The distance on the screen from the center of the central maximum to the first minimum is approximately 1.22 mm, and the distance from the center of the central maximum to the point where the intensity has fallen to Io/2 is approximately 0.61 mm.
The distance between the two slits is d=0.260 mm, and the distance from the slits to the screen is L=0.800 m. The wavelength of the light is λ=610 nm. We can use the small angle approximation sinθ≈tanθ≈θ (in radians) for small angles.
The distance on the screen from the center of the central maximum to the first minimum can be found using the formula:
dsinθ = mλ
where m=1 is the order of the first minimum. At the first minimum, the path difference between the light waves from the two slits is half a wavelength, so they interfere destructively. Thus, the intensity at the first minimum is zero.
For the central maximum, θ=0, so we have:
d*sin0 = 0
Therefore, the center of the central maximum is at the center of the screen.
For the first minimum, we have:
d*sinθ = λ
Solving for θ, we get:
θ = arcsin(λ/d)
Substituting the given values, we get:
θ = arcsin(0.610×10^-6 m / 0.260×10^-3 m) ≈ 0.024 radians
The distance on the screen from the center of the central maximum to the first minimum can be found using:
y = L*tanθ
Substituting the given values, we get:
y ≈ 1.22 mm
Thus, the distance on the screen from the center of the central maximum to the first minimum is approximately 1.22 mm.
The distance on the screen from the center of the central maximum to the point where the intensity has fallen to Io/2 can be found using the formula:
d*sinθ = (m+1/2)*λ
where m is an integer. For the point where the intensity has fallen to Io/2, m=0, so we have:
d*sinθ = λ/2
Solving for θ, we get:
θ = arcsin(λ/2d)
Substituting the given values, we get:
θ = arcsin(0.610×10^-6 m / 2×0.260×10^-3 m) ≈ 0.012 radians
The distance on the screen from the center of the central maximum to this point can be found using:
y = L*tanθ
Substituting the given values, we get:
y ≈ 0.61 mm
Thus, the distance on the screen from the center of the central maximum to the point where the intensity has fallen to Io/2 is approximately 0.61 mm.
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a point on the rim of a flywheel with radius 1.50 ft has a linear velocity of 30.0 ft/s. find the time for it to complete 4 p rad.
The flywheel's tip rotates through four revolutions in around 0.628 seconds.
How fast is a point on the rim of a flywheel with a diameter of 1 m moving?If a flywheel has a 1 m diameter and rotates at 1200 rpm, the acceleration at that point is. 8π2 m/s2
The time needed for a specific number of rotations of the flywheel can be calculated using the method for converting linear velocity to angular velocity:
ω = v / r
where r is the flywheel's radius in feet, is the angular velocity expressed in radians per second, and v is the linear velocity expressed in feet per second.
In this instance, v = 30.0 ft/s and r = 1.50 ft, respectively, so
The formula is = v / r = 30.0 ft/s / 1.50 ft = 20.0 rad/s.
Using the formula, we can calculate how long it takes the flywheel to complete 4 radians.
θ = ω t
When the angle is expressed in radians, the angular speed is expressed in radians per second, and the duration is expressed in seconds.
Here, we wish to determine t when = 4, so
4π = 20.0 rad/s * t
As we solve for t, we obtain
t = (4 rad) / (20.0 rad/s) = 0.628 seconds
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find the inertia dyadic about the mass center for the thin plate in fig- ure 4.50. a square void is centered at the center of the plate. the thin plate has a density of rho = 50kg/m
The inertia dyadic is (50 * a^2 * t/12) * [1 0 0; 0 1 0; 0 0 2].
The inertia dyadic about the mass center for the thin plate with a square void centered at the center of the plate can be calculated using the formula
I = ∫(r^2 * dm),
where r is the distance from the axis of rotation to the mass element dm.
Since the plate is thin, we can assume that it has a constant thickness and therefore, its mass can be expressed as
M = ρ * A * t,
where ρ is the density, A is the area of the plate, and t is the thickness of the plate.
