The tangential speed of the rim of the disk is 71.4 m/s. The period of rotation of the disk is approximately 7.65 x 10⁻⁵ s.
(a) The tangential speed of the rim of the disk can be calculated using the formula:
v = rω
where v is the tangential speed, r is the radius of the disk, and ω is the angular velocity.
Substituting the given values, we get:
v = (3.40 mm)(2.10 x 10⁴ rad/s) = 71.4 m/s
(b) To find the period of rotation of the disk, we can use the formula:
T = 2π/ω
where T is the period of rotation and ω is the angular velocity.
We are given that the new tangential speed of the rim of the disk is 280 m/s.
To find the new angular velocity, we can rearrange the formula for tangential speed:
v = rω
ω = v/r
Substituting the given values, we get:
ω = (280 m/s)/(3.40 mm) = 8.24 x 10⁴ rad/s
Now we can use the formula for period of rotation:
T = 2π/ω = 2π/(8.24 x 10⁴ rad/s) ≈ 7.65 x 10⁻⁵ s
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The tangential speed of the rim of the disk is 71.4 m/s. The period of rotation of the disk is approximately 7.65 x 10⁻⁵ s.
(a) The tangential speed of the rim of the disk can be calculated using the formula:
v = rω
where v is the tangential speed, r is the radius of the disk, and ω is the angular velocity.
Substituting the given values, we get:
v = (3.40 mm)(2.10 x 10⁴ rad/s) = 71.4 m/s
(b) To find the period of rotation of the disk, we can use the formula:
T = 2π/ω
where T is the period of rotation and ω is the angular velocity.
We are given that the new tangential speed of the rim of the disk is 280 m/s.
To find the new angular velocity, we can rearrange the formula for tangential speed:
v = rω
ω = v/r
Substituting the given values, we get:
ω = (280 m/s)/(3.40 mm) = 8.24 x 10⁴ rad/s
Now we can use the formula for period of rotation:
T = 2π/ω = 2π/(8.24 x 10⁴ rad/s) ≈ 7.65 x 10⁻⁵ s
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for research purposes a sonic buoy is tethered to the ocean floor and emits an infrasonic pulse of sound (speed = 1522 m/s). the period of this sound is 58 ms. determine the wavelength of the sound.
The wavelength of the sound emitted by the sonic buoy is 88.3 meters
wavelength = speed / frequency
In this case, the speed of sound in water is given as 1522 m/s, and the period (T) of the sound is 58 ms. The period is the time it takes for one complete cycle of the sound wave, and is related to the frequency (f) by the formula:
T = 1/f
Therefore, we can solve for the frequency:
f = 1/T = 1/0.058 s = 17.24 Hz
Now we can use the formula for wavelength:
wavelength = speed / frequency = 1522 m/s / 17.24 Hz = 88.3 m
So the wavelength of the sound emitted by the sonic buoy is 88.3 meters. This sound is considered infrasonic, which means it has a frequency below the range of human hearing (20 Hz).
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The wavelength of the sound emitted by the sonic buoy is 88.3 meters
wavelength = speed / frequency
In this case, the speed of sound in water is given as 1522 m/s, and the period (T) of the sound is 58 ms. The period is the time it takes for one complete cycle of the sound wave, and is related to the frequency (f) by the formula:
T = 1/f
Therefore, we can solve for the frequency:
f = 1/T = 1/0.058 s = 17.24 Hz
Now we can use the formula for wavelength:
wavelength = speed / frequency = 1522 m/s / 17.24 Hz = 88.3 m
So the wavelength of the sound emitted by the sonic buoy is 88.3 meters. This sound is considered infrasonic, which means it has a frequency below the range of human hearing (20 Hz).
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in the median plane of an electric dipole is the electric field parallel or antiparallel to the electric dipole moment.explain.........
In the median plane of an electric dipole, the electric field is neither parallel nor antiparallel to the electric dipole moment. Instead, it is perpendicular to the electric dipole moment.
What is Dipole Moment?
Dipole moment is a concept in physics that describes the magnitude and direction of the separation of electric charge in a system with a dipole, such as a molecule or an object with an uneven distribution of charge. It is a measure of the polarity or asymmetry of a charge distribution.
The electric field lines in the median plane of an electric dipole form circular loops around the dipole axis. At points on the perpendicular bisector of the dipole (i.e., in the median plane), the electric field lines are symmetrically distributed around the dipole axis, and the electric field is directed perpendicular to the dipole moment vector.
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at a distance of 5 km from a radio transmitter the amplitude of electric field strength is measured to be 0.35 v/m. what is the total power emitted by the transmitter?
The total power emitted by the transmitter is approximately 3.802 kW.
