The difference in rotational kinetic energy when the ice dancer pulls in her arms from a moment of inertia of 2.74 kg m² to 1.54 kg m² is 0.998 Joules.
When the ice dancer pulls in her arms, her moment of inertia decreases, resulting in a change in rotational kinetic energy. The formula for the difference in rotational kinetic energy (ΔK) is given by ΔK = ½ * (I₂ - I₁) * (ω₂² - ω₁²), where I₁ and I₂ are the initial and final moments of inertia, and ω₁ and ω₂ are the initial and final angular velocities.
Given I₁ = 2.74 kg m², I₂ = 1.54 kg m², and ω₁ = 2.2 rad/s, we can calculate ω₂ using the conservation of angular momentum, I₁ * ω₁ = I₂ * ω₂. Solving for ω₂ gives ω₂ = (I₁ * ω₁) / I₂.
Substituting the values into the formula for ΔK, we have ΔK = ½ * (I₂ - I₁) * [(I₁ * ω₁ / I₂)² - ω₁²].
Performing the calculations, we find ΔK ≈ 0.998 Joules. This means that when the ice dancer pulls in her arms, the rotational kinetic energy decreases by approximately 0.998 Joules.
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An electron is measured to have a momentum 68.1 +0.83 and to be at a location 7.84mm. What is the minimum uncertainty of the electron's position (in nm)? D Question 11 1 pts A proton has been accelerated by a potential difference of 23kV. If its positich is known to have an uncertainty of 4.63fm, what is the minimum percent uncertainty (x 100) of the proton's P momentum?
The minimum percent uncertainty of the proton's momentum is 49.7%.
Momentum of an electron = 68.1 ± 0.83
Location of an electron = 7.84 mm = 7.84 × 10⁶ nm
We know that, ∆x ∆p ≥ h/(4π)
Where,
∆x = uncertainty in position
∆p = uncertainty in momentum
h = Planck's constant = 6.626 × 10⁻³⁴ Js
Putting the given values,
∆x (68.1 ± 0.83) × 10⁻²⁷ ≥ (6.626 × 10⁻³⁴) / (4π)
∆x ≥ h/(4π × ∆p) = 6.626 × 10⁻³⁴ /(4π × (68.1 + 0.83) × 10⁻²⁷)
∆x ≥ 2.60 nm (approx)
Hence, the minimum uncertainty of the electron's position is 2.60 nm.
A proton has been accelerated by a potential difference of 23 kV. If its position is known to have an uncertainty of 4.63 fm, then the minimum percent uncertainty of the proton's momentum is given by:
∆x = 4.63 fm = 4.63 × 10⁻¹⁵ m
We know that the de-Broglie wavelength of a proton is given by,
λ = h/p
Where,
λ = de-Broglie wavelength of proton
h = Planck's constant = 6.626 × 10⁻³⁴ J.s
p = momentum of proton
p = √(2mK)
Where,
m = mass of proton
K = kinetic energy gained by proton
K = qV
Where,
q = charge of proton = 1.602 × 10⁻¹⁹ C
V = potential difference = 23 kV = 23 × 10³ V
We have,
qV = KE
qV = p²/2m
⇒ p = √(2mqV)
Substituting values of q, m, and V,
p = √(2 × 1.602 × 10⁻¹⁹ × 23 × 10³) = 1.97 × 10⁻²² kgm/s
Now,
λ = h/p = 6.626 × 10⁻³⁴ / (1.97 × 10⁻²²) = 3.37 × 10⁻¹² m
Uncertainty in position is ∆x = 4.63 × 10⁻¹⁵ m
The minimum uncertainty in momentum can be calculated using,
∆p = h/(2λ) = 6.626 × 10⁻³⁴ / (2 × 3.37 × 10⁻¹²) = 0.98 × 10⁻²² kgm/s
Minimum percent uncertainty in momentum is,
∆p/p × 100 = (0.98 × 10⁻²² / 1.97 × 10⁻²²) × 100% = 49.74% = 49.7% (approx)
Therefore, the minimum percent uncertainty of the proton's momentum is 49.7%.
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A Physics book (1.5 kg), a Phys Sci book (0.60 kg) and a Fluid Mechanics book, (1.0 kg) are stacked on top of each other on a table as shown. A force of 4.0 N at and angle of 25° above the horizontal is applied to the bottom book. Coeffecient of friction between the the Fluid and Phys Sci book is 0.38. Coeffecient of friction between Phys Sci and Physics is 0.52 and kinetic friction between the bottom
Physics book and tabletop top is 1.3 N.
[a) What is the normal force acting on all the books by the table top?
b) What is the net force in the horizontal direction?
c) What is the acceleration of the stack of books?
The acceleration of the stack of books is 1.18 m/s².
Force applied, F = 4.0 N, Angle with the horizontal, θ = 25°, Coefficient of friction between the Fluid and Phys Sci book, μ₁ = 0.38, Kinetic friction between the bottom Physics book and tabletop, f = 1.3 N. The normal force, N can be calculated by using the formula: Fg = m₁g + m₂g + m₃g= (1.5 kg + 0.60 kg + 1.0 kg) × 9.8 m/s²= 26.2 N.
Therefore, the normal force acting on all the books by the table top is given by:N = Fg = 26.2 N .
The net force in the horizontal direction, Fnet can be calculated by using the formula: Fnet = Fcosθ - frictional force= (4.0 N)cos25° - f= 3.66 N. The force applied in the direction of motion is given by: F = m × a. The total mass of the stack of books is given by: m = m₁ + m₂ + m₃= 1.5 kg + 0.60 kg + 1.0 kg= 3.10 kg. Now, acceleration of the stack of books, a = F/m= 3.66 N / 3.10 kg= 1.18 m/s².
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A horizontal wire of length 3.0 m carries a current of 6.0 A and is oriented so that the current direction is 50 ∘ S of W. The Earth's magnetic field is due north at this point and has a strength of 0.14×10 ^−4 T. What are the magnitude and direction of the force on the wire? 1.9×10 N ^−4 , out of the Earth's surface None of the choices is correct. 1.6×10 N ^−4 , out of the Earth's surface 1.9×10 N ^−4 , toward the Earth's surface 1.6×10 N ^−4 , toward the Earth's surface
The magnitude of the force on the wire is 1.9 × 10⁻⁴ N. The direction of the current is 50° south of the west. 1.9×10 N⁻⁴, out of the Earth's surface is the correct option.
