calculating the time period of motion of the satellite. We know that the time period of a satellite revolving around Earth can be calculated by using the formula, T= 2π√(r^3/GM) where r is the radius of the orbit and M is the mass of the Earth. Hence, by substituting the given values in the formula, we get the time period of the satellite to be 67805.45 seconds.

The time period of motion of a satellite revolving around Earth with an orbital radius of 1.5 x 10^4 km is 67805.45 seconds.

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The height difference between the lowest and highest point of the roof is needed. By using the trigonometric function tangent, we can determine the height difference between the lowest and highest point of the gable-shaped roof.

To calculate the height difference between the lowest and highest point of the roof, we can use trigonometry. Here's how:

1. Identify the given information: The width of the building is 10 m, and the roof is angled at 23.0° from the horizontal.

2. Draw a diagram: Sketch a triangle representing the gable roof. Label the horizontal base as the width of the building (10 m) and the angle between the base and the roof as 23.0°.

3. Determine the height difference: The height difference corresponds to the vertical side of the triangle. We can calculate it using the trigonometric function tangent (tan).

  tan(angle) = opposite/adjacent

  In this case, the opposite side is the height difference (h), and the adjacent side is the width of the building (10 m).

  tan(23.0°) = h/10

  Rearrange the equation to solve for h:

  h = 10 * tan(23.0°)

  Use a calculator to find the value of tan(23.0°) and calculate the height difference.

By using the trigonometric function tangent, we can determine the height difference between the lowest and highest point of the gable-shaped roof. The calculated value will provide the desired information about the vertical span of the roof.

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The decay of radioactive atoms is an exponential process, and the amount of a radioactive substance remaining after time t can be modeled by the equation:

N(t) = N0 * e^(-λt)

where N0 is the initial amount of the substance, λ is the decay constant, and e is the base of the natural logarithm. The half-life of Rn-222 is given as 3.823 days, which means that the decay constant is:

λ = ln(2)/t_half = ln(2)/3.823 days ≈ 0.1814/day

Let N(t) be the amount of Rn-222 at time t (measured in days) after the initial measurement, and let N0 = 30 g be the initial amount. We want to find the time t such that N(t) = 7.5 g.

Substituting the given values into the equation above, we get:

N(t) = 30 * e^(-0.1814t) = 7.5

Dividing both sides by 30, we get:

e^(-0.1814t) = 0.25

Taking the natural logarithm of both sides, we get:

-0.1814t = ln(0.25) = -1.3863

Solving for t, we get:

t = 7.64 days

Therefore, it will take approximately 7.64 days for 30 grams of Rn-222 to decay to 7.5 grams.

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The intensity lo of the incident light, if the intensity of the transmitted light is measured to be 0.34W/m² is 1.050 W/m². So none of the options are correct.

To determine the intensity (lo) of the incident light, we can use Malus' law for the transmission of polarized light through a polarizer.

Malus' law states that the intensity of transmitted light (I) is proportional to the square of the cosine of the angle (θ) between the transmission axis of the polarizer and the polarization direction of the incident light.

Mathematically, Malus' law can be expressed as:

I = lo * cos²(θ)

Given that the intensity of the transmitted light (I) is measured to be 0.34 W/m² and the angle (θ) between the transmission axis and the vertical is 70°, we can rearrange the equation to solve for lo:

lo = I / cos²(θ)

Substituting the given values:

lo = 0.34 W/m² / cos²(70°)

The value of cos²(70°) as approximately 0.3236. Plugging this value into the equation:

lo = 0.34 W/m² / 0.3236

lo = 1.050 W/m²

Therefore, the intensity (lo) of the incident light is approximately 1.050 W/m².

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According to the question (a). The mass of the water displaced by the boat is 6700 kg. (b). The weight of the boat is 65560 N.

a. To calculate the mass of the water displaced by the boat, we can use the formula:

[tex]\[ \text{mass} = \text{volume} \times \text{density} \][/tex]

Given that the volume of water displaced is 6.7 m³ and the density of water is 1000 kg/m³, we can substitute these values into the formula:

[tex]\[ \text{mass} = 6.7 \, \text{m³} \times 1000 \, \text{kg/m³} \][/tex]

[tex]\[ \text{mass} = 6700 \, \text{kg} \][/tex]

Therefore, the mass of the water displaced by the boat is 6700 kg.

b. To calculate the weight of the boat, we need to know the gravitational acceleration in the specific location. Assuming the standard gravitational acceleration of approximately 9.8 m/s²:

[tex]\[ \text{weight} = \text{mass} \times \text{acceleration due to gravity} \][/tex]

Given that the mass of the water displaced by the boat is 6700 kg, we can substitute this value into the formula:

[tex]\[ \text{weight} = 6700 \, \text{kg} \times 9.8 \, \text{m/s}^2 \][/tex]

[tex]\[ \text{weight} = 65560 \, \text{N} \][/tex]

Therefore, the weight of the boat is 65560 N.