How much the total power emitted by the transmitter?The total power emitted by a radio transmitter can be calculated using the formula:
P = 4πr²⁰
where P is the total power emitted, r is the distance from the transmitter, and σ is the power density (in W/m²) at that distance.
First, we need to calculate the power density at a distance of 5 km from the transmitter. The electric field strength (E) is related to the power density (σ) by the formula:
E = sqrt(2σ/μ0)
where μ0 is the permeability of free space (4π × 10⁻⁷ H/m).
Solving for σ, we get:
σ = (E²μ⁰)/2
σ = (0.35 V/m)² × 4π × 10⁻⁷ H/m
σ = 1.221 × 10⁻⁹ W/m²
Now that we have the power density at 5 km, we can calculate the total power emitted by the transmitter:
P = 4πr²⁰
P = 4π(5 km)² × 1.221 × 10⁻⁹ W/m²
P = 3.802 kW (kilowatts)
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a force f = (-30, 50) n acts on a mass of 10 kg. at time t = 0 s, the mass has a velocity v0 = (-2, -5) m/s. what are the (x,y) components of the velocity vector (in m/s) after 4 seconds?
We'll add the initial velocity (v0 = (-2, -5) m/s) to the result: vf = v0 + a * t = (-2, -5) m/s + (-12, 20) m/s = (-14, 15) m/s So, the (x, y) components of the velocity vector after 4 seconds are (-14, 15) m/s.
To find the (x,y) components of the velocity vector after 4 seconds, we need to use the formula:
v = v0 + (f/m)t
where v is the final velocity, v0 is the initial velocity, f is the force acting on the mass, m is the mass, and t is the time elapsed.
Plugging in the given values, we have:
f = (-30, 50) N
m = 10 kg
v0 = (-2, -5) m/s
t = 4 s
To find the x-component of the velocity vector, we can use:
vx = v0x + (fx/m)t
where vx is the x-component of the velocity vector, v0x is the initial x-component of the velocity, fx is the x-component of the force, and t is the time elapsed.
Plugging in the values, we have:
vx = -2 + (-30/10) x 4
vx = -2 - 12
vx = -14 m/s
To find the y-component of the velocity vector, we can use:
vy = v0y + (fy/m)t
where vy is the y-component of the velocity vector, v0y is the initial y-component of the velocity, fy is the y-component of the force, and t is the time elapsed.
Plugging in the values, we have:
vy = -5 + (50/10) x 4
vy = -5 + 20
vy = 15 m/s
Therefore, the (x,y) components of the velocity vector (in m/s) after 4 seconds are (-14, 15).
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consider an infinite sheet of parallel wires. the sheet lies in the xy plane. a current i runs in the -y direction through each wire. there are n/a wires per unit length in the x direction.
The magnetic field is proportional to the current and inversely proportional to the number of wires per unit length in the x direction.
The magnetic field produced by an infinite sheet of parallel wires can be determined using Ampere's Law. Since the current is running in the -y direction through each wire, the magnetic field lines will circulate around each wire in the clockwise direction when viewed from above. The magnitude of the magnetic field at a point above the sheet will depend on the distance from the sheet, as well as the number of wires per unit length in the x direction.
Using Ampere's Law, the integral of the magnetic field around a closed loop will be equal to μ₀ times the current enclosed by the loop. For a rectangular loop with sides of length L and H, the magnetic field along the sides parallel to the wires will be constant and equal to μ₀ times the current per unit length (i/n) times the width of the loop (L), while the field along the sides perpendicular to the wires will be zero. Thus, the integral of the magnetic field around the loop will be 2 times the magnetic field along one of the parallel sides, or 2μ₀(i/n)L.
Setting this equal to μ₀ times the current enclosed by the loop (iLH), we can solve for the magnetic field at a point above the sheet:
B = μ₀i/2n
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An experimentalist claims to have raised the temperature of a small amount of water to 150C by transferring heat from high-pressure steam at 120C. Is this a reasonable claim? Why? Assume no refrigerator or heat pump is used in the process
When compared to its source, which is at 120 degrees Celsius, the water's temperature rises to 150 degrees Celsius. 120 ∘ C . This is an infraction of the second law of thermodynamics, which states that heat cannot be moved from a low to a high temperature without producing an outside impact, such as a heat pump.
What exactly are reservoirs of thermal energy?When a significant amount of heat is added to or removed from a thermal reservoir, also known as a thermal energy reservoir or thermal bath, the temperature of the reservoir varies only slightly.
What is thermal energy, and how can it be used?Molecules moving within an object or substance are said to be moving with thermal energy. The thermal energy of any material or item.