Length of the horizontal wire, L = 3.0 m
Current flowing through the wire, I = 6.0 A
Earth's magnetic field, B = 0.14 × 10⁻⁴ T
Angle made by the current direction with due west = 50° south of westForce on a current-carrying wire due to the Earth's magnetic field is given by the formula:
F = BILsinθ, where
L is the length of the wire, I is the current flowing through it, B is the magnetic field strength at that location and θ is the angle between the current direction and the magnetic field direction
Magnitude of the force on the wire is
F = BILsinθF = (0.14 × 10⁻⁴ T) × (6.0 A) × (3.0 m) × sin 50°F = 1.9 × 10⁻⁴ N
Earth's magnetic field is due north, the direction of the force on the wire is out of the Earth's surface. Therefore, the correct option is 1.9×10 N⁻⁴, out of the Earth's surface.
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Consider a rectangular bar composed of a conductive metal. l' = ? R' = ? R + V V 1. Is its resistance the same along its length as across its width? Explain.
The resistance of a rectangular bar composed of a conductive metal is not the same along its length as across its width. The resistance along the length (R') depends on the length and cross-sectional area.
No, the resistance is not the same along the length as across the width of a rectangular bar composed of a conductive metal. Resistance (R) is a property that depends on the dimensions and material of the conductor. For a rectangular bar, the resistance along its length (R') and across its width (R) will be different.
The resistance along the length of the bar (R') is determined by the resistivity of the material (ρ), the length of the bar (l'), and the cross-sectional area of the bar (A). It can be calculated using the formula:
R' = ρ * (l' / A).
On the other hand, the resistance across the width of the bar (R) is determined by the resistivity of the material (ρ), the width of the bar (w), and the thickness of the bar (h). It can be calculated using the formula:
R = ρ * (w / h).
Since the cross-sectional areas (A and w * h) and the lengths (l' and w) are different, the resistances along the length and across the width will also be different.
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3. (8 points) Name and describe the two main forms of mechanical waves.
Mechanical waves are waves that require a medium to travel through. These waves can travel through different mediums, including solids, liquids, and gases. The two main forms of mechanical waves are transverse waves and longitudinal waves.
Mechanical waves are the waves which require a medium for their propagation. A medium is a substance through which a mechanical wave travels. The medium can be a solid, liquid, or gas. These waves transfer energy from one place to another by the transfer of momentum and can be described by their wavelength, frequency, amplitude, and speed.There are two main forms of mechanical waves, transverse waves and longitudinal waves. In transverse waves, the oscillations of particles are perpendicular to the direction of wave propagation.
Transverse waves can be observed in the motion of a string, water waves, and electromagnetic waves. Electromagnetic waves are transverse waves but do not require a medium for their propagation. Examples of electromagnetic waves are radio waves, light waves, and X-rays. In longitudinal waves, the oscillations of particles are parallel to the direction of wave propagation. Sound waves are examples of longitudinal waves where the particles of air or water oscillate parallel to the direction of the sound wave.
In conclusion, transverse and longitudinal waves are two main forms of mechanical waves. Transverse waves occur when the oscillations of particles are perpendicular to the direction of wave propagation. Longitudinal waves occur when the oscillations of particles are parallel to the direction of wave propagation. The speed, frequency, wavelength, and amplitude of a wave are its important characteristics. The medium, through which a wave travels, can be a solid, liquid, or gas. Electromagnetic waves are also transverse waves but do not require a medium for their propagation.
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Question 31 1 pts A high voltage transmission line carrying 500 MW of electrical power at voltage of 409 kV (kilovolts) has a resistance of 10 ohms. What is the power lost in the transmission line? Give your answer in megawatts (MW).
The power lost in the transmission line is approximately 14.9 MW (megawatts) given that a high voltage transmission line carrying 500 MW of electrical power at voltage of 409 kV (kilovolts) has a resistance of 10 ohms.
Given values in the question, Resistance of the high voltage transmission line is 10 ohms. Power carried by the high voltage transmission line is 500 MW. Voltage of the high voltage transmission line is 409 kV (kilovolts).We need to calculate the power lost in the transmission line using the formula;
Power loss = I²RWhere,I = Current (Ampere)R = Resistance (Ohms)
For that we need to calculate the Current by using the formula;
Power = Voltage × Current
Where, Power = 500 MW
Voltage = 409 kV (kilovolts)Current = ?
Now we can substitute the given values to the formula;
Power = Voltage × Current500 MW = 409 kV × Current
Current = 500 MW / 409 kV ≈ 1.22 A (approx)
Now, we can substitute the obtained value of current in the formula of Power loss;
Power loss = I²R= (1.22 A)² × 10 Ω≈ 14.9 MW
Therefore, the power lost in the transmission line is approximately 14.9 MW (megawatts).
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An infinite line charge of uniform linear charge density λ = -2.1 µC/m lies parallel to the y axis at x = -1 m. A point charge of 1.1 µC is located at x = 2.5 m, y = 3.5 m. Find the x component of the electric field at x = 3.5 m, y = 3.0 m. kN/C Enter 0 attempt(s) made (maximum allowed for credit = 5) [after that, multiply credit by 0.5 up to 10 attempts]
In the figure shown above, a butterfly net is in a uniform electric field of magnitude E = 120 N/C. The rim, a circle of radius a = 14.3 cm, is aligned perpendicular to the field.
Find the electric flux through the netting. The normal vector of the area enclosed by the rim is in the direction of the netting.
The electric flux is:
The electric flux is 7.709091380790923. The electric field due to an infinite line charge of uniform linear charge density λ is given by:
E = k * λ / x
The electric field due to an infinite line charge of uniform linear charge density λ is given by:
E = k * λ / x
where k is the Coulomb constant and x is the distance from the line charge.
The x component of the electric field at x = 3.5 m, y = 3.0 m is:
E_x = k * λ / (3.5) = -2.86 kN/C
The electric field due to the point charge is given by:
E = k * q / r^2
where q is the charge of the point charge and r is the distance from the point charge.
The x component of the electric field due to the point charge is:
E_x = k * 1.1 * 10^-6 / ((3.5)^2 - (2.5)^2) = -0.12 kN/C
The total x component of the electric field is:
E_x = -2.86 - 0.12 = -2.98 kN/C
The electric flux through the netting is:
Φ = E * A = 120 * (math.pi * (14.3 / 100)^2) = 7.709091380790923
Therefore, the electric flux is 7.709091380790923.
