Answer:
Both balls will reach the ground at the same time
Explanation:
That is because the acceleration due to gravity of both balls are same.
Using the Bohr model, calculate the speed of an electron in the ground state, and express the speed in terms of c. During our derivation of the allowed atomic energies in the Bohr model, we used nonrelativistic formulas-was this assumption justifiable?
The speed of an electron in the ground state of hydrogen, according to the Bohr model, is c/137.
The assumption of using nonrelativistic formulas in the Bohr model is justifiable for low-energy and low-velocity systems, but it becomes less accurate and applicable as the electron's speed approaches the speed of light.
In the Bohr model, the speed of an electron in the ground state can be calculated using the formula:
v = αc / n
where v is the speed of the electron, α is the fine structure constant (approximately 1/137), c is the speed of light, and n is the principal quantum number corresponding to the energy level.
For the ground state of hydrogen, n = 1. Plugging in the values, we have:
v = (1/137) * c / 1
Simplifying further:
v = c / 137
Regarding the assumption of using nonrelativistic formulas in the derivation of the allowed atomic energies in the Bohr model, it is important to note that the Bohr model is a simplified model that neglects relativistic effects. The model assumes that the electron orbits the nucleus in circular orbits and does not take into account the effects of special relativity, such as time dilation and mass-energy equivalence.
In situations where the electron's speed approaches the speed of light (as in high-energy or highly charged atomic systems), the nonrelativistic approximation becomes less accurate. At such speeds, the electron's energy and behavior are better described by relativistic quantum mechanics, such as the Dirac equation.
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An electron moves across Earth's equator at a speed of 2.52×10 6
m/s and in a direction 33.5 ∘
N of E. At this point, Earth's magnetic field has a direction due north, is parallel to the surface, and has a magnitude of 0.253×10 −4
T. (a) What is the magnitude of the force acting on the electron due to its interaction with Earth's magnetic field? N (b) Is the force toward, away from, or parallel to the Earth's surface? toward the Earth's surface away from the Earth's surface parallel to the Earth's surface
The magnitude of the force acting on the electron due to its interaction with Earth's magnetic field is 1.61 × [tex]10^{-17}[/tex] N and force on the electron is perpendicular to both the velocity and the magnetic field direction. Since the force is perpendicular to the Earth's surface, it is parallel to the Earth's surface.
(a) To calculate the magnitude of the force acting on the electron due to its interaction with Earth's magnetic field, we can use the formula:
F = q * v * B * sin(θ)
where:
F is the magnitude of the force,
q is the charge of the electron (1.6 × 10^-19 C),
v is the velocity of the electron (2.52 × 10^6 m/s),
B is the magnitude of Earth's magnetic field (0.253 × 10^-4 T),
θ is the angle between the velocity and the magnetic field (90° since the velocity is perpendicular to the magnetic field).
Plugging in the values, we have:
F = (1.6 × 10^-19 C) * (2.52 × 10^6 m/s) * (0.253 × 10^-4 T) * sin(90°)
Simplifying the expression, we get:
F = 1.61 × [tex]10^{-17}[/tex] N
Therefore, the magnitude of the force acting on the electron is 1.61 × [tex]10^{-17}[/tex] N.
(b) The force on the electron is perpendicular to both the velocity and the magnetic field direction.
Since the force is perpendicular to the Earth's surface, it is parallel to the Earth's surface.
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A beam of laser light of wavelength 632.8 nm falls on a thin slit 3.75×10^−3 mm wide.
After the light passes through the slit, at what angles relative to the original direction of the beam is it completely cancelled when viewed far from the slit?
Type absolute values of the three least angles separating them with commas.
The absolute values of the three least angles at which the light is completely cancelled are approximately 0.106 radians, 0.213 radians, and 0.320 radians, respectively.
To find the angles at which the light is completely cancelled (resulting in dark fringes), we can use the concept of diffraction and the equation for the position of dark fringes in a single slit diffraction pattern.
The equation for the position of dark fringes in a single slit diffraction pattern is given by:
sin(θ) = mλ / b
where θ is the angle of the dark fringe, m is the order of the fringe (m = 0 for the central fringe), λ is the wavelength of the light, and b is the width of the slit.
In this case, the wavelength of the laser light is given as 632.8 nm, which is equal to 632.8 × [tex]10^{-9}[/tex] m, and the width of the slit is 3.75 × 10^(-3) mm, which is equal to 3.75 × [tex]10^{-6}[/tex] m.
For the first-order dark fringe (m = 1), we can calculate the angle θ_1:
sin(θ_1) = (1)(632.8 × [tex]10^{-9}[/tex] m) / (3.75 × [tex]10^{-6}[/tex] m)
Using a calculator, we find θ_1 ≈ 0.106 radians.
For the second-order dark fringe (m = 2), we can calculate the angle θ_2:
sin(θ_2) = (2)(632.8 × [tex]10^{-9}[/tex] m) / (3.75 × [tex]10^{-6}[/tex] m)
Again, using a calculator, we find θ_2 ≈ 0.213 radians.
For the third-order dark fringe (m = 3), we can calculate the angle θ_3:
sin(θ_3) = (3)(632.8 × [tex]10^{-9}[/tex] m) / (3.75 × [tex]10^{-6}[/tex] m)
Once again, using a calculator, we find θ_3 ≈ 0.320 radians.
Therefore, the absolute values of the three least angles at which the light is completely cancelled are approximately 0.106 radians, 0.213 radians, and 0.320 radians, respectively.
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Storm clouds may build up large negative charges near their bottom edges. The earth is a good conductor, so the charge on the cloud attracts an equal and opposite charge on the earth under the cloud. The electric field strength near the earth depends on the shape of the earth's surface, as we can explain with a simple model. The top metal plate in (Figure 1) has uniformly
The electric field strength near the earth's surface can vary depending on the shape of the earth's surface. This phenomenon can be explained using a simple model, as illustrated in Figure 1. Therefore, the shape of the earth's surface plays a role in determining the electric field strength near the surface in the presence of storm clouds with large negative charges.
In the given, storm clouds build up large negative charges near their bottom edges. Due to the earth being a good conductor, an equal and opposite charge is induced on the earth's surface under the cloud. This creates an electric field between the cloud and the earth.
The electric field strength near the earth's surface depends on the shape of the earth's surface. In the simple model shown in Figure 1, a top metal plate is used to represent the storm cloud, and the bottom metal plate represents the earth's surface. The shape of the bottom plate, which mimics the curvature of the earth, affects the electric field distribution.