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Inside a nuclear power plant, energy is liberated as nuclear reactions proceed inside the core. As this happens, the mass of the nuclei
Decreases.
Stays the same.
Increases.
Inside a nuclear power plant, energy is liberated as nuclear reactions proceed inside the core. As this happens, the mass of the nuclei decreases.
This decrease in mass occurs because some of the mass is converted into energy according to Einstein's famous equation, E=mc², where E is the energy, m is the mass, and c is the speed of light. Nuclear reactions are processes in which one or more nuclides are produced from the collisions between two atomic nuclei or one atomic nucleus and a subatomic particle. The nuclides produced from nuclear reactions are different from the reacting nuclei (commonly referred to as the parent nuclei). E = mc2 is the key to understanding why and how energy is released in nuclear reactions. Two concepts are central to both nuclear fission and fusion: First, the mass of a nucleus is less than the sum of the masses the nucleons would have if they were free. This is called the mass defect.
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how many grams of lithium (atomic mass of 6.91 g/mol) are in a lithium-ion battery that produces 4.00 a·h of electricity?
There are approximately 0.0000413 grams of lithium in a lithium-ion battery that produces 4.00 a·h of electricity.
grams of lithium = (4.00 a·h) x (1 mole of electrons / 96,485 C) x (1 mole of lithium / 1 mole of electrons) x (6.91 g / 1 mole of lithium)
where:
- 4.00 a·h is the amount of electricity produced by the battery
- 96,485 C is the Faraday constant, which relates the amount of electricity to the number of electrons involved in the reaction
- 1 mole of electrons is the number of electrons that flow through the battery during the reaction
- 1 mole of lithium is the amount of lithium involved in the reaction
- 6.91 g is the atomic mass of lithium, which tells us how many grams are in one mole of the element
Plugging in the numbers, we get:
grams of lithium = (4.00 a·h) x (1 mole of electrons / 96,485 C) x (1 mole of lithium / 1 mole of electrons) x (6.91 g / 1 mole of lithium)
grams of lithium = (4.00 a·h / 96,485 C) x 6.91 g
grams of lithium = 0.0000413 g
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What is the magnitude and direction of the force exerted on a 3.50 µC charge by a 250 N/C electric field that points due east?
The magnitude of the force exerted on a 3.50 µC charge by a 250 N/C electric field that points due east can be found using the equation F = q E, where F is the force, q is the charge, and E is the electric field.
Plugging in the values, we get:
F = (3.50 × 10^-6 C) × (250 N/C)
F = 0.875 N
Therefore, the magnitude of the force is 0.875 N.
The direction of the force can be found using the right-hand rule. If you point your fingers in the direction of the electric field (due east in this case) and then curl your fingers towards the direction of the charge (which we'll assume is positive), then your thumb will point in the direction of the force. In this case, the force will be pointing upwards (perpendicular to the electric field and the charge's motion). So, the direction of the force is upwards.
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What charge is stored in a 180 µF capacitor when 120 V is applied to it?
The charge stored in the 180 µF capacitor when 120 V is applied to it is 0.0216 coulombs
The charge stored in a 180 µF capacitor when 120 V is applied to it can be calculated using the formula Q = CV, where Q is the charge stored, C is the capacitance in farads, and V is the voltage applied. Plugging in the given values, we get [tex]Q = (180 * 10^(-6) F)[/tex] x (120 V) = 21.6 µC (microcoulombs). Therefore, 21.6 µC of charge is stored in the capacitor.
To find the charge stored in a 180 µF capacitor when 120 V is applied to it, we can use the formula:
Q = C × V
Where:
Q = charge stored (in coulombs),
C = capacitance (in farads),
V = voltage applied (in volts).
Step 1: Convert the capacitance to farads:
[tex]180 µF = 180 * 10^(-6) F = 0.00018 F[/tex]
Step 2: Plug the capacitance and voltage values into the formula:
Q = 0.00018 F * 120 V
Step 3: Calculate the charge stored:
Q = 0.0216 C
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at what energy do approaching protons interact with the individual nucleons instead of the mean field of the nucleus
The energy at which approaching protons interact with the individual nucleons instead of the mean field of the nucleus is called the delta resonance excitation energy.
The pion production threshold attraction speed is nearly 140-200 MeV for light nuclei like Helium, and Hydrogen and increases up to 500 MeV. The energy at which the proton center is the collective effect of nucleons in the nucleus.
The energy is in a higher energy state which further causes the formation of delta resonance relevant in many parts of electrons. This resonance further emits a pion, leading to the interaction between protons and nucleons than the nucleus.
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Resistors of 5 ohms and 10 ohms are connected in series with a battery supplying 3 volts. What is the total resistance?