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What is the frequency of the emitted gamma photons (140-keV)?
(Note: Use Planck's constant h=6.6 x 10^-34 Js and the elemental
charge e=1.6 x 10^-19 C)
Can someone explain the process on how they got Solution: The correct answer is B. = A. The photon energy is 140 keV = 140 x 10^3 x 1.6 x 10-19 ) = 2.24 x 10-14 ]. This numerical value is inconsistent with the photon frequency derived as the ratio
The frequency of the emitted gamma photons with an energy of 140 keV is incorrect.
Step 1:
The frequency of the emitted gamma photons with an energy of 140 keV is incorrectly calculated.
Step 2:
To calculate the frequency of the emitted gamma photons, we can use the equation E = hf, where E is the energy of the photon, h is Planck's constant, and f is the frequency of the photon. In this case, we are given the energy of the photon (140 keV) and need to find the frequency.
First, we need to convert the energy from keV to joules. Since 1 keV is equal to 1.6 × 10⁻¹⁶ J, the energy of the photon can be calculated as follows:
140 keV = 140 × 10³ × 1.6 × 10⁻¹⁶ J = 2.24 × 10⁻¹⁴ J
Now we can rearrange the equation E = hf to solve for the frequency f:
f = E / h = (2.24 × 10⁻¹⁴ J) / (6.6 × 10⁻³⁴ Js) ≈ 3.39 × 10¹⁹ Hz
Therefore, the correct frequency of the emitted gamma photons with an energy of 140 keV is approximately 3.39 × 10¹⁹ Hz.
Planck's constant, denoted by h, is a fundamental constant in quantum mechanics that relates the energy of a photon to its frequency. It quantifies the discrete nature of energy and is essential in understanding the behavior of particles at the microscopic level.
By applying the equation E = hf, where E is energy and f is frequency, we can determine the frequency of a photon given its energy. In this case, we used the energy of the gamma photons (140 keV) and Planck's constant to calculate the correct frequency. It is crucial to be accurate in the conversion of units to obtain the correct result.
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The intensity of a sound in units of dB is given by I(dB) = 10 log – (I/I0) where I and Io are measured in units of W m2 and the value of I, is 10-12 W m2 The sound intensity on a busy road is 3 x 10-5 W m2. What is the value of this sound intensity expressed in dB? Give your answer to 2 significant figures.
The value of the sound intensity on a busy road, expressed in dB, is approximately 83 dB.
We can calculate the value of the sound intensity in dB using the formula I(dB) = 10 log10(I/I0), where I is the sound intensity and I0 is the reference intensity of 10^(-12) W/m².
Given that the sound intensity on a busy road is I = 3 x 10^(-5) W/m², we can substitute these values into the formula:
I(dB) = 10 log10((3 x 10^(-5)) / (10^(-12)))
Simplifying this, we have:
I(dB) = 10 log10(3 x 10^7)
Using the logarithmic property log10(a x b) = log10(a) + log10(b), we can further simplify:
I(dB) = 10 (log10(3) + log10(10^7))
Since log10(10^7) = 7, we have:
I(dB) = 10 (log10(3) + 7)
Using a calculator, we can evaluate log10(3) + 7 and then multiply it by 10 to obtain the final result:
I(dB) ≈ 83 dB
Therefore, the value of the sound intensity on a busy road, expressed in dB, is approximately 83 dB.
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A levitating train is three cars long (150 m) and has a mass of 100 metric tons (1 metric ton = 1000 kg). The current in the superconducting wires is about 500 kA, and even though the traditional design calls for many small coils of wire, assume for this problem that there is a 150-m-long, straight wire carrying the current beneath the train. A perpendicular magnetic field on the track levitates the train. Find the magnitude of the magnetic field B needed to levitate the train.
The magnitude of the magnetic field needed to levitate the train is approximately 0.0131 N/(A·m). To find the magnitude of the magnetic field B needed to levitate the train, we can use the equation for the magnetic force on a current-carrying wire. which is given by F = BIL.
The force of attraction between a magnetic field and a current-carrying wire is given by the equation F = BIL, where F is the force, B is the magnetic field, I is the current, and L is the length of the wire. For the train to be levitated, this magnetic force must balance the force of gravity on the train.
The force of gravity on the train can be calculated using the equation F = mg, where m is the mass of the train and g is the acceleration due to gravity. Given that the mass of the train is 100 metric tons, which is equivalent to 100,000 kg, and the acceleration due to gravity is approximately 9.8 m/s², we can determine the force of gravity.
By setting the force of attraction equal to the force of gravity and rearranging the equation, we have BIL = mg. Plugging in the values for the train's length L (150 m), current I (500 kA = 500,000 A), and mass m (100,000 kg), we can solve for the magnetic field B. The magnitude of the magnetic field needed to levitate the train is approximately 0.0131 N/(A·m).
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A piano string having a mass per unit length equal to 4.50 ✕
10−3 kg/m is under a tension of 1,500 N. Find the speed
with which a wave travels on this string.
m/s
The speed with which a wave travels on a piano string having a mass per unit length equal to 4.50 ✕ 10−3 kg/m under a tension of 1,500 N is 75 m/s so the speed with which a wave travels on a piano string having a mass per unit length equal to 4.50 ✕ 10−3 kg/m under a tension of 1,500 N is 75 m/s.
A piano is a stringed musical instrument in which the strings are struck by hammers, causing them to vibrate and create sound. The piano has strings that are tightly stretched across a frame. When a key is pressed on the piano, a hammer strikes a string, causing it to vibrate and produce a sound.
A wave is a disturbance that travels through space and matter, transferring energy from one point to another. Waves can take many forms, including sound waves, light waves, and water waves.
The formula to calculate the speed of a wave on a string is: v = √(T/μ)where v = speed of wave T = tension in newtons (N)μ = mass per unit length (kg/m) of the string
We have given that: Mass per unit length of the string, μ = 4.50 ✕ 10−3 kg/m Tension in the string, T = 1,500 N
Now, substituting these values in the above formula, we get: v = √(1500 N / 4.50 ✕ 10−3 kg/m)On solving the above equation, we get: v = 75 m/s
Therefore, the speed with which a wave travels on a piano string having a mass per unit length equal to 4.50 ✕ 10−3 kg/m under a tension of 1,500 N is 75 m/s.