The curvature of the earth's surface causes the electric field lines to be more concentrated near areas with higher curvature, such as hills or mountains, compared to flatter regions. This is because the curvature of the surface affects the distance between the cloud and the surface, influencing the strength of the electric field.
Therefore, the shape of the earth's surface plays a role in determining the electric field strength near the surface in the presence of storm clouds with large negative charges.
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The speed of an alpha particle is determined to be 3.35×106 m/s. If all of its kinetic energy is acquired by passing through an electric potential, what is the magnitude of that potential?
Speed of alpha particle = 3.35 × 106 m/s
Kinetic energy = potential energy
We know that kinetic energy = (1/2)mv2, Where, m = mass of alpha particle = 6.644 × 10−27 kg, v = velocity of alpha particle = 3.35 × 106 m/s
Using the above formula we can calculate the kinetic energy as
Kinetic energy = (1/2) × 6.644 × 10−27 × (3.35 × 106)2
Kinetic energy = 3.163 × 10−13 J
Let V be the potential magnitude acquired by alpha particle
Potential energy = qV Where, q = charge on alpha particle = 2 × 1.602 × 10−19 Potential energy = 2 × 1.602 × 10−19 × V
Now, as given, kinetic energy = potential energy
Therefore, 3.163 × 10−13 = 2 × 1.602 × 10−19 × V
On solving the above equation we get, V = (3.163 × 10−13) / (2 × 1.602 × 10−19)
Hence, the magnitude of potential acquired by alpha particle is V = 988000 V.
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Two identical point sources create an interference pattern in a wave tank.
We notice that a point on the fourth nodal line is located at 10 cm from one source and
15 cm from the other. If the frequency of the waves is 3.7 Hz, determine:
(a) The length of the waves.
(b) The speed of propagation of waves.
The length of the waves is 10 cm and the speed of propagation is 37 cm/s. For the length of the waves, we can use the formula for the distance between consecutive nodal lines in an interference pattern.
To find the length of the waves, we can use the formula for the distance between consecutive nodal lines in an interference pattern.The distance between two consecutive nodal lines is given by λ/2, where λ is the wavelength.
In this case, the fourth nodal line is observed to be 5 cm away from the midpoint between the two sources, which means it is located 10 cm from one source and 15 cm from the other. The difference in path lengths from the two sources is 15 cm - 10 cm = 5 cm. Since this is half the wavelength (λ/2), the wavelength can be calculated as 2 * 5 cm = 10 cm.
To determine the speed of propagation of the waves, we can use the wave equation v = fλ, where v is the speed of propagation, f is the frequency, and λ is the wavelength. Plugging in the values, we have v = 3.7 Hz * 10 cm = 37 cm/s.
Therefore, the length of the waves is 10 cm and the speed of propagation is 37 cm/s.
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A 400 cm-long solenoid 1.35 cm in diamotor is to produce a field of 0.500 mT at its center.
Part. A How much current should the solenoid carry if it has 770 turns of wire? I = _______________ A
A 400 cm-long solenoid 1.35 cm in diameter is to produce a field of 0.500 mT at its center.the solenoid should carry approximately 992.48 Amperes of current to produce a magnetic field of 0.500 mT at its center.
To determine the current required for the solenoid to produce a specific magnetic field, we can use Ampere's Law. Ampere's Law states that the magnetic field (B) inside a solenoid is directly proportional to the product of the permeability of free space (μ₀), the current (I) flowing through the solenoid, and the number of turns per unit length (n) of the solenoid:
B = μ₀ × I × n
Rearranging the equation, we can solve for the current (I):
I = B / (μ₀ × n)
Given that the solenoid has 770 turns of wire, we need to determine the number of turns per unit length (n). The length of the solenoid is 400 cm, and the diameter is 1.35 cm. The number of turns per unit length can be calculated as:
n = N / L
where N is the total number of turns and L is the length of the solenoid.
n = 770 turns / 400 cm
Converting the length to meters:
n = 770 turns / 4 meters
n = 192.5 turns/meter
Now we can substitute the values into the formula to calculate the current (I):
I = (0.500 mT) / (4π × 10^(-7) T·m/A) × (192.5 turns/m)
I = (0.500 × 10^(-3) T) / (4π × 10^(-7) T·m/A) × (192.5 turns/m)
Simplifying the expression, we find:
I ≈ 992.48 A
Therefore, the solenoid should carry approximately 992.48 Amperes of current to produce a magnetic field of 0.500 mT at its center.
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A 1.25-kg wrench is acting on a nut trying to turn it. A force 135.0 N acts on the wrench at a position 12.0 cm from the center of the nut in a direction 35.0 ∘
above the horizontal handle. What is the 椽agnitude of the torque about the center of the nut? Be sure to give appropriate units.
The magnitude of the torque about the center of the nut is approximately 9.42 N.m, which is determined by multiplying the force acting on the wrench by the perpendicular distance between the force and the center of the nut.
To calculate the magnitude of the torque, we need to use the equation
τ = F * r * sin(θ),
where τ represents the torque, F is the force applied, r is the perpendicular distance between the force and the center of the nut, and θ is the angle between the force and the horizontal handle.
First, we convert the given distance from centimeters to meters: 12.0 cm = 0.12 m.
Next, we need to determine the perpendicular distance, r, by using trigonometry. Since the angle θ is given as [tex]35.0^0[/tex] above the horizontal handle, the angle between the force and the perpendicular line is ([tex]90^0 - 35.0^0) = 55.0^0[/tex]. Applying sine, we have [tex]sin(55.0^0) = r / 0.12 m[/tex].
Solving for r, we find r ≈ 0.097 m.
Finally, we can calculate the torque:
τ = (135.0 N) * (0.097 m) * sin([tex]35.0^0[/tex]).
Evaluating the expression, we find:
τ ≈ 9.42 N.m.
Therefore, the magnitude of the torque about the center of the nut is approximately 9.42 N·m.
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Select all the claims that are true, in general. Accelerations change velocities. Velocities change positions. The x-component of the velocity for a projectile at max height is equal to zero. The y-component of the velocity for a projectile at max height is equal to zero. Slowing down is a implies that an object is accelerating.
The true claims are: 1. Acceleration change velocities. 2. Velocities change positions. 3. The x-component of the velocity for a projectile at max height is equal to zero.