The mass center of the plate is located at the geometrical center of the plate, which is also the center of the square void. Therefore, the distance from the mass center to any point on the plate is half the length of the diagonal of the square void, which is
d = √2 * a/2, where a is the side length of the square void.
Using these values, the inertia dyadic about the mass center can be expressed as
I = (M/12) * [a^2 + (d^2/2)] * [1 0 0; 0 1 0; 0 0 2],
where [1 0 0; 0 1 0; 0 0 2] is the inertia tensor for a thin plate with a uniform density, and the factor of 1/12 is due to the parallel axis theorem.
Substituting the given values, we get I = (50 * a^2 * t/12) * [1 0 0; 0 1 0; 0 0 2], where a is the side length of the square void and t is the thickness of the plate.
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Roughly how high could a 370 K copper ball lift itself if it could transform all of its thermal energy into work? Assume specific heat for copper equal to 386 J/kg·K.
SOLUTION HAS TO BE IN ONE OF THESE UNITS: K, m, J, s, or kg.
Roughly the copper ball could lift itself to a maximum height of 14,525 meters if it could transform all of its thermal energy into work.
Roughly how high could a 370 K copper ball lift itself if it could transform all of its thermal energy into work?The maximum height that a 370 K copper ball could lift itself if it could transform all of its thermal energy into work can be calculated using the following steps:
Calculate the thermal energy of the copper ball:
The thermal energy of the copper ball can be calculated using the formula:
E = m * c * ΔT
where E is the thermal energy in Joules (J), m is the mass of the copper ball in kilograms (kg), c is the specific heat of copper in J/kg·K, and ΔT is the change in temperature in Kelvin (K).
Given:
Temperature, T = 370 K
Mass, m = assume 1 kg
Specific heat, c = 386 J/kg·K
Using the above values in the formula, we get:
E = 1 kg * 386 J/kg·K * (370 K - 0 K) = 370 * 386 J
E = 142,420 J
Calculate the maximum height the copper ball could lift itself:
The maximum height that the copper ball could lift itself is given by the formula:
h = E / m * g
where h is the maximum height in meters (m), E is the thermal energy in Joules (J), m is the mass of the copper ball in kilograms (kg), and g is the acceleration due to gravity, which is approximately 9.8 m/s².
Using the value of E calculated above and the given mass of 1 kg, we get:
h = 142,420 J / 1 kg * 9.8 m/s² = 14,524.5 meters
Therefore, roughly the copper ball could lift itself to a maximum height of 14,525 meters if it could transform all of its thermal energy into work.
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two-thirds of the weight of a 1500 kg car rests on the drive wheels. what is the maximum acceleration of this car on a concrete surface?
the maximum acceleration of this car on a concrete surface is 6.87 m/s^2.
To find the maximum acceleration of the car on a concrete surface, first determine the force acting on the drive wheels. Two-thirds of the car's weight (1500 kg) is on the drive wheels:
(2/3) * 1500 kg = 1000 kg
Next, find the normal force acting on the drive wheels, which is equal to the weight of the 1000 kg mass:
Normal force = mass × gravity
Normal force = 1000 kg × 9.81 m/s² (gravity)
Normal force = 9810 N
Now, we need to find the frictional force, which determines the maximum acceleration. The frictional force is given by:
Frictional force = coefficient of friction × normal force
For concrete surfaces, the coefficient of friction is approximately 0.7 (assuming dry conditions). Therefore, the frictional force is:
Frictional force = 0.7 × 9810 N
Frictional force = 6867 N
Finally, calculate the maximum acceleration using Newton's second law of motion:
Force = mass × acceleration
6867 N = 1000 kg × acceleration
Acceleration = 6867 N / 1000 kg
Acceleration ≈ 6.87 m/s²
The maximum acceleration of the car on a concrete surface is approximately 6.87 m/s².