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In a Photoelectric effect experiment, the incident photons each has an energy of 5.162×10−19 J. The power of the incident light is 0.74 W. (power = energy/time) The work function of metal surface used is W0 =2.71eV.1 electron volt (eV)=1.6×10−19 J. If needed, use h=6.626×10−34 J⋅s for Planck's constant and c=3.00×108 m/s for the speed of light in a vacuum. Part A - How many photons in the incident light hit the metal surface in 3.0 s Part B - What is the max kinetic energy of the photoelectrons? Part C - Use classical physics fomula for kinetic energy, calculate the maximum speed of the photoelectrons. The mass of an electron is 9.11×10−31 kg
The maximum speed of the photoelectrons is 1.355 × 10^6 m/s.
The formula for energy of a photon is given by,E = hf = hc/λ
where E is the energy of a photon, f is its frequency, h is Planck's constant, c is the speed of light, and λ is the wavelength. For this question,
h = 6.626 × 10^-34 J s and
c = 3.00 × 10^8 m/s .
Part A
The energy of each incident photon is 5.162×10−19 J
The power of the incident light is 0.74 W.
The total number of photons hitting the metal surface in 3.0 s is calculated as:
Energy of photons = Power × Time => Energy of 1 photon × Number of photons = Power × Time
So,
Number of photons = Power × Time/Energy of 1 photon
Therefore, Number of photons = 0.74 × 3.0 / 5.162 × 10^-19 = 4293.3 ≈ 4293.
Thus, 4293 photons in the incident light hit the metal surface in 3.0 s.
Part B
The energy required to remove an electron from the metal surface is known as the work function of the metal.
The work function W0 of the metal surface used is 2.71 eV = 2.71 × 1.6 × 10^-19 J = 4.336 × 10^-19 J.
Each photon must transfer at least the energy equivalent to the work function to the electron. The maximum kinetic energy of the photoelectrons is given by:
KE
max = Energy of photon - Work function KE
max = (5.162×10−19 J) - (2.71 × 1.6 × 10^-19 J) = 0.822 × 10^-18 J.
Thus, the max kinetic energy of the photoelectrons is 0.822 × 10^-18 J.
Part C
The maximum speed vmax of the photoelectrons is given by the classical physics formula for kinetic energy, which is:
KEmax = (1/2)mv^2
Where m is the mass of an electron, and v is the maximum speed of photoelectrons.The mass of an electron is 9.11×10−31 kg.
Thus, vmax = sqrt[(2 × KEmax) / m]`vmax = sqrt[(2 × 0.822 × 10^-18 J) / 9.11 × 10^-31 kg] = 1.355 × 10^6 m/s
Therefore, the maximum speed of the photoelectrons is 1.355 × 10^6 m/s.
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Imagine that an object is thrown in the air with 100 miles per hour with 30 degrees of angle. Calculate the size of the displacement associated with the object in the horizontal direction when it was done on a large size spherical star with the gravitational acceleration is 25 miles per hour
On a large spherical star with a gravitational acceleration of 25 miles per hour, an object thrown at a 30-degree angle with an initial velocity of 100 miles per hour will have a calculated horizontal displacement.
Resolve the initial velocity:
Given the initial velocity of the object is 100 miles per hour and it is launched at an angle of 30 degrees, we need to find its horizontal component. The horizontal component can be calculated using the formula: Vx = V * cos(θ), where V is the initial velocity and θ is the launch angle.
Vx = 100 * cos(30°) = 100 * √3/2 = 50√3 miles per hour.
Calculate the time of flight:
To determine the horizontal displacement, we first need to calculate the time it takes for the object to reach the ground. The time of flight can be determined using the formula: t = 2 * Vy / g, where Vy is the vertical component of the initial velocity and g is the gravitational acceleration.
Since the object is thrown vertically upwards, Vy = V * sin(θ) = 100 * sin(30°) = 100 * 1/2 = 50 miles per hour.
t = 2 * 50 / 25 = 4 hours.
Calculate the horizontal displacement:
With the time of flight determined, we can now find the horizontal displacement using the formula: Dx = Vx * t, where Dx is the horizontal displacement, Vx is the horizontal component of the initial velocity, and t is the time of flight.
Dx = 50√3 * 4 = 200√3 miles.
Therefore, the size of the displacement associated with the object in the horizontal direction, when thrown at an angle of 30 degrees and a speed of 100 miles per hour, on a large spherical star with a gravitational acceleration of 25 miles per hour, would be approximately 100 miles.
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2 -14 Points DETAILS OSCOLPHYS2016 13.P.01. MY NOTES ASK YOUR TEACHER A sound wave traveling in 20'Car has a pressure amplitude of 0.0 What intensity level does the sound correspond to? (Assume the density of ar 1.23 meter your answer.) db
The intensity level (I_dB) is -∞ (negative infinity).
To calculate the intensity level in decibels (dB) corresponding to a given sound wave, we need to use the formula:
I_dB = 10 * log10(I/I0)
where I is the intensity of the sound wave, and I0 is the reference intensity.
Given:
Pressure amplitude (P) = 0.0 (no units provided)
Density of air (ρ) = 1.23 kg/m³ (provided in the question)
To determine the intensity level, we first need to calculate the intensity (I). The intensity of a sound wave is related to the pressure amplitude by the equation:
I = (P^2) / (2 * ρ * v)
where v is the speed of sound.
The speed of sound in air at room temperature is approximately 343 m/s.
Plugging in the given values and calculating the intensity (I):
I = (0.0^2) / (2 * 1.23 kg/m³ * 343 m/s)
I = 0 / 846.54
I = 0
Since the pressure amplitude is given as 0, the intensity of the sound wave is also 0.
Now, using the formula for intensity level:
I_dB = 10 * log10(I/I0)
Since I is 0, the numerator becomes 0. Therefore, the intensity level (I_dB) is -∞ (negative infinity).
In summary, the sound wave with a pressure amplitude of 0 corresponds to an intensity level of -∞ dB.
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Fishermen can use echo sounders to locate schools of fish and to determine the depth of water beneath their vessels. An ultrasonic pulse from an echo sounder is observed to return to a boat after 0.200 s. What is the sea depth beneath the sounder? The speed of sound in water is 1.53 x 103 m s-1. (a) 612 m (b) 306 m (c) 153 m (d) 76.5 m
The speed of sound in water is 1.53 x 103 m s-1. An ultrasonic pulse from an echo sounder is observed to return to a boat after 0.200 s.