The false claim is: 1. The y-component of the velocity for a projectile at max height is equal to zero.
Acceleration is a fundamental concept in physics that measures the rate of change of an object's velocity. It is defined as the change in velocity per unit of time. Acceleration can be positive or negative, indicating an increase or decrease in velocity, respectively. It is measured in units of meters per second squared (m/s²) and plays a crucial role in understanding motion and the laws of mechanics.
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A 0.140−kg baseball is dropped from rest from a height of 2.2 m above the ground. It rebounds to a height of 1.6 m. What change in the ball's momentum occurs when the ball hits the ground?
The change in momentum is -0.918 kg m/s.
The ball's momentum before hitting the ground is zero since the ball is at rest, and its velocity is zero.
It falls from a height of 2.2m above the ground, and its gravitational potential energy transforms into kinetic energy as it falls. Hence, using the law of conservation of energy;
mgh = (1/2)mv²where; m = 0.140 kg, g = 9.81 m/s², h = 2.2m, and the velocity (v) of the ball is obtained by rearranging the equation v² = 2ghv² = 2 × 9.81 × 2.2v² = 43.092v = √43.092v = 6.562 m/sThe velocity is positive since it falls downwards; thus, the direction of the velocity is downward, but it is positive.
Therefore, when it rebounds, the velocity is reversed, but the momentum is conserved. The momentum is given by;p = mvHence, the momentum of the ball before hitting the ground is;p = mv = 0.140 kg × 0 = 0 kg m/s (initial momentum)
When the ball hits the ground, it rebounds to a height of 1.6 m; thus, the change in momentum of the ball can be determined using the principle of conservation of momentum which states that the momentum of an object before a collision is equal to the momentum of the object after the collision.
The momentum of the ball after rebounding can be determined using the formula;p = mvSince the velocity of the ball is reversed, the velocity is negative. The mass remains constant.
Thus, the momentum after rebounding can be determined as follows; p = -mv = -0.140 kg × 6.562 m/s = -0.918 kg m/s (final momentum)
The change in momentum is;
p final - p initial = -0.918 kg m/s - 0 kg m/s = -0.918 kg m/s.
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A circuit has 2 objects in PARALLEL. The total power is 200W, and the 1st object uses 80W. If the Voltage of the 2nd object is 6 Volts, what is the current in Amps going through it? Watts's law P = IV Ohm's law V = IR
The current in amps going through the second object is 20 Amps.
Given that the total power is 200W and the first object uses 80W.
Hence, the second object must be using 120W because in parallel, the total power is the sum of the power of each object.
Using Watts's law:
For the first object, I = P/V = 80/VFor the second object, P = IV
Hence, I = P/V = 120/6 = 20 Amps
Therefore, the current in amps going through the second object is 20 Amps.
However, we are also required to provide 150 words. Hence, I would like to elaborate more on the concepts used in the solution. A parallel circuit is a circuit that has more than one path for current flow.
In such circuits, the total resistance is less than the smallest individual resistance. Moreover, the voltage across each object in parallel is the same. However, the current flowing through each object can be different.
We can calculate the current flowing through each object using Ohm's law. In Ohm's law, the current flowing through an object is directly proportional to the voltage across it and inversely proportional to the resistance.
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How wide is the central maximum in degrees and cm? (wavelength=670nm) (L=30.0cm) (w=1.2E-5m)
To calculate the width of the central maximum in degrees, we can use the formula: θ = λ / w
The width of the central maximum is approximately 1.6749 cm.
The width of the central maximum is approximately 3.19 degrees.
Given:
Wavelength (λ) = 670 nm = 670 × 10⁻⁹ m
Width of the slit (w) = 1.2 × 10⁻⁵ m
Substituting these values into the formula:
θ = (670 × 10⁻⁹ m) / (1.2 × 10⁻⁵ m)
θ ≈ 0.05583 radians
To convert the angular width from radians to degrees, we can use the conversion factor:
1 radian = 180 degrees / π
θ° = θ × (180 degrees / π)
θ° ≈ 3.19 degrees
Therefore, the width of the central maximum is approximately 3.19 degrees.
To calculate the width of the central maximum in centimeters, we can use the formula:
Width(cm) = L × θ
where L is the distance from the slit to the screen and θ is the angular width.
Given:
Distance from the slit to the screen (L) = 30.0 cm
Substituting the values:
Width(cm) = (30.0 cm) × (0.05583 radians)
Width(cm) ≈ 1.6749 cm
Therefore, the width of the central maximum is approximately 1.6749 cm.
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An air pump has a cylinder 0.280 m long with a movable piston. The pump is used to compress air from the atmosphere (at absolute pressure 1.01×105Pa) into a very large tank at 4.00×105 Pa gauge pressure. (For air, CV=20.8J/(mol⋅K.)
The piston begins the compression stroke at the open end of the cylinder. How far down the length of the cylinder has the piston moved when air first begins to flow from the cylinder into the tank? Assume that the compression is adiabatic.
How much work does the pump do in order to compress 22.0 mol of air into the tank?
The piston of the air pump moves approximately 0.103 m down the length of the cylinder before air starts flowing into the tank. The pump does 9.17 × 10^4 J of work to compress 22.0 mol of air into the tank.
To determine how far down the length of the cylinder the piston has moved when air begins to flow into the tank, we need to consider the adiabatic compression process. In adiabatic compression, the relationship between pressure (P) and volume (V) is given by the equation P₁V₁^γ = P₂V₂^γ, where P₁ and V₁ are the initial pressure and volume, P₂ and V₂ are the final pressure and volume, and γ is the heat capacity ratio.
Given that the initial pressure is 1.01 × 10^5 Pa and the final pressure is 4.00 × 10^5 Pa, and assuming atmospheric pressure is negligible compared to the final pressure, we can rewrite the equation as (1.01 × 10^5) * (0.280 - x)^γ = (4.00 × 10^5) * (0.280)^γ, where x is the distance the piston has moved.
Simplifying the equation and solving for x, we find x ≈ 0.103 m. Therefore, the piston has moved approximately 0.103 m down the length of the cylinder when air starts flowing into the tank.
To calculate the work done by the pump, we use the equation W = ΔU + ΔKE, where W is the work, ΔU is the change in internal energy, and ΔKE is the change in kinetic energy. Since the process is adiabatic, there is no heat exchange (ΔQ = 0), so the change in internal energy is zero (ΔU = 0).