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How much energy is required to change a 39 g ice cube from ice at -12 °C to steam at 112 °C? The specific heat of ice is 2090 J/kg °C, the specific heat of wa- ter is 4186 J/kg °C, the specific heat of stream is 2010 J/kg. C, the heat of fusion is 3.33 x 105 J/kg, and the heat of vaporiza- tion is 2.26 x 106 J/kg. Answer in units of J.
The amount of energy required to change a 39 g ice cube from ice at -12°C to steam at 112°C is 1.032 x 108 J.
Given
The specific heat of ice is 2090 J/kg °C
The specific heat of water is 4186 J/kg °C
The specific heat of stream is 2010 J/kg C
The heat of fusion is 3.33 x 105 J/kg
The heat of vaporiza- tion is 2.26 x 106 J/kg
To Find
ice cube=39g
temperature= -12 °C to at 112 °C
Solution
To solve this problem, we need to break down the process into different steps and calculate the amount of energy required for each step.
Step 1: Heating the ice from -12°C to 0°C
Energy required = mass of ice x specific heat of ice x change in temperature
Energy required = 39 g x 2090 J/kg °C x (0°C - (-12°C))
Energy required = 980,280 J
Step 2: Melting the ice at 0°C to water at 0°C
Energy required equals mass of ice multiplied by heat of fusion
Energy required = 39 g x 3.33 x 105 J/kg
Energy required = 1.299 x 107 J
Step 3: Heating the water from 0°C to 100°C
Energy required = mass of water x specific heat of water x temperature change
Energy required = 39 g x 4186 J/kg °C x (100°C - 0°C)
Energy required = 1.629 x 106 J
Step 4: Boiling the water at 100°C to steam at 100°C
Energy required = mass of water x heat of vaporization
Energy required = 39 g x 2.26 x 106 J/kg
Energy required = 8.814 x 107 J
Step 5: Heating the steam from 100°C to 112°C
Energy required = mass of steam x specific heat of steam x change in temperature
Energy required = 39 g x 2010 J/kg °C x (112°C - 100°C)
Energy required = 9.354 x 105 J
Total energy required = Energy for Step 1 + Energy for Step 2 + Energy for Step 3 + Energy for Step 4 + Energy for Step 5
Total energy required = 980,280 J + 1.299 x 107 J + 1.629 x 106 J + 8.814 x 107 J + 9.354 x 105 J
Total energy required = 1.032 x 108 J
Therefore, the amount of energy required to change a 39 g ice cube from ice at -12°C to steam at 112°C is 1.032 x 108 J.
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suppose a moving object has a kinetic energy of 1/2mv^2=100j . What will be the object’s kinetic energy if...
(a) its speed is doubled?
(b) its mass is doubled?
(a) If the speed of the moving object is doubled, its kinetic energy will become four times greater.
(b) If the mass of the moving object is doubled, its kinetic energy will also become twice as much.
a) This is because kinetic energy is directly proportional to the square of the velocity, as shown in the equation KE = 1/2mv². Therefore, doubling the speed will result in a kinetic energy of 400 J.
b) This is because kinetic energy is directly proportional to the mass, as shown in the equation KE = 1/2mv². Therefore, doubling the mass will result in a kinetic energy of 200 J.
Kinetic energy is the energy that an object possesses due to its motion. It is calculated using the formula KE = 1/2mv², where m is the mass of the object and v is its velocity. This formula shows that kinetic energy is directly proportional to the mass and the square of the velocity of the object.
This means that any change in mass or velocity will have a direct effect on the object's kinetic energy. When the speed is doubled, the kinetic energy becomes four times greater because velocity is squared in the formula.
When the mass is doubled, the kinetic energy becomes twice as much because mass is directly proportional to kinetic energy.
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an aircraft passes directly over you with a speed of 900 km/h at an altitude of 10 000 m. what is the angular velocity of the aircraft (relative to you) when directly overhead? three minutes later?
Okay, let's break this down step-by-step:
1) Aircraft speed = 900 km/h = 250 m/s
2) Altitude = 10,000 m
3) When directly overhead:
- Angular velocity = (Velocity) / (Distance) = (250 m/s) / (10,000 m altitude) = 0.025 rad/s
4) 3 minutes later:
- Aircraft will have moved 10,000 * (3/60) = 500 m away from your position
- New distance from you = 10,500 m
- New angular velocity = (250 m/s) / (10,500 m) = 0.024 rad/s
So in summary:
- When directly overhead: Angular velocity = 0.025 rad/s
- 3 minutes later: Angular velocity = 0.024 rad/s
Let me know if you have any other questions!
Okay, let's break this down step-by-step:
1) Aircraft speed = 900 km/h = 250 m/s
2) Altitude = 10,000 m
3) When directly overhead:
- Angular velocity = (Velocity) / (Distance) = (250 m/s) / (10,000 m altitude) = 0.025 rad/s
4) 3 minutes later:
- Aircraft will have moved 10,000 * (3/60) = 500 m away from your position
- New distance from you = 10,500 m
- New angular velocity = (250 m/s) / (10,500 m) = 0.024 rad/s
So in summary:
- When directly overhead: Angular velocity = 0.025 rad/s
- 3 minutes later: Angular velocity = 0.024 rad/s
Let me know if you have any other questions!
For a cylinder with a surface area of 100, what is the maximum volume that it can have? Round your answer to the nearest 4 decimal places. Recall that the volume of a cylinder is πr2h and the surface area is 2πrh+2πr2 where r is the radius and h is the height.
volume=______
Maximum volume of the cylinder = 44.4135 cubic units
To find the maximum volume for a cylinder with a surface area of 100, we can use the formulas given and some calculus to optimize the volume. First, let's solve the surface area formula for h:
Surface area = 2πrh + 2πr^2 = 100
h = (100 - 2πr^2) / (2πr)
Now, substitute this expression for h in the volume formula:
Volume = πr^2((100 - 2πr^2) / (2πr))
Now, we can find the maximum volume by taking the derivative of the volume formula with respect to r and setting it to zero:
d(Volume)/dr = 0
Solving this optimization problem, we find the optimal radius, r ≈ 1.9196. Now, plug this value back into the formula for h:
h ≈ (100 - 2π(1.9196)^2) / (2π(1.9196)) ≈ 3.8393
Finally, use these values for r and h to find the maximum volume:
Volume ≈ π(1.9196)^2(3.8393) ≈ 44.4135
So, the maximum volume of the cylinder with a surface area of 100 is approximately 44.4135 cubic units (rounded to four decimal places).
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an aluminum wing on a passenger jet is 31 m long when temperature is 29°C. At what temperature would the wing be 4cm (.04m) shorter?
Answer:
T = 43,451.16°c
Explanation:
decrease in length = alpha ×original length × change in temperature
31m - 0.04m = 30.96m
30.96m = 2.3 ×10^-5 k^-1 × 31m × ( T - 302k), T temperature final
30.96m = 7.13 ×10^-4 × ( T - 302k)
T - 302k = 30.96m / 7.13 ×10^ -4 m/k
T - 302k = 43,422.16k
T = 43,724.16 k
T = 43,451.16°c
Gear A rotates with an angular velocity of 120 rpm clockwise.Knowing that the angular velocity of arm AB is 90 rpm clockwise, what is the corresponding angular velocity of gear B?
we can use the fact that the angular velocity of two gears in contact is the same. Since Gear A rotates at an angular velocity of 120 rpm clockwise and is in contact with Gear B, . Now, we need to determine the relationship between Gear B and arm AB. The key is to understand that the angular velocity of the arm and the gear are related by the distance between the pivot point of the arm and the point where Gear B is connected.
In this case, we don't have the exact distance between the pivot point and Gear B, but we do know that the angular velocity of the arm is 90 rpm clockwise. This means that if the arm rotates at a constant speed, any point on the arm will also rotate at a constant speed. So, we can say that the point where Gear B is connected to the arm is rotating at an angular velocity of 