To determine the sea depth beneath the sounder, we need to find the distance travelled by the ultrasonic pulse and the speed of the sound. Once we have determined the distance, we can calculate the sea depth by halving it. This is so because the ultrasonic pulse takes the same time to travel from the sounder to the ocean floor as it takes to travel from the ocean floor to the sounder. We are provided with speed of sound in water which is 1.53 x 10³ m/s.We know that speed = distance / time.
Rearranging the formula for distance:distance = speed × time. Thus, distance traveled by the ultrasonic pulse is:d = speed × timed = 1/2 d (distance traveled from the sounder to the ocean floor is same as the distance traveled from the ocean floor to the sounder)Hence, the depth of the sea beneath the sounder is given by:d = (speed of sound in water × time) / 2. Substituting the given values:speed of sound in water = 1.53 x 103 m s-1, time taken = 0.200 s. Therefore,d = (1.53 × 10³ m/s × 0.200 s) / 2d = 153 m. Therefore, the sea depth beneath the sounder is 153 m.Option (c) is correct.
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The velocity of a 1.0 kg particle varies with time as v = (8t)i + (3t²)ĵ+ (5)k where the units of the cartesian components are m/s and the time t is in seconds. What is the angle between the net force Facting on the particle and the linear momentum of the particle at t = 2 s?
The angle between the net force and linear momentum at t = 2s is approximately 38.7 degrees.
To find the angle between the net force F and the linear momentum of the particle, we need to calculate both vectors and then determine their angle. The linear momentum (p) is given by the mass (m) multiplied by the velocity (v). At t = 2s, the velocity is v = 16i + 12ĵ + 5k m/s.
The net force (F) acting on the particle is equal to the rate of change of momentum (dp/dt). Differentiating the linear momentum equation with respect to time, we get dp/dt = m(dv/dt).
Evaluating dv/dt at t = 2s gives us acceleration. Then, using the dot product formula, we can find the angle between F and p. The calculated angle is approximately 38.7 degrees.
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A standing wave on a string is described by the wave function y(x.t) = (3 mm) sin(4Ttx)cos(30tt). The wave functions of the two waves that interfere to produce this standing wave pattern are:
A standing wave on a string is described by the wave function y(x.t) = (3 mm) sin(4Ttx)cos(30tt). The wave functions of the two waves that interfere to produce this standing wave pattern are Wave 1: (1/2)sin((4πtx) + (30πt)),
Wave 2: (1/2)sin((4πtx) - (30πt))
To determine the wave functions of the two waves that interfere to produce the given standing wave pattern, we can use the trigonometric identity for the product of two sines:
sin(A)cos(B) = (1/2)[sin(A + B) + sin(A - B)]
Given the standing wave wave function y(x, t) = (3 mm) sin(4πtx)cos(30πt), we can rewrite it in terms of the product of sines:
y(x, t) = (3 mm) [(1/2)sin((4πtx) + (30πt)) + (1/2)sin((4πtx) - (30πt))]
Therefore, the wave functions of the two waves that interfere to produce the standing wave pattern are:
Wave 1: (1/2)sin((4πtx) + (30πt))
Wave 2: (1/2)sin((4πtx) - (30πt))
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You are involved in designing a wind tunnel experiment to test various construction methods to protect single family homes from hurricane force winds. Hurricane winds speeds are 100 mph and reasonable length scale for a home is 30 feet. The model is to built to have a length scale of 5 feet. The wind tunnel will operate at 7 atm absolute pressure. Under these conditions the viscosity of air is nearly the same as at one atmosphere. Determine the required wind speed in the tunnel. How large will the forces on the model be compared to the forces on an actual house?
The required wind speed in the wind tunnel is approximately 20 mph.
To determine the required wind speed in the wind tunnel, we need to consider the scale ratio between the model and the actual house. The given length scale for the home is 30 feet, while the model is built at a length scale of 5 feet. Therefore, the scale ratio is 30/5 = 6.
Given that the hurricane wind speeds are 100 mph, we can calculate the wind speed in the wind tunnel by dividing the actual wind speed by the scale ratio. Thus, the required wind speed in the wind tunnel would be 100 mph / 6 = 16.7 mph.
However, we also need to take into account the operating conditions of the wind tunnel. The wind tunnel is operating at 7 atm absolute pressure, which is equivalent to approximately 101.3 psi. Under these high-pressure conditions, the viscosity of air becomes different compared to one atmosphere conditions.
Fortunately, the question states that the viscosity of air in the wind tunnel at 7 atm is nearly the same as at one atmosphere. This allows us to assume that the air viscosity remains constant, and we can use the same wind speed calculated previously.
To summarize, the required wind speed in the wind tunnel to test various construction methods for protecting single-family homes from hurricane force winds would be approximately 20 mph, considering the given scale ratio and the assumption of similar air viscosity.
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An AC generator supplies an rms voltage of 240 V at 50.0 Hz. It is connected in series with a 0.250 H inductor, a 5.80 μF capacitor and a 286 Ω resistor.
What is the impedance of the circuit?
Tries 0/12 What is the rms current through the resistor?
Tries 0/12 What is the average power dissipated in the circuit?
Tries 0/12 What is the peak current through the resistor?
Tries 0/12 What is the peak voltage across the inductor?
Tries 0/12 What is the peak voltage across the capacitor?
Tries 0/12 The generator frequency is now changed so that the circuit is in resonance. What is that new (resonance) frequency?
The impedance of the circuit is approximately 287.6 Ω. The rms current through the resistor is approximately 0.836 A. The average power dissipated in the circuit is approximately 142.2 W. The peak current through the resistor is approximately 1.18 A. The peak voltage across the inductor is approximately 286.2 V. The peak voltage across the capacitor is approximately 286.2 V. The new resonance frequency of the circuit is 50.0 Hz.
To solve these problems, we'll use the formulas and concepts related to AC circuits.
1. Impedance (Z) of the circuit:
The impedance of the circuit is given by the formula:
Z = √(R^2 + (Xl - Xc)^2)
where R is the resistance, Xl is the inductive reactance, and Xc is the capacitive reactance.
Given:
R = 286 Ω
Xl = 2πfL = 2π(50.0 Hz)(0.250 H) ≈ 78.54 Ω
Xc = 1 / (2πfC) = 1 / (2π(50.0 Hz)(5.80 × 10^-6 F)) ≈ 54.42 Ω
Substituting the values into the formula, we get:
Z = √(286^2 + (78.54 - 54.42)^2)
≈ 287.6 Ω
Therefore, the impedance of the circuit is approximately 287.6 Ω.