The total resistance of the 5 ohm and 10 ohm resistors connected in series is 15 ohms.
Answer:
Therefore, the total resistance of the circuit is 15 ohms and the current flowing through the circuit is 0.2 amperes.
Explanation:
When resistors are connected in series, their resistances add up to give the total resistance of the circuit. So, in this case, the total resistance of the circuit is:
Total resistance = 5 ohms + 10 ohms = 15 ohms
Now that we know the total resistance of the circuit, we can use Ohm's law to calculate the current flowing through the circuit:
Current = Voltage / Resistance
where Voltage is the voltage of the battery and Resistance is the total resistance of the circuit.
Plugging in the values, we get:
Current = 3 volts / 15 ohms = 0.2 amperes
Therefore, the total resistance of the circuit is 15 ohms and the current flowing through the circuit is 0.2 amperes.
A hollow copper wire with an inner diameter of 1.1 mm and an outer diameter of 1.8 mm carries a current of 15 A. What is the current density in the wire? Please show work. I got 3.9 *10^7 A/m^2, but I was wrong. Thanks in advance.
The current density is:9.41*10⁶ A/m²
Current density in wire is :
J= I/A
J: current density
I: Current
A: cross sectional area of wire
cross sectional area of wire= Π [{(1.8*10⁻³)/2}² - {(1.1*10⁻³)/2}]²
= 1.59*10⁻⁶ m²
hence, J= 15/1.59*10⁻⁶ = 9.41*10⁶ A/m²\
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A 2 GHz radar antenna of effective area 6.0 m2 transmits 100 kW. If a target with a 12 m2 radar cross section is 100 km away, (a) what is the round-trip travel time for the return radar pulse (b) what is the received power (c) what is the maximum detectable range if the radar system has a minimum detectable power of 2.0 pW. (1 pw = 10-12 W)
A. The round-trip travel time of the radar pulse is 6.7 x 10⁻⁴ s.
B. The received power is 1.6 x 10⁻⁵ W.
C. The maximum detectable range of the radar system is 16.2 km.
The round-trip travel time for the return radar pulse can be calculated using the formula for the speed of light, c = 3 x 10⁸ m/s, and the distance of 100 km, as t = 2 x 100 km/3 x 10⁸ m/s = 6.7 x 10⁻⁴ s.
The received power can be calculated by using the radar equation, Pr = PtxGtxAe/4πr², where Pr is the received power, Ptx is the transmitted power of 100 kW, Gtx is the antenna gain, Ae is the effective area of 6.0 m2, r is the distance of 100 km, and 4π is a constant. Substituting these values gives Pr = 1.6 x 10⁻⁵ W.
The maximum detectable range can be calculated using the minimum detectable power, Pmin, of 2.0 pW and the radar equation, as rmax = sqrt(PtxGtxAe/4πPmin). Substituting these values in the equation gives rmax = 16.2 km.
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A 14.0-foot-long, nearsighted python is stretched out perpendicular to a plane mirror, admiring its reflected image. If the greatest distance to which the snake can see clearly is 22.0 ft, how close must its head be to the mirror for it to see a clear image of its tail?
______ ft.
The python's head must be [tex]4.0 feet[/tex] away from the mirror to see a clear image of its tail. The answer is [tex]4.0 feet[/tex].
The python's head must be to the mirror to see a clear image of its tail, The concept of the virtual image formed by the mirror.
Given:
Length of the python [tex](L)= 14.0 feet[/tex]
Greatest distance to which the snake can see clearly (distance of clear vision) = [tex]22.0 feet[/tex]
Let's assume that the python's head is at a distance x feet from the mirror.
According to the concept of the virtual image formed by the mirror, the image distance is equal to the object distance:
[tex]d_{(image)} = d_{(object)}[/tex]
The calculation is as follows:
[tex]x = (22.0- 14.0) - x\\2x = 22.0 - 14.0\\x = 8.0 / 2\\x = 4.0\ feet[/tex]
So, the python's head must be [tex]4.0 feet[/tex] away from the mirror to see a clear image of its tail.
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The preexponential and activation energy for the diffusion of chromium in nickel are 1.1x10
−
4
m
2
/s and 272000 J/mol, respectively. At what temperature will the diffusion coeffcient have a value of 1.2x10
−
14
m
2
/s?
The temperature at which the diffusion coefficient has a value of 1.2x10⁻¹⁴ m²/s is 803 K.
What is temperature?Temperature is a physical property of matter that can be measured with thermometers. It is a measure of the average kinetic energy of the particles that make up a substance. Temperature is expressed in degrees Celsius, Fahrenheit, or Kelvin.