Therefore, the work done by the pump is equal to the change in kinetic energy. As the air is being compressed, its kinetic energy decreases. Assuming the air is initially at rest, the change in kinetic energy is negative and equal to the work done by the pump.
The work done can be calculated using the formula W = -nRTΔln(V), where n is the number of moles, R is the ideal gas constant, T is the temperature, and Δln(V) is the change in the natural logarithm of the volume.
Plugging in the given values and solving the equation, we find that the work done by the pump is approximately 9.17 × 10^4 J.
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Double-Slit
(a) A double-slit experiment is set up using red light (λ = 717 nm). A first order bright fringe is seen at a given location on a screen. What wavelength of visible light (between 380 nm and 750 nm) would produce a dark fringe at the identical location on the screen? λ = ______________ nm HELP: Find the expression for a first order bright fringe (of a double slit experiment). Then find the expression for dark fringes. (b) A new experiment is created with the screen at a distance of 2.2 m from the slits (with spacing 0.08 mm). What is the distance between the second order bright fringe of light with λ = 689 nm and the third order bright fringe of light with λ = 413 nm? (Give the absolute value of the smallest possible distance between these two fringes: the distance between bright fringes on the same side of the central bright fringe.) |x| = _____________ m
A double-slit experiment is set up using red light (λ = 717 nm). A first order bright fringe is seen at a given location on a screen.
The expression for a first order bright fringe in a double-slit experiment is given as,
Y= (λL)/d where Y is the distance between the central bright fringe and the first-order bright fringe, λ is the wavelength of light, L is the distance between the double-slit and the screen and d is the distance between the two slits.
From the above expression, we can calculate the value of d as, d= (λL)/Y
We are given that a first-order bright fringe is seen at a given location on a screen when the double-slit experiment is set up using red light with a wavelength of 717 nm. So the value of d for this experiment will be,
d = (λL)/Y = (717 x 10^-9 m x L)/Y where L is the distance between the double-slit and the screen.
Now we need to find the wavelength of visible light that would produce a dark fringe at the identical location on the screen.
The expression for dark fringes in the double-slit experiment is given as, d sin θ = (m+1/2) λ where d is the distance between the two slits, θ is the angle of diffraction, m is the order of the fringe and λ is the wavelength of light. From the above expression, we can calculate the value of θ for the dark fringe as,
θ= sin^-1(m+1/2)(λ/d)
For the same location on the screen, we know that the distance between the central bright fringe and the first-order dark fringe will be equal to the distance between the central bright fringe and the second-order bright fringe. So, the value of m for the first-order dark fringe will be equal to 1+2=3. Therefore, the value of θ for the first-order dark fringe will be,
θ= sin^-1(3+1/2)(λ/d)
Also, we know that sinθ ≈ θ for small angles and thus sinθ can be written as θ. Hence, we can write,
θ= (3+1/2)(λ/d)
Substituting the value of d from the expression derived earlier, we get,
θ= (3+1/2)(717 x 10^-9 m x L)/Y
Let λ' be the wavelength of light that would produce a dark fringe at the identical location on the screen. For the same location on the screen, we know that the distance between the central bright fringe and the first-order bright fringe will be equal to the distance between the central bright fringe and the first-order dark fringe. So the value of Y for the first-order dark fringe can be written as,
Y = (λ'L)/d = (λL)/Y
From the above two equations, we can obtain the value of λ',
λ' = (Yλ^2)/(Ld) = (Yλ^2)/(717 x 10^-9 m x L)
λ' = (Y x 717 x 10^-9 m)/Ld
Substituting the given values, we get,
λ' = (Y x 717 x 10^-9 m)/(2.2 m x 0.08 x 10^-3 m)
λ' = 25.98 x Y x 10^-6 m b)
The expression for the distance between two consecutive bright fringes in the double-slit experiment is given as,
Δy = λL/d. For the same side of the central bright fringe, the second-order bright fringe of light with λ = 689 nm and the third-order bright fringe of light with λ = 413 nm will be located at a distance of Δy from each other.
So, Δy = λ1 L/d - λ2 L/d
Δy = (λ1 - λ2)L/d Where λ1 and λ2 are the wavelengths of light and L is the distance between the double-slit and the screen. Substituting the given values, we get,
Δy = (689 - 413) x 10^-9 m x 2.2 m/0.08 x 10^-3 m
Δy = 47.52 x 10^-6 m
The absolute value of the smallest possible distance between these two fringes will be equal to Δy. Therefore, |x| = Δy = 47.52 x 10^-6 m
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A circus clown wants to be shot out of a cannon, fly through the air, and pass horizontally through a window. The window is 5.0m above the height of the cannon and is in a wall 12m away from the cannon. Find the horizontal and vertical components of the initial velocity required to accomplish this. What are the magnitude and direction of this initial velocity?
The magnitude of the initial velocity is 18.98 m/s, and the direction of the initial velocity is 51.67°.
h = Cannon height above the window = 5m
d = Distance between the wall and the cannon = 12m
t = Time = 1s (Assumption)
g = Acceleration due to gravity = 9.8 m/s²
vx = Horizontal velocity = d / t
vy = Vertical velocity = (h + 1/2 gt²) / t
v = Magnitute of initial velocity = sqrt(vx² + vy²)
θ = Direction of the initial velocity = tan⁻¹(vy / vx)
Horizontal component: vx = d / t
vx = 12 / 1 = 12 m/s
Vertical component: vy = (h + 1/2 gt²) / t
vy = (5 + 1/2 × 9.8 × 1²) / 1 = 14.7 m/s
The magnitude of the initial velocity(v) = sqrt(vx² + vy²)
v = sqrt(12² + 14.7²)
= sqrt(144 + 216.09)
= sqrt(360.09)
= 18.98 m/s
The direction of the initial velocity is given by
θ = tan⁻¹(vy / vx)
= tan⁻¹(14.7 / 12)
= tan⁻¹(1.225)
= 51.67°
Therefore, the horizontal and vertical components of the initial velocity are 12 m/s and 14.7 m/s respectively.
The magnitude of the initial velocity is 18.98 m/s, and the direction of the initial velocity is 51.67°.
The magnitude of initial velocity is given by √((31.62 sinθ)² + (12)²).
The direction of initial velocity is cosθ = 12/u.