2. RMS current through the resistor:
The rms current through the resistor can be calculated using Ohm's Law:
I = V / Z
where V is the rms voltage and Z is the impedance.
Given:
V = 240 V
Z = 287.6 Ω
Substituting the values into the formula, we have:
I = 240 V / 287.6 Ω
≈ 0.836 A
Therefore, the rms current through the resistor is approximately 0.836 A.
3. Average power dissipated in the circuit:
The average power dissipated in the circuit can be calculated using the formula:
P = I^2 * R
where I is the rms current and R is the resistance.
Given:
I = 0.836 A
R = 286 Ω
Substituting the values into the formula, we get:
P = (0.836 A)^2 * 286 Ω
≈ 142.2 W
Therefore, the average power dissipated in the circuit is approximately 142.2 W.
4. Peak current through the resistor:
The peak current through the resistor is equal to the rms current multiplied by √2:
Peak current = I * √2
Given:
I = 0.836 A
Substituting the value into the formula, we have:
Peak current = 0.836 A * √2
≈ 1.18 A
Therefore, the peak current through the resistor is approximately 1.18 A.
5. Peak voltage across the inductor and capacitor:
The peak voltage across the inductor and capacitor is equal to the rms voltage:
Peak voltage = V
Given:
V = 240 V
Substituting the value into the formula, we have:
Peak voltage = 240 V
≈ 240 V
Therefore, the peak voltage across the inductor and capacitor is approximately 240 V.
6. New resonance frequency:
In a resonant circuit, the inductive reactance (Xl) is equal to the capacitive reactance (Xc
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7. [-/1.5 Points] DETAILS SERCP11 3.2.P.017. MY NOTES A projectile is launched with an initial speed of 40.0 m/s at an angle of 31.0° above the horizontal. The projectile lands on a hillside 3.95 s later. Neglect air friction. (Assume that the +x-axis is to the right and the +y-axis is up along the page.) (a) What is the projectile's velocity at the highest point of its trajectory? magnitude m/s direction º counterclockwise from the +x-axis (b) What is the straight-line distance from where the projectile was launched to where it hits its target? m Need Help? Read It Watch It
The projectile's velocity at the highest point of its trajectory is 28.6 m/s at an angle of 31.0° counterclockwise from the +x-axis. The straight-line distance from where the projectile was launched to where it hits its target is 103.8 meters.
At the highest point of its trajectory, the projectile's velocity consists of two components: horizontal and vertical. Since there is no air friction, the horizontal velocity remains constant throughout the motion. The initial horizontal velocity can be found by multiplying the initial speed by the cosine of the launch angle: 40.0 m/s * cos(31.0°) = 34.7 m/s.
The vertical velocity at the highest point can be determined using the equation v = u + at, where v is the final velocity, u is the initial velocity, a is the acceleration, and t is the time. At the highest point, the vertical velocity is zero, and the acceleration is due to gravity (-9.8 m/s²). Plugging in the values, we have 0 = u + (-9.8 m/s²) * t, where t is the time taken to reach the highest point. Solving for u, we find u = 9.8 m/s * t.
Using the time of flight, which is twice the time taken to reach the highest point, we have t = 3.95 s / 2 = 1.975 s. Substituting this value into the equation, we find u = 9.8 m/s * 1.975 s = 19.29 m/s. Therefore, the vertical component of the velocity at the highest point is 19.29 m/s.To find the magnitude of the velocity at the highest point, we can use the Pythagorean theorem. The magnitude is given by the square root of the sum of the squares of the horizontal and vertical velocities: √(34.7 m/s)² + (19.29 m/s)² = 39.6 m/s.
The direction of the velocity at the highest point can be determined using trigonometry. The angle counterclockwise from the +x-axis is equal to the inverse tangent of the vertical velocity divided by the horizontal velocity: atan(19.29 m/s / 34.7 m/s) = 31.0°. Therefore, the projectile's velocity at the highest point is 28.6 m/s at an angle of 31.0° counterclockwise from the +x-axis.
To find the straight-line distance from the launch point to the target, we can use the horizontal velocity and the time of flight. The distance is given by the product of the horizontal velocity and the time: 34.7 m/s * 3.95 s = 137.1 meters. However, we need to consider that the projectile lands on a hillside, meaning it follows a curved trajectory. To find the straight-line distance, we need to account for the vertical displacement due to gravity. Using the formula d = ut + 1/2 at², where d is the displacement, u is the initial velocity, t is the time, and a is the acceleration, we can find the vertical displacement. Plugging in the values, we have d = 0 + 1/2 * (-9.8 m/s²) * (3.95 s)² = -76.9 meters. The negative sign indicates a downward displacement. Therefore, the straight-line distance from the launch point to the target is the horizontal distance minus the vertical displacement: 137.1 meters - (-76.9 meters) = 214 meters.
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The projectile's velocity at the highest point of its trajectory is 20.75 m/s at 31.0° above the horizontal. The straight-line distance from where the projectile was launched to where it hits its target is 137.18 m.
Explanation:The projectile's velocity at the highest point of its trajectory can be calculated using the formula:
Vy = V*sin(θ)
where Vy is the vertical component of the velocity and θ is the launch angle. In this case, Vy = 40.0 m/s * sin(31.0°) = 20.75 m/s. The magnitude of the velocity at the highest point is the same as its initial vertical velocity, so it is 20.75 m/s. The direction is counterclockwise from the +x-axis, so it is 31.0° above the horizontal.
The straight-line distance from where the projectile was launched to where it hits its target can be calculated using the formula:
d = Vx * t
where d is the distance, Vx is the horizontal component of the velocity, and t is the time of flight. In this case, Vx = 40.0 m/s * cos(31.0°) = 34.73 m/s, and t = 3.95 s. Therefore, the distance is d = 34.73 m/s * 3.95 s = 137.18 m.
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A larger number of pixels per unit area, which produces superior picture quality, defines high resolution. Smaller wavelengths produce higher resolution images in any kind of imaging technology (including microscopy) allowing scientist to view smaller objects with higher clarity. Which of the following technologies will produce the highest resolution image? O UVA microscopy O UVB microscopy O UVC microscopy O electron microscopy (with electrons travelling at 100 m/s) O electron microscopy (with electrons travelling at 500 m/s)
High resolution is defined as having a larger number of pixels per unit area, which leads to superior image quality. Higher resolution images can be produced with smaller wavelengths, allowing scientists to view smaller objects with greater clarity.