The diffusion coefficient can be calculated using the Arrhenius equation:
D = [tex]A\times e ^ {(-Ea/RT)[/tex]
where D is the diffusion coefficient, A is the preexponential factor, Ea is the activation energy, R is the gas constant, and T is the temperature.
In this case, A = 1.1x10⁻⁴ m²/s and Ea = 272000 J/mol. We can rearrange the equation to solve for T:
T = (−Ea/R)⋅ln(D/A)
Plugging in the given values, we get:
T = (−272000 J/mol/8.314 J/mol/K)⋅ln(1.2x10⁻¹⁴ m²/s/1.1x10⁻⁴ m²/s)
T ≈ 803 K
Therefore, the temperature at which the diffusion coefficient has a value of 1.2x10⁻¹⁴ m²/s is 803 K.
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The temperature at which the diffusion coefficient has a value of 1.2x10⁻¹⁴ m²/s is 803 K.
What is temperature?Temperature is a physical property of matter that can be measured with thermometers. It is a measure of the average kinetic energy of the particles that make up a substance. Temperature is expressed in degrees Celsius, Fahrenheit, or Kelvin.
The diffusion coefficient can be calculated using the Arrhenius equation:
D = [tex]A\times e ^ {(-Ea/RT)[/tex]
where D is the diffusion coefficient, A is the preexponential factor, Ea is the activation energy, R is the gas constant, and T is the temperature.
In this case, A = 1.1x10⁻⁴ m²/s and Ea = 272000 J/mol. We can rearrange the equation to solve for T:
T = (−Ea/R)⋅ln(D/A)
Plugging in the given values, we get:
T = (−272000 J/mol/8.314 J/mol/K)⋅ln(1.2x10⁻¹⁴ m²/s/1.1x10⁻⁴ m²/s)
T ≈ 803 K
Therefore, the temperature at which the diffusion coefficient has a value of 1.2x10⁻¹⁴ m²/s is 803 K.
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What is the acceleration on a 2kg object that had 400J of work done on it over 50m?
Answer: the acceleration of the object is 4 m/s^2.
Explanation: To determine the acceleration of the object, we can use the work-energy principle, which states that the work done on an object is equal to its change in kinetic energy. The equation for the work-energy principle is:
W = ΔKE = (1/2)mv^2 - (1/2)mu^2
where W is the work done, ΔKE is the change in kinetic energy, m is the mass of the object, v is the final velocity of the object, and u is the initial velocity of the object (which we assume to be zero).
We can rearrange this equation to solve for the final velocity v:
v^2 = (2W/m) + u^2
Since the initial velocity is zero, this simplifies to:
v^2 = 2W/m
Now, we can use the equation for average acceleration:
a = (v - u) / t
where t is the time taken to travel the distance of 50m. Assuming that the object starts from rest, u = 0, and the equation simplifies to:
a = v / t
Substituting the expression for v, we get:
a = sqrt(2W/m) / t
Plugging in the given values of W = 400 J, m = 2 kg, and t = 50 m / v (since t = d/v), we get:
a = sqrt(2*400 J / 2 kg) / (50 m / v)
a = sqrt(400 m^2/s^2) / (50 m / v)
a = 4 m/s^2
Therefore, the acceleration of the object is 4 m/s^2.
Share Prompt
displays a 12.0 V battery and 3 uncharged capacitors of capacitances C1 = 4 mu F, C2 = 6 mu F, and C3 = 3 mu F. The switch is thrown to the left side until capacitor 1 is fully charged. Then the switch is thrown to the right. What is the final charge on (a) capacitor 1, (b) capacitor 2, and (c) capacitor 3?
(a) The final charge on capacitor 1 is 48 microcoulombs.
(b) The final charge on capacitor 2 is 36 microcoulombs.
(c) The final charge on capacitor 3 is 24 microcoulombs.
When the switch is thrown to the left side, capacitor 1 charges to 12 volts. Then, when the switch is thrown to the right, capacitors 1 and 2 are in parallel with each other and in series with capacitor 3. The total capacitance in the circuit is 2.4 microfarads. Using the equation [tex]Q = CV,[/tex]where Q is the charge, C is the capacitance, and V is the voltage, the final charge on capacitor 1 is [tex](4/2.4) x 12 = 48[/tex] microcoulombs, on capacitor 2 is [tex](6/2.4) x 12 = 36[/tex] microcoulombs, and on capacitor 3 is[tex](3/2.4) x 12 = 24[/tex] microcoulombs.
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although many blind individuals have difficulty maintaining circadian rhythms, some are able to do so through ___
Although many blind individuals have difficulty maintaining circadian rhythms, some are able to do so through non-visual photoreception. This involves specialized cells in the retina called intrinsically photosensitive retinal ganglion cells (ipRGCs), which can detect light and help regulate the body's internal clock.