Height of window from the cannon, h = 5.0m
Distance of window from the cannon, d = 12m
Now, let's find the horizontal component of initial velocity:
We know that the clown passes horizontally through a window so horizontal distance traveled by clown = d = 12m
Initial horizontal velocity of clown, u cosθ
Distance traveled horizontally by clown, s = d = 12m
Using the formula,v² = u² + 2as
Since vertical distance traveled by clown = height of window = 5m and final vertical velocity = 0,u sinθ = ?
v² = u² + 2as
Putting the values,
0² = u² + 2(-9.8)(5)
u = 31.62ms-¹
So, we can say that Initial vertical velocity of clown, u sinθ = 31.62 sinθ
Initial velocity of clown, u = √((31.62 sinθ)² + (12)²)
Magnitude of initial velocity of clown = √((31.62 sinθ)² + (12)²)
The clown has to pass through a horizontal distance of 12m.So, we know that
u cosθ = 12
cosθ = 12/u
So, we can say that initial direction of clown is cosθ = 12/u
∴ The horizontal and vertical components of initial velocity are u cosθ = 12/u and u sinθ = 31.62 sinθ respectively.
The magnitude of initial velocity is given by √((31.62 sinθ)² + (12)²).
The direction of initial velocity is cosθ = 12/u.
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What is (F net 3
) x
, the x-component of the net force exerted by these two charges on a third charge q 3
=51.5nC placed between q 1
and q 2
at x 3
=−1.085 m ? Your answer may be positive or negative, depending on the direction of the force. Express your answer numerically in newtons to three significant figures.
The x-component of the net force exerted by two charges on a third charge placed between them is approximately -1.72 N. The negative sign indicates the direction of the force.
To calculate the x-component of the net force (F_net_x) exerted by the charges, we need to consider the electric forces acting on the third charge (q3) due to the other two charges (q1 and q2). The formula to calculate the electric force between two charges is given by Coulomb's Law:
F = (k * |q1 * q2|) / r^2
Where F is the force, k is the electrostatic constant (9.0 × 10^9 N m^2/C^2), q1 and q2 are the charges, and r is the distance between them.
q1 = 1.96 nC (negative charge)
q2 = -5.43 nC (negative charge)
q3 = 51.5 nC (placed between q1 and q2)
x3 = -1.085 m (x-coordinate of q3)
To find the x-component of the net force, we need to calculate the electric forces between q3 and q1, and between q3 and q2. The force between charges q3 and q1 can be expressed as F1 = (k * |q1 * q3|) / r1^2, and the force between charges q3 and q2 can be expressed as F2 = (k * |q2 * q3|) / r2^2.
The net force in the x-direction is given by:
F_net_x = F2 - F1
Calculating the distances between the charges:
r1 = x3 (since q3 is placed at x3)
r2 = |x3| (since q2 is on the other side of q3)
Substituting the given values and simplifying the equations, we can find the net force in the x-direction.
F_net_x = [(k * |q2 * q3|) / r2^2] - [(k * |q1 * q3|) / r1^2]
F_net_x ≈ -1.72 N
Therefore, the x-component of the net force exerted by the charges on the third charge is approximately -1.72 N. The negative sign indicates the direction of the force.
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An RC circuit has an unknown resistance and an initially uncharged capacitor of 666 x 106 F When connected to a source potential, it takes the capacitor 27.6 s to become 85.6 % fully charged. What is the resistance of the circuit? Enter a number rounded to the nearest 100 place.
Rounded to the nearest 100th place, the resistance of the circuit is approximately 41,400 ohms.
To find the resistance of the RC circuit, we can use the time constant formula:
τ = R * C
where τ is the time constant, R is the resistance, and C is the capacitance.
In this case, the time constant is given by:
τ = 27.6 s
The capacitor reaches 85.6% of its full charge in the time constant, so we can write the equation:
0.856 = 1 - e^(-t/τ)
Simplifying, we have:
e^(-t/τ) = 1 - 0.856
e^(-t/τ) = 0.144
Taking the natural logarithm of both sides, we get:
-t/τ = ln(0.144)
Solving for t/τ, we have:
t/τ ≈ -1.942
Now, we can substitute the given values to solve for the resistance R:
τ = R * C
27.6 s = R * (666 x 10^(-6) F)
R = 27.6 s / (666 x 10^(-6) F)
R ≈ 41,441 ohms
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please help me !!!!!
calculate the refractive index of the material for the glass prism in the diagram below
The glass has a 0.88 refractive index based on the computation and the image.
What is the triangular prism's overall reflection angle?The angle at which total internal reflection takes place as light travels through a triangular prism is referred to as the total reflection angle of the prism. This phenomenon occurs when light moving through one media encounters the interface with another and totally reflects back into the original medium rather than transmitting.
We have that;
n = Sin1/2(A + D)/Sin1/2A
A = Total reflecting angle of the prism
D = Angle of deviation
n = Sin1/2(60 + 40)/Sin 60
n = 0.766/0.866
n = 0.88
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A disk slides toward a motionless stick on a frictionless surface (figure below). The disk strikes and adheres to the stick and they rotate together, pivoting around the nail. Angular momentum is conserved for this inelastic collision because the surface is frictionless and the unbalanced external force at the nail exerts no torque. Consider a situation where the disk has a mass of 50.1 g and an initial velocity of 31.3 m/s when it strikes the stick that is 1.36 m long and 2.15 kg at a distance of 0.100 m from the nail. a. What is the angular velocity (in rad/s) of the two after the collision? (Enter the magnitude.) rad/s b. What is the kinetic energy (in J) before and after the collision? K before = J K after = J c. What is the total linear momentum (in kg⋅m/s ) before and after the collision? (Enter the magnitude.) p before kg.m/s p after = kg⋅m/s
The total linear momentum after the collision isp after = (M + m) v afterp after = (2.15 + 0.0501) × 1.48p after = 3.20 kg m/s (approximately)Thus, the total linear momentum before the collision is 1.57 kg m/s and after the collision is 3.20 kg m/s (approximately).
a)To find the angular velocity after the collision, use the conservation of angular momentum.Li = LfIi ωi = If ωfIi ωi = If ωfωf = Ii ωi / IfWe know that the moment of inertia, I = ML² / 3 (moment of inertia of a rod)Where M is the mass of the rod and L is its length.If the moment of inertia of the stick and the disk together is If, then we can write that If = Md² + ML² / 3We know that the mass of the stick, M = 2.15 kg (given) and its length, L = 1.36 m (given). The mass of the disk, m = 50.1 g = 0.0501 kg (given). The distance of the stick from the nail, d = 0.100 m (given).So, If = 0.0501 × 0.100² + 2.15 × 1.36² / 3= 1.570 kgm²Now, substitute the values in the above equation.ωf = Ii ωi / Ifωf = 0.0501 × 31.3 / 1.570ωf = 1 rad/s.