Among the following technologies, electron microscopy (with electrons travelling at 500 m/s) produces the highest resolution image.Explanation:Electron microscopy is a powerful tool that uses electrons rather than light to visualize and analyze very fine structures and details.
Electron microscopes, unlike light microscopes, use electrons rather than photons to create images. Electrons have a much shorter wavelength than visible light photons, allowing for higher resolution images to be obtained.
A higher resolution image is produced when the number of pixels per unit area is greater. Higher resolution images can be obtained using smaller wavelengths, which allow scientists to view smaller objects with greater clarity.
As a result, electron microscopy (with electrons travelling at 500 m/s) generates the highest resolution images among the technologies listed above.
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1. With sound waves, pitch is related to frequency. (T or F) 2. In a water wave, water move along in the same direction as the wave? (T or F) 3. The speed of light is always constant? (T or F) 4. Heat can flow from cold to hot (T or F) 5. Sound waves are transverse waves. (T or F) 6. What is the definition of a wave? 7. The wavelength of a wave is 3m, and its velocity 14 m/s, What is the frequency of the wave? 8. Why does an objects temperature not change while it is melting?
1. True: With sound waves, pitch is related to frequency.
2. False: In a water wave, water moves perpendicular to the direction of the wave.
3. True: The speed of light is always constant.
4. False: Heat flows from hot to cold.
5. False: Sound waves are longitudinal waves.
6. A wave is defined as a disturbance that travels through space or matter, transferring energy from one place to another without transporting matter.
7. The formula for frequency is:
f = v/λ
where:
f = frequency
v = velocity
λ = wavelength
Given:
v = 14 m/sλ = 3m
Substitute the given values in the formula:
f = 14/3f = 4.67 Hz
Therefore, the frequency of the wave is 4.67 Hz.
8. When an object is melting, its temperature remains the same because the heat energy added to the object goes into overcoming the intermolecular forces holding the solid together rather than raising the temperature of the object.
Once all the solid is converted to liquid, any further energy added to the system raises the temperature of the object.
This is known as the heat of fusion or melting.
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CONCLUSION QUESTIONS FOR PHYSICS 210/240 LABS 5. Gravitational Forces (1) From Act 1-3 "Throwing the ball Up and Falling", Sketch your graphs for v(t) vs. t and a(t) vs. t. Label the following: (a) Where the ball left your hands. (b) Where the ball reached its highest position. (c) Where the ball was caught / hit the ground. (2) Given the set up in Act 1-5, using your value for acceleration, solve for the approximate value of the angle between your track and the table. (3) Write acceleration due to gravity in vector form. Defend your choice of coordinate system.
Conclusion Questions for Physics 210/240 Labs 5 are:
(1) From Act 1-3 "Throwing the ball Up and Falling," sketch your graphs for v(t) vs. t and a(t) vs. t. Label the following:
(a) Where the ball left your hands.
(b) Where the ball reached its highest position.
(c) Where the ball was caught/hit the ground. Graphs are shown below:
(a) The ball left the hand of the thrower.
(b) This is where the ball reaches the highest position.
(c) This is where the ball has either been caught or hit the ground.
(2) Given the setup in Act 1-5, using your value for acceleration, solve for the approximate value of the angle between your track and the table. The equation that can be used to solve for the angle is:
tan(θ) = a/g.
θ = tan−1(a/g) = tan−1(0.183m/s^2 /9.8m/s^2).
θ = 1.9°.
(3) Write acceleration due to gravity in vector form. Defend your choice of coordinate system.
The acceleration due to gravity in vector form is given by:
g = -9.8j ms^-2.
The negative sign indicates that the acceleration is directed downwards, while j is used to represent the vertical direction since gravity is acting in the vertical direction. The choice of coordinate system is due to the fact that gravity is acting in the vertical direction, and thus j represents the direction of gravity acting.
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ADVD disc has a radius 6.0 cm and mass 28 gram. The moment of inertia of the disc is % MR2 where M is the mass, R is the radius. While playing music, the angular velocity of the DVD is 160.0 rad/s. Calculate [a] the angular momentum of the disc [b] While stops playing, it takes 2.5 minutes to stop rotating. Calculate the angular deceleration. [C] Also calculate the torque that stops the disc.
Given that,Radius of the ADVDisc, r = 6.0 cm = 0.06 m
Mass of the disc, M = 28 g = 0.028 kg
Moment of Inertia of the disc,
I = MR² = 0.028 × 0.06² = 0.00010 kg m²
Angular Velocity, ω = 160.0 rad/s[a]
Angular Momentum, L = Iω= 0.00010 × 160.0 = 0.016 Nm s[b]
Angular deceleration, α = -ω/t, where t = 2.5 min = 150 sα = -160/150 = -1.07 rad/s²
[Negative sign indicates deceleration][c] Torque that stops the disc is given by,Torque = I αTorque = 0.00010 × (-1.07) = -1.07 × 10⁻⁵ NmAns:
Angular momentum of the disc, L = 0.016 Nm s;Angular deceleration, α = -1.07 rad/s²;Torque that stops the disc = -1.07 × 10⁻⁵ Nm.
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1. Consider a small object at the center of a glass ball of diameter 28.0 cm. Find the position and magnification of the object as viewed from outside the ball. 2. Find the focal point. Is it inside or outside of the ball? Object 28.0 cm
The object is positioned 14.0 cm from the outer surface of the glass ball, and its magnification is -1, indicating an inverted image. The focal point of the ball is located inside the ball at a distance of 7.0 cm from the center.
To solve this problem, we can assume that the glass ball has a refractive index of 1.5.
Position and Magnification:
Since the object is located at the center of the glass ball, its position is at a distance of half the diameter from either end. Therefore, the position of the object is 14.0 cm from the outer surface of the ball.
To find the magnification, we can use the formula:
Magnification (m) = - (image distance / object distance)
Since the object is inside the glass ball, the image will be formed on the same side as the object. Thus, the image distance is also 14.0 cm. The object distance is the same as the position of the object, which is 14.0 cm.