Although many blind individuals have difficulty maintaining circadian rhythms, some are able to do so through the use of light therapy. This involves using bright lights in the morning and evening to help regulate sleep-wake cycles and improve overall sleep quality.
Additionally, some blind individuals may also use social cues and routine to help maintain a consistent sleep schedule.
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a 2.0 kg-ball moving at 3.0 m/s perpendicular to a wall rebounds from the wall at 2.5 m/s. the change in the momentum of the ball is
The change in momentum of the ball after it rebounds from the wall at 2.5 m/s is -1.0 kg.m/s.
The change in the momentum of the ball can be calculated using the formula:
change in momentum = final momentum - initial momentum
To find the initial momentum, we multiply the mass of the ball (2.0 kg) by its initial velocity (3.0 m/s):
initial momentum = 2.0 kg × 3.0 m/s = 6.0 kg*m/s
To find the final momentum, we multiply the mass of the ball (2.0 kg) by its final velocity (2.5 m/s):
final momentum = 2.0 kg × 2.5 m/s = 5.0 kg*m/s
Therefore, the change in momentum of the ball is:
change in momentum = final momentum - initial momentum
change in momentum = 5.0 kg*m/s - 6.0 kg*m/s
change in momentum = -1.0 kg*m/s
The negative sign indicates that the momentum of the ball decreased during the collision with the wall.
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a 10cm×10cm square is bent at a 90∘ angle. a uniform 4.90×10−2 t magnetic field points downward at a 45∘ angle.
What is the magnetic flux through the loop?
Magnetic flux through the loop is approximately 3.46 x [tex]10^{-5}[/tex] Weber (Wb).
What is Magnetic Flux?
Magnetic flux is a measure of the amount of magnetic field passing through a given area. It is defined as the total magnetic field passing through a surface area perpendicular to the magnetic field lines.
The magnetic flux through the loop can be calculated using the formula for magnetic flux:
Φ = B * A * cos(θ)
where:
Φ = magnetic flux (in Weber, Wb)
B = magnetic field strength (in Tesla, T)
A = area of the loop (in square meters, [tex]m^{2}[/tex])
θ = angle between the magnetic field and the normal to the loop (in radians)
Given:
B = 4.90 x [tex]10^{-2}[/tex]) T (magnetic field strength)
A = 10 cm x 10 cm = 0.1 m x 0.1 m = 0.01 [tex]m^{2}[/tex] (area of the loop)
θ = 45 degrees = 45 * (π/180) radians (angle between the magnetic field and the normal to the loop)
Plugging in these values into the formula:
Φ = (4.90 x [tex]10^{-2}[/tex]T) * (0.01 [tex]m^{2}[/tex]) * cos(45 * (π/180))
Using a calculator to calculate cos(45 * (π/180)), we get:
Φ = (4.90 x [tex]10^{-2}[/tex]T) * (0.01 [tex]m^{2}[/tex]) * 0.7071
Finally, multiplying the numbers, we get:
Φ ≈ 3.46 x [tex]10^{-5}[/tex]Wb
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what is the water pressure as it exits into the air? express your answer with the appropriate units.
Water pressure varies, but is typically measured in psi or kPa and ranges from a few to several hundred.
The water tension as it exits out of sight relies upon a few variables, including the level of the water source and the size of the opening. The strain can be determined utilizing the Bernoulli condition, which expresses that the tension of a liquid declines as its speed increments.
Expecting a water source at ground level and dismissing any frictional misfortunes, the tension can be approximated as
[tex]P = 0.5rhov^2,[/tex]
where P is the strain in Dad, rho is the thickness of water (1000 [tex]kg/m^3[/tex]), and v is the speed in m/s. For instance, on the off chance that the water is leaving at a speed of 10 m/s, the tension can be determined as P = 0.51000([tex]10^2[/tex]) = 50,000 Dad, or roughly 7.25 psi. Notwithstanding, the genuine strain can fluctuate generally contingent upon the particular conditions.
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The complete question is:
Part A Water flows from the pipe shown in the figure with a speed of 8.0 m/s . (Fiaure 1) What is the water pressure as it exits into the air? Express your answer to two significant figures and include the appropriate units. HA Value Units p= 1 Value Units.
A vertical column load, P = 600 kN, is applied to a rigid concrete foundation with dimensions B = 1 m and L = 2 m. The foundation rests at a depth Df = 0.75 m on a uniform dense sand with the following properties: average modulus of elasticity, Es = 20,600 kN/m2, and Poisson’s ratio, μs = 0.3. Estimate the elastic settlement due to the net applied pressure, Δσ, on the foundation. Given: H = 5 m.