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(a) To convert 105 Calories to joules, multiply by 4.184 J/cal.

(b) Using the principle of conservation of energy, we can calculate the final speed of the object.

(c) Applying the specific heat formula, we can determine the final temperature of the water.

To convert Calories to joules, we can use the conversion factor of 4.184 J/cal. Multiplying 105 Calories by 4.184 J/cal gives us the energy in joules.

The initial kinetic energy (KE) of the object is zero since it is initially at rest. The total energy provided by the banana, which is converted into kinetic energy, is equal to the final kinetic energy. We can use the equation KE = (1/2)mv^2, where m is the mass of the object and v is the final speed. Plugging in the known values, we can solve for v.

The energy transferred to the water can be calculated using the equation Q = mcΔT, where Q is the energy transferred, m is the mass of the water, c is the specific heat capacity of water (approximately 4.184 J/g°C), and ΔT is the change in temperature. We can rearrange the formula to solve for ΔT and then add it to the initial temperature of 19.7°C to find the final temperature.

It's important to note that specific values for the mass of the object and the mass of water are needed to obtain precise calculations.

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When a 22.0 kg child gets onto the merry-go-round, grabbing its outer edge, the angular velocity of the merry-go-round will decrease. The angular momentum added by the child is L_child = (22.0 kg)(1.9 m)^2 × 0 rev/s.

After the child's addition, the angular velocity can be calculated using the principle of conservation of angular momentum. The child can be treated as a point mass, and the merry-go-round can be considered as a solid disk. The new angular velocity will depend on the initial angular momentum of the merry-go-round and the added angular momentum of the child.

The initial angular momentum of the merry-go-round can be calculated using the formula L = Iω, where L is the angular momentum, I is the moment of inertia, and ω is the angular velocity. The moment of inertia for a solid disk rotating about its central axis is given by I = (1/2)mr^2, where m is the mass of the disk and r is its radius.

Substituting the given values, we find that the initial angular momentum

L_initial = (1/2)(120 kg)(1.9 m)^2 × 0.400 rev/s.

When the child gets onto the merry-go-round, the system's total angular momentum remains conserved. The angular momentum added by the child can be calculated using the same formula, L_child = I_child ω_child. Here, the moment of inertia of a point mass is given by I_child = mx^2, where m is the mass of the child and x is the distance from the axis of rotation (the radius of the merry-go-round).

Since the child grabs the outer edge, x is equal to the radius of the merry-go-round, i.e., x = 1.9 m. Therefore, the angular momentum added by the child is L_child = (22.0 kg)(1.9 m)^2 × 0 rev/s.

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The magnitude of the magnetic force per unit length between the two wires is given by E = a × 10-N/m & the value of 'a' from the calculation we can get is 8.

To determine the value of 'a' in the expression E = a × 10-N/m x /m, we need to calculate the magnitude of the magnetic force per unit length between the two parallel wires when the current in each wire is I = 4 amps and the distance between the wires is L = 1 meter.

The magnetic force per unit length between two parallel wires carrying current can be calculated using the formula:

E = (μ₀ * I₁ * I₂) / (2πd)

where μ₀ is the permeability of free space (μ₀ ≈ [tex]4 \pi * 10^{-7[/tex] T·m/A), I₁ and I₂ are the currents in the wires, and d is the distance between the wires.

Plugging in the given values:

E = ([tex]4 \pi * 10^{-7[/tex]T·m/A * 4 A * 4 A) / (2π * 1 m)

E = ([tex]16 \pi * 10^{-7[/tex]T·m/A²) / (2π * 1 m)

E = [tex]8 * 10^{-7[/tex] T/m

Comparing this with the given expression E = a * 10-N/m x /m, we can see that 'a' must be equal to 8 to match the calculated value of E.

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