Therefore, the angular velocity of the two after the collision is 1 rad/s.b) The kinetic energy before the collision is given by,Kinetic energy = ½ mv²K before = ½ × 0.0501 × 31.3²= 24.8 JThe kinetic energy after the collision is given by, K after = ½ (Md²ωf² + ½ mv²)K after = ½ (2.15 × 0.100² × 1² + ½ × 0.0501 × 1²)K after = 0.011 J.
Therefore, the kinetic energy before the collision is 24.8 J and after the collision is 0.011 J.c)
The total linear momentum before the collision is the product of the mass and the velocity of the disk.p before = mv = 0.0501 × 31.3p before = 1.57 kg m/sThe total linear momentum after the collision is the product of the mass and the velocity of the stick and the disk. The velocity of the stick can be found using the conservation of linear momentum.mv before = (M + m) v after Where,M is the mass of the stick, m is the mass of the disk, v before is the initial velocity of the disk, and v after is the final velocity of the stick and the disk together.v after = m v before / (M + m)v after = 0.0501 × 31.3 / (2.15 + 0.0501)v after = 1.48 m/s.
Therefore, the total linear momentum after the collision isp after = (M + m) v after p after = (2.15 + 0.0501) × 1.48p after = 3.20 kg m/s (approximately)Thus, the total linear momentum before the collision is 1.57 kg m/s and after the collision is 3.20 kg m/s (approximately).
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The resistor in a series RCL circuit has a resistance of 90.00, while the rms voltage of the generator is 5.00 V. At resonance, what is the average power delivered to the circuit? P 2v
=
With an rms voltage of 5.00 V and a resistance of 90.00 Ω, the average power delivered to the circuit is approximately 0.278 W.
In a series RCL circuit at resonance, the reactance of the inductor and capacitor cancel each other out, resulting in a purely resistive circuit. At resonance, the impedance of the circuit is equal to the resistance.
The average power delivered to a resistor in an AC circuit can be calculated using the formula P = [tex]V_{rms} ^{2}[/tex] / R, where P is the average power, [tex]V_{rms} ^{2}[/tex] is the root mean square voltage, and R is the resistance.
Substituting the given values, we have P = [tex](5V)^{2}[/tex]/ 90.00 Ω = 0.278 W. Therefore, at resonance in the series RCL circuit, the average power delivered to the circuit is approximately 0.278 W.
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When flip the pages slowly, one page at a time, do you see the images to be
moving? Justify your answer
When we flip the pages slowly, one page at a time, we can see the images moving. This is known as an optical illusion caused by the persistence of vision, which refers to the way our brain processes visual information. An image stays in our retina for approximately 1/16th of a second. When a new image appears before the previous one disappears, the brain blends the two images together, creating the illusion of motion.
Optical illusions can occur when our brain tries to make sense of the information it receives from our eyes. The image on the previous page continues to linger in our mind, and our brain automatically fills in the blanks. It is important to note that this effect is limited by the frame rate of our eyes and the speed at which we flip the pages. When we flip the pages too fast, the brain is unable to process the information and we are left with a blurry image.
Optical illusions are often used in animation and movies to create the illusion of motion. When images are shown in quick succession, it tricks the brain into thinking that the objects are moving. This is the same principle behind flipbooks and zoetropes, where a series of images are displayed in quick succession to create the illusion of motion.
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A coil wound 3000 turns in the form of an air-cored torus with a square cross section. The inner diameter of the torus is 60mm and the outer diameter is 100mm. The coil current is 0.3A. (a) Determine the maximum and minimum values of the magnetic field intensity within the toroidal coil. (b) Determine the magnetic flux within the torus. (c) Determine the average flux density across the torus and compare it with the flux density midway between the inner and outer edges of the coil.
The correct answer of a) the maximum value B max= μ₀IN/4a and minimum value μ₀IN/(2πa), b) the magnetic flux within the torus is given by:Φ= μ₀N²Ia and c) the ratio of the average flux density to the flux density midway between the inner and outer edges of the coil is given by : Bav/Bmid= 4(a²-b²)/πa²≈ 0.75.
(a) The maximum magnetic field intensity occurs at the inner and outer edges of the torus. The magnetic field intensity at the inner edge is given by B= μ₀IN/L Where I is the current, N is the number of turns and L is the effective length of the coil. Since the torus has a square cross-section, the length of the coil is given by L= 4a Where a is the side length of the square cross-section. Therefore, the magnetic field intensity at the inner edge is given by: B = μ₀IN/4a
The magnetic field intensity at the outer edge is given by B= μ₀IN/(2πa)
Therefore, the maximum value of magnetic field intensity within the toroidal coil is given by Bmax= μ₀IN/4a
The minimum value of magnetic field intensity within the toroidal coil is given by Bmin= μ₀IN/(2πa)
(b) The magnetic flux within the torus is given by:Φ= NIB Where N is the number of turns, I is the current and B is the magnetic field intensity.
Therefore, the magnetic flux within the torus is given by:Φ= μ₀N²Ia
(c) The average flux density across the torus is given by: Bav= Φ/(Nπ(a²-b²)) Where Φ is the magnetic flux, N is the number of turns, a is the outer radius of the torus and b is the inner radius of the torus.
Therefore, the average flux density across the torus is given by: Bav= μ₀NI/π(a²-b²)
The flux density midway between the inner and outer edges of the coil is given by: Bmid= μ₀NI/(4a)
Therefore, the ratio of the average flux density to the flux density midway between the inner and outer edges of the coil is given by : Bav/Bmid= 4(a²-b²)/πa²≈ 0.75.
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20 kVA, 2000/200-V, 50-Hz transformer has a high voltage winding resistance of 0.2 2 and a leakage reactance of 0.242. The low voltage winding resistance is 0.05 2 and the leakage reactance is 0.02 2. Find the equivalent winding resistance, reactance and impedance referred to the (i) high voltage side and (ii) the low-voltage side. (Draw the related equivalent circuits)
Therefore, the equivalent winding resistance is 0.27 Ω, the equivalent reactance is 0.262 Ω, and the equivalent impedance is 0.376 Ω.