The estimated elastic settlement due to the net applied pressure of 600 kN on the foundation is 1.86 mm.
To estimate the elastic settlement due to the net applied pressure, Δσ, on the foundation, we can use the following equation:
Δs = (Δσ / Es) * ((1 - μs) / (1 + μs)) * (B / (2 * (Df + H)))
Where Δs is the elastic settlement, Δσ is the net applied pressure, Es is the average modulus of elasticity of the sand, μs is the Poisson's ratio of the sand, B is the width of the foundation, Df is the depth of the foundation, and H is the height of the sand layer.
Substituting the given values, we get:
Δs = (600 / 20600) * ((1 - 0.3) / (1 + 0.3)) * (1 / (2 * (0.75 + 5))) = 0.00186 m or 1.86 mm
Therefore, the estimated elastic settlement due to the net applied pressure of 600 kN on the foundation is 1.86 mm.
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according to faraday’s law and lenz’s law, what should happen to the current in a coil of wire when the north pole of a bar magnet is moved toward it?
The current in the coil of wire should be induced, flowing in a direction that opposes the motion of the magnet.
According to Faraday's Law, when a magnetic field is changed, an electromotive force (EMF) is induced in a nearby conductor. Lenz's Law states that the direction of the induced current creates a magnetic field that opposes the change in magnetic flux that induced it. Therefore, as the north pole of the magnet approaches the coil, a magnetic flux is created and the induced current flows in a direction that produces a magnetic field in the opposite direction. This opposes the motion of the magnet, slowing it down. When the magnet is moved away, the opposite happens and the induced current flows in the opposite direction.
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11. let ∼ be an equivalence relation on a. prove that if a ∼b, then [a] = [b].
If a ∼ b, then [a] = [b] by the definition of equivalence relation.
An equivalence relation is a relation that satisfies three properties: reflexivity, symmetry, and transitivity. If a ∼ b, then by the reflexivity property, a is related to itself, which implies that a is in the equivalence class [a].
Similarly, by the symmetry property, if a is related to b, then b is related to a, which implies that b is also in the equivalence class [a]. Therefore, [a] contains both a and b.
Now, using the transitivity property, since a is related to b and b is related to a, it follows that a is related to a, which implies that a is in the equivalence class [b]. Therefore, [a] = [b].
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a 3.77 uf capacitor is connected to a 240v ac source with a frequency of 447 hz. What is the rms current in the capacitor?
A 3.77 [tex]\mu f[/tex] capacitor is connected to a 240v ac source with a frequency of 447 hz. The rms current in the capacitor is 0.224 A.
Plugging in the given values, we have:
Xc = 1 / (2π * 447 Hz * 3.77 μF) = 758.1 Ω
Now, we need to calculate the root-mean-square voltage of the AC source, which is given by:
Vrms = Vpeak / √2
where Vpeak is the peak voltage of the AC source, which is given by:
Vpeak = 240 V
So, we have:
Vrms = 240 V / √2 = 169.7 V
Finally, we can calculate the rms current in the capacitor using the formula:
Irms = Vrms / Xc = 169.7 V / 758.1 Ω = 0.224 A (rounded to three significant figures)
Frequency refers to the number of times that a particular event occurs within a given time frame. It can be used to describe a wide range of phenomena, from the number of times a particular word appears in a text to the number of waves that pass a particular point in a second. In physics, frequency is often used to describe the rate at which a wave oscillates, which is measured in Hertz (Hz). This is important in fields such as acoustics and optics, where the frequency of a wave determines its pitch or color, respectively.
Frequency is also an important concept in statistics, where it is used to describe the distribution of values within a dataset. The frequency of a particular value refers to the number of times that value occurs within the dataset. This information can be used to create frequency distributions, which provide a visual representation of how often different values appear within a dataset.
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Solenoids and Toroids If a current is 2.0 A, how many turns per centimeter must be wound on a solenoid in order to produce a magnetic field of within it?
318 turns per centimeter must be wound on a solenoid in order to produce a magnetic field of within it If a current is 2.0 A.
To determine the number of turns per centimeter needed to produce a magnetic field within a solenoid with a current of 2.0 A, we need to know the desired strength of the magnetic field. Additionally, it's important to note that solenoids are cylindrical coils of wire that produce a magnetic field when a current passes through them. Toroids, on the other hand, are donut-shaped coils of wire that also produce a magnetic field.