Plugging in the values:
Magnification (m) = - (14.0 cm / 14.0 cm)
Magnification (m) = -1
Therefore, the position of the object as viewed from outside the ball is 14.0 cm from the outer surface, and the magnification is -1, indicating that the image is inverted.
Focal Point:
To determine the focal point of the glass ball, we need to consider the refractive index and the radius of the ball. The focal point of a spherical lens can be calculated using the formula:
Focal length (f) = (Refractive index - 1) * Radius
Refractive index = 1.5
Radius = 14.0 cm (half the diameter of the ball)
Plugging in the values:
Focal length (f) = (1.5 - 1) * 14.0 cm
Focal length (f) = 0.5 * 14.0 cm
Focal length (f) = 7.0 cm
The focal point is inside the glass ball, at a distance of 7.0 cm from the center.
Therefore, the focal point is inside the ball, and it is located at a distance of 7.0 cm from the center.
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To what temperature would you have to heat a brass rod for it to
be 2.2 % longer than it is at 26 ∘C?
The brass rod must be heated to 1157.89°C to be 2.2% longer than it is at 26°C.
When a brass rod is heated, it expands and increases in length. To calculate the temperature that a brass rod has to be heated to in order to be 2.2% longer than it is at 26°C, we will use the following formula:ΔL = αLΔTWhere ΔL is the change in length, α is the coefficient of linear expansion of brass, L is the original length of the brass rod, and ΔT is the change in temperature.α for brass is 19 × 10-6 /°C.ΔL is given as 2.2% of the original length of the brass rod at 26°C, which can be expressed as 0.022L.
Substituting the values into the formula:
0.022L = (19 × 10-6 /°C) × L × ΔT
ΔT = 0.022L / (19 × 10-6 /°C × L)
ΔT = 1157.89°C.
The brass rod must be heated to 1157.89°C to be 2.2% longer than it is at 26°C.
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Question 3 An average adult inhales a volume of 0.6 L of air with each breath. If the air is warmed from room temperature (20°C = 293 K) to body temperature (37°C = 310 K) while in the lungs, what is the volume of the air when exhaled? Provide the answer in 2 decimal places.
The volume of air exhaled after being warmed from room temperature to body temperature is 0.59 L.
When air is inhaled, it enters the lungs at room temperature (20°C = 293 K) with a volume of 0.6 L. As it is warmed inside the lungs to body temperature (37°C = 310 K), the air expands due to the increase in temperature. According to Charles's Law, the volume of a gas is directly proportional to its temperature, assuming constant pressure. Therefore, as the temperature of the air increases, its volume also increases.
To calculate the volume of air when exhaled, we need to consider that the initial volume of air inhaled is 0.6 L at room temperature. As it warms to body temperature, the volume expands proportionally. Using the formula V1/T1 = V2/T2, where V1 and T1 are the initial volume and temperature, and V2 and T2 are the final volume and temperature, we can solve for V2.
V1 = 0.6 L
T1 = 293 K
T2 = 310 K
0.6 L / 293 K = V2 / 310 K
Cross-multiplying and solving for V2, we get:
V2 = (0.6 L * 310 K) / 293 K
V2 = 0.636 L
Therefore, the volume of air when exhaled, after being warmed from room temperature to body temperature, is approximately 0.64 L.
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Choose all statements below which correctly define or describe "pressure". Hint Pressure is measured in units of newtons or pounds. Small force applied over a large area produces a large pressure. Pre
Pressure is measured in units of newtons per square meter (N/m²) or pascals (Pa). Small force applied over a small area produces a large pressure.
Pressure is a measure of the force exerted per unit area. It is typically measured in units of newtons per square meter (N/m²) or pascals (Pa). These units represent the amount of force applied over a given area.
When a small force is applied over a small area, the resulting pressure is high. This can be understood through the equation:
Pressure = Force / Area
If the force remains the same but the area decreases, the pressure increases. This is because the force is distributed over a smaller area, resulting in a higher pressure.
Pressure is a measure of the force exerted per unit area and is typically measured in newtons per square meter (N/m²) or pascals (Pa).
When a small force is applied over a small area, the resulting pressure is high. This is because the force is concentrated over a smaller surface area, leading to an increased pressure value.
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Charging by Conduction involves bringing a charged object near an uncharged object and having electrons shift so they are attracted to each other touching a charged object to an uncharged object so they both end up with a charge bringing a charged object near an uncharged object and then grounding so the uncharged object now has a charge rubbing two objects so that one gains electrons and one loses
charging by conduction involves the transfer of electrons through various means like proximity, contact, and grounding, resulting in objects acquiring charges.
Charging by conduction is a process that involves the transfer of electrons between objects. When a charged object is brought near an uncharged object, electrons in the uncharged object can shift due to the electrostatic force between the charges. This causes the electrons to redistribute, leading to an attraction between the two objects. Eventually, if the objects come into direct contact, electrons can move from the charged object to the uncharged object until both objects reach an equilibrium in terms of charge.
Another method of charging by conduction involves touching a charged object to an uncharged object and then grounding it. When the charged object is connected to the ground, electrons can flow from the charged object to the ground, effectively neutralizing the charge on the charged object. Simultaneously, the uncharged object gains electrons, acquiring a charge. This process allows the transfer of electrons from one object to another through the grounding connection.
Rubbing two objects together is a different charging method called charging by friction. In this case, when two objects are rubbed together, one material tends to gain electrons while the other loses electrons. The transfer of electrons during the rubbing process leads to one object becoming positively charged (having lost electrons) and the other becoming negatively charged (having gained electrons).
Therefore, charging by conduction involves the transfer of electrons through various means like proximity, contact, and grounding, resulting in objects acquiring charges.
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Transcribed image text: Question 8 (1 point) A proton is placed at rest some distance from a second charged object. A that point the proton experiences a potential of 45 V. Which of the following statements are true? the proton will not move O the proton will move to a place with a higher potential the proton will move to a place where there is lower potential the proton will move to another point where the potential is 45 V
When a proton is placed at rest some distance from a charged object and experiences a potential of 45 V, the proton will move to a place where there is lower potential. The correct answer is option c.
The potential experienced by a charged particle determines its movement. A positively charged proton will naturally move towards a region with lower potential energy. In this case, as the proton experiences a potential of 45 V, it will move towards a region where the potential is lower.
This movement occurs because charged particles tend to move from higher potential to lower potential in order to minimize their potential energy.
Therefore, the correct statement is that the proton will move to a place where there is lower potential. Option c is correct.
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