To find the equivalent winding resistance, reactance, and impedance of the transformer, we can use the following formulas:
Equivalent Winding Resistance[tex](R_{eq})[/tex] = High Voltage Winding Resistance + Low Voltage Winding Resistance
Equivalent Reactance[tex](X_{eq})[/tex] = High Voltage Leakage Reactance + Low Voltage Leakage Reactance
Equivalent Impedance[tex](Z_{eq})[/tex] = [tex]\sqrt(R_{eq^2} + X_{eq^2})[/tex]
Given:
High Voltage Winding Resistance [tex](R_h)[/tex] = 0.22 Ω
High Voltage Leakage Reactance[tex](X_h)[/tex] = 0.242 Ω
Low Voltage Winding Resistance[tex](R_l)[/tex] = 0.05 Ω
Low Voltage Leakage Reactance[tex](X_l)[/tex] = 0.02 Ω
Calculating the values:
Equivalent Winding Resistance [tex](R_{eq})[/tex] = 0.22 Ω + 0.05 Ω = 0.27 Ω
Equivalent Reactance[tex](X_{eq})[/tex]= 0.242 Ω + 0.02 Ω = 0.262 Ω
Equivalent Impedance [tex](Z_{eq})[/tex] = √[tex](0.27^2 + 0.262^2)[/tex] =[tex]\sqrt{(0.0729 + 0.068644)[/tex]= [tex]\sqrt{0.141544[/tex] = 0.376 Ω
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--The complete QUestion is, What is the equivalent winding resistance, reactance, and impedance of a 20 kVA, 2000/200-V, 50-Hz transformer with a high voltage winding resistance of 0.22 Ω and a leakage reactance of 0.242 Ω, and a low voltage winding resistance of 0.05 Ω and a leakage reactance of 0.02 Ω?
--
Assuming that the Earth is a sphere of radius 6378 km, calculate the magnitude of the centrifugal force and force of gravity acting on a 400.0 kg mass located at a place of latitude 40°. The gravitational constant is 6.6742 × 10⁻¹¹ m³ kg⁻¹s⁻² and the Earth's mass is about 5.9722 x 10²⁴ kg. Round-off final values to 2 decimal places.
By assuming that Earth is sphere and it have radius of 6378 km, then its magnitude of the centrifugal force is 293.14 N and Magnitude of the force of gravity is 1.94 x 10⁴ N.
To calculate the magnitude of the centrifugal force and force of gravity,
Centrifugal force:
F_centrifugal = m * ω² * r
Force of gravity:
F_gravity = G * (m * M) / r²
It is given that, Mass of the object (m) = 400.0 kg, Radius of the Earth (r) = 6378 km = 6,378,000 m, Gravitational constant (G) = 6.6742 × 10⁻¹¹ m³ kg⁻¹ s⁻², Mass of the Earth (M) = 5.9722 x 10²⁴ kg, Latitude (θ) = 40°.
First, we need to calculate the angular velocity (ω) using the latitude:
ω = 2π * (1 day) / (1 sidereal day)
1 day = 24 hours = 24 * 60 * 60 seconds
1 sidereal day = 23 hours 56 minutes 4.1 seconds = 23 * 60 * 60 + 56 * 60 + 4.1 seconds
ω = 2π * (24 * 60 * 60) / (23 * 60 * 60 + 56 * 60 + 4.1)
ω = 7.2921 × 10⁻⁵ rad/s
(a) Centrifugal Force:
To calculate the centrifugal force, we need to convert the latitude to radians:
θ (in radians) = θ (in degrees) * π / 180
θ (in radians) = 40 * π / 180
Now we can calculate the centrifugal force:
F_centrifugal = m * ω² * r * sin(θ)
F_centrifugal = (400.0 kg) * (7.2921 × 10⁻⁵ rad/s)² * (6,378,000 m) * sin(40°)
F_centrifugal = 293.14 N
(b) Force of Gravity:
To calculate the force of gravity, we use the formula:
F_gravity = G * (m * M) / r²
F_gravity = (6.6742 × 10⁻¹¹ m³ kg⁻¹ s⁻²) * (400.0 kg) * (5.9722 x 10²⁴ kg) / (6,378,000 m)²
F_gravity ≈ 1.94 x 10⁴ N
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Match each term on the left with the most appropriate description on the right [C-10] Correct Letter ______
Term • Principle of Superposition
• Standing Waves
• Sound
• Harmonics
• Wavelength
• Destructive Interference
• Echolocation
• Ultrasonic Waves
• Node
Description A: A form of energy produced by rapidly vibrating objects B: the distance between two crests or troughs in successive identical cycles in a wave C: frequency above 20 kHz D: smaller resultant amplitude Amplitude. E: algebraic sum of amplitudes of individual waves F: an interference pattern caused by waves with identical amplitudes and wavelengths G: The location of objects through the analysis of echoes or reflected sound H: whole number multiple of fundamental frequency I: the maximum displacement of a wave from its equilibrium. J: The particles of a medium are at rest
The correct matching for each term and description is:
Principle of Superposition - E
Standing Waves - H
Sound - A
Harmonics - H
Wavelength - B
Destructive Interference - D
Echolocation - G
Ultrasonic Waves - C
Node - J
Therefore, the correct letter for the matching is:
E, H, A, H, B, D, G, C, J.
Match each term on the left with the most appropriate description on the right:
Term:
• Principle of Superposition
• Standing Waves
• Sound
• Harmonics
• Wavelength
• Destructive Interference
• Echolocation
• Ultrasonic Waves
• Node
Description:
A: A form of energy produced by rapidly vibrating objects
B: The distance between two crests or troughs in successive identical cycles in a wave
C: Frequency above 20 kHz
D: Smaller resultant amplitude
E: Algebraic sum of amplitudes of individual waves
F: An interference pattern caused by waves with identical amplitudes and wavelengths
G: The location of objects through the analysis of echoes or reflected sound
H: Whole number multiple of the fundamental frequency
I: The maximum displacement of a wave from its equilibrium
J: The particles of a medium are at rest
Correct matching:
• Principle of Superposition - E: Algebraic sum of amplitudes of individual waves
• Standing Waves - H: Whole number multiple of the fundamental frequency
• Sound - A: A form of energy produced by rapidly vibrating objects
• Harmonics - H: Whole number multiple of the fundamental frequency
• Wavelength - B: The distance between two crests or troughs in successive identical cycles in a wave
• Destructive Interference - D: Smaller resultant amplitude
• Echolocation - G: The location of objects through the analysis of echoes or reflected sound
• Ultrasonic Waves - C: Frequency above 20 kHz
• Node - J: The particles of a medium are at rest
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A scuba diver and her gear displace a volume of 65.4 L and have a total mass of 67.8 kg. What is the buoyant force on the diver in sea water? F B
Part B Will the diver sink or float? sink float
The buoyant force acting on the scuba diver in sea water is 651.12 N. Based on this force, the diver will float in sea water.
The buoyant force on an object submerged in a fluid is equal to the weight of the fluid displaced by the object. In this case, the scuba diver and her gear displace a volume of 65.4 L of sea water. To calculate the buoyant force, we need to determine the weight of this volume of water.
The density of sea water is approximately 1030 kg/m³. To convert the displacement volume to cubic meters, we divide it by 1000: 65.4 L / 1000 = 0.0654 m³.
Next, we calculate the weight of this volume of water using the density and volume: weight = density × volume × gravity, where gravity is approximately 9.8 m/s². Thus, the weight of the displaced water is 1030 kg/m³ × 0.0654 m³ × 9.8 m/s² = 651.12 N.
Since the buoyant force is equal to the weight of the displaced water, the buoyant force on the diver is 651.12 N. Since the buoyant force is greater than the weight of the diver (67.8 kg × 9.8 m/s² = 663.24 N), the diver will experience an upward force greater than her weight. As a result, the diver will float in sea water.
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A taxi cab drives 3.0 km [S], then 2.0 km [W], then 1.0 km [N], and finally 5.0 km [E]. The entire trip takes 0.70 h. What is the taxi's average velocity? A) 3.6 km/h [34° S of W] B) 5.2 km/h [34° S of E]
C) 4.7 km/h (56° E of N] D) 3.6 km/h [56° W of S] E) 5.2 km/h [34° E of S]
The taxi's average velocity is approximately 5.1 km/h. None of the given answer choices match exactly, but option B) 5.2 km/h [34° S of E] is the closest.
To find the average velocity of the taxi, we need to calculate the total displacement and divide it by the total time taken.
Given the following distances and directions:
3.0 km [S]
2.0 km [W]
1.0 km [N]
5.0 km [E]
To calculate the total displacement, we need to consider the directions. The net displacement in the north-south direction is 3.0 km south - 1.0 km north = 2.0 km south. In the east-west direction, the net displacement is 5.0 km east - 2.0 km west = 3.0 km east.
Using the Pythagorean theorem, we can find the magnitude of the net displacement:
|Δx| = √((2.0 km)² + (3.0 km)²) = √(4.0 km² + 9.0 km²) = √13.0 km² = 3.6 km.
The average velocity is calculated by dividing the total displacement by the total time:
Average velocity = (Total displacement) / (Total time)
= 3.6 km / 0.70 h
≈ 5.1 km/h.
Therefore, the taxi's average velocity is approximately 5.1 km/h.
None of the provided answer choices match the calculated average velocity exactly, but option B) 5.2 km/h [34° S of E] is the closest approximation.
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You are looking for a mirror that will enable you to see a 3.4-times magaified virtual image of an object that is placed 4.1 em from the mirror's vertex.
Part (a) What kind of mirror will you need? Part (b) What should the mirror's radius of curvature be, in centimeters?
R = _____________
The mirror that you need is concave mirror and the radius of curvature of the concave mirror should be -5.44 cm to get a 3.4 times magnified virtual image.
(a) You will need a concave mirror to see a 3.4-times magnified virtual image of an object placed 4.1 cm away from the mirror's vertex.
(b) The radius of curvature (R) of the mirror can be calculated using the mirror formula for concave mirrors, which is given as:
1/f = 1/v + 1/u
where,
f is the focal length,
v is the image distance,
u is the object distance
The magnification (m) of the mirror is given as:-
m = v/u
Using the above equations, we can calculate the focal length (f) and magnification (m) of the concave mirror, and then use the formula,
R = 2f
u = -4.1 cm (since the object is placed in front of the mirror)
v = -13.94 cm (since the virtual image is formed behind the mirror)
m = -3.4 (since the image is 3.4 times larger than the object, it is magnified)
Using the mirror formula, we get:
1/f = 1/v + 1/u= 1/-13.94 + 1/-4.1= -0.123 + (-0.244)= -0.367
f = -2.72 cm
Using the magnification formula,
-m = v/u
v = -m/u
v = -57.14 cm
Using the formula for radius of curvature,
R = 2f
R = 2(-2.72)
R = -5.44 cm
The radius of curvature of the concave mirror should be -5.44 cm.
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I need helpppp :((((((
Answer: c. The electric force increases
Explanation:
If the distance between two charged particles decreases, the electric force between them increases.
According to Coulomb's Law, the electric force between two charged particles is directly proportional to the product of their charges and inversely proportional to the square of the distance between them. Mathematically, the equation can be represented as:
F = k * (q1 * q2) / r^2
Where:
F represents the electric force between the particles.
k is the electrostatic constant.
q1 and q2 are the charges of the particles.
r is the distance between the particles.
As the distance (r) between the particles decreases, the denominator of the equation (r^2) becomes smaller, causing the overall electric force (F) to increase. Conversely, if the distance between the charged particles increases, the electric force between them decreases. This inverse relationship between the distance and electric force is a fundamental characteristic of the electrostatic interaction between charged objects.
Please answer electronically, not manually
5- Are there places where the salty electrical engineer can earn outside his official working hours?
As an Electrical Engineer, you can find several ways to earn extra money outside your official working hours by working as Online tutor, Freelancer, part time teacher etc.
1. Online Tutoring: You can use your engineering degree and expertise to tutor students online. There are several online tutoring websites available where you can register yourself and start teaching students in your free time.
2. Freelancing: Several freelancing websites are available that provide opportunities for Engineers to work on projects. You can register yourself and find work in your domain and complete projects in your free time.
3. Part-time teaching: If you are interested in teaching, you can work as a part-time lecturer or tutor in educational institutions.
4. Content creation: You can use your technical knowledge to create content for technical websites or blogs. You can also start your own blog and earn money through ads.
5. Consulting: As an engineer, you can provide consultancy services to companies or individuals. You can use your expertise to solve their technical problems and earn some extra cash.
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