Assuming we want a magnetic field strength of 1 tesla within the solenoid, we can use the equation
B = μ[tex]_0[/tex] × n × I
where B is the magnetic field strength, μ[tex]_0[/tex] is the permeability of free space (4π x [tex]10^-^7[/tex]Tm/A), n is the number of turns per unit length, and I is the current.
Rearranging this equation to solve for n, we get n = B / (μ[tex]_0[/tex] × I).
Plugging in the values given, we get
n = (1 T) / (4π x [tex]10^-^7[/tex] Tm/A × 2.0 A) = 3.18 x [tex]10^6[/tex] turns/meter.
To convert this to turns per centimeter, we divide by 100, which gives us 3.18 x [tex]10^4[/tex] turns/cm.
Therefore, to produce a magnetic field of 1 tesla within a solenoid with a current of 2.0 A, we need to wind approximately 31,800 turns per meter, or 318 turns per centimeter.
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a generator produces 290 kw of electric power at 7.2 kv. the current is transmitted to a remote village through wires with a total resistance of 15 ω..
A)
What is the power loss due to resistance in the wires?
Express your answer with the appropriate units.
B)
What is the power loss if the voltage is increased to 30 kV?
Express your answer with the appropriate units.
The power loss due to resistance in the wires is 24,440.72 watts and the power loss when the voltage is increased to 30 kV is 1,398.15 watts.
A) The power loss due to resistance in the wires can be calculated using the formula P = I^2 * R, where P is the power loss, I is current, and R is the resistance. First, we need to find the current in the wires, which can be calculated using the formula I = P/V, where V is the voltage.
Thus, I = 290,000 W / 7,200 V = 40.28 A.
Substituting this value and the resistance of 15 Ω into the formula for power loss, we get
P = (40.28 A)^2 * 15 Ω = 24,440.72 W.
Therefore, the power loss due to resistance in the wires is 24,440.72 watts.
B) If the voltage is increased to 30 kV, the current in the wires will decrease due to the reduced resistance. To calculate the new power loss, we first need to find the new current generated, using the formula I = P/V.
Substituting the given power and new voltage into this formula, we get I = 290,000 W / 30,000 V = 9.67 A.
Using this value and the total resistance of 15 Ω, we can calculate the new power loss using the formula P = I^2 * R, which gives P = (9.67 A)^2 * 15 Ω = 1,398.15 W.
Therefore, the power loss due to resistance in the wires when the voltage is increased to 30 kV is 1,398.15 watts. This shows that increasing the voltage can significantly reduce the power loss in the wires.
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Given a starting guess of xo = 0.4, what is the next step in approximating a minimum of f(1) = cos(z) using Newton's method for optimization?
The next step in approximating a minimum of f(z) using Newton's method for optimization is to calculate the derivative of the function at the starting point, which is xo = 0.4.
This derivative is given by f'(xo) = -sin(xo). The next step is to use this derivative to calculate the next guess, which is given by x1 = xo - [f(xo)/f'(xo)]. In this case, x1 = 0.4 - [cos(0.4)/-sin(0.4)]. This new guess will be used to calculate the next derivative, and this process will be repeated until the value of the derivative is close to zero, which indicates a minimum of the function.
Newton's method for optimization is a powerful tool that can be used to quickly and accurately approximate a minimum of a function given a starting point.
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a soccer ball with mass 0.440 kg is initially moving with speed 2.30 m/s. a soccer player kicks the ball, exerting a constant force of magnitude 43.0 n in the same direction as the ball's motion.Over what distance must her foot be in contact with the ball to increase the ball's speed to 6.00m/s ?
The distance required for the foot to be in contact with the ball in order to increase its speed from 2.30 m/s to 6.00 m/s is 2.42 meters.
How to find distance required for the foot to be in contact with the ball?We can use the equation for work done by a constant force, which is given by:
W = Fd cos(θ )
where W is the work done, F is the force applied, d is the distance over which the force is applied, and θ is the angle between the force and the displacement.
In this case, the force is applied in the same direction as the displacement, so θ = 0. Therefore, we can simplify the equation to:
W = Fd
We can also use the work-energy theorem, which states that the work done on an object is equal to the change in its kinetic energy:
W = (1/2)mv2 - (1/2)mv1
where m is the mass of the object, v1 is its initial velocity, and v2 is its final velocity.
Combining these equations, we have:
Fd = (1/2)mv2 - (1/2)mv1
Solving for d, we get:
d = (1/2F)mv2 - (1/2F)mv1
Plugging in the given values, we get:
d = (1/2 x 43.0 N) x 0.440 kg x (6.00 m/s - 2.30 m/s)
d = 2.42 m
Therefore, the foot must be in contact with the ball over a distance of 2.42 meters to increase the ball's speed to 6.00 m/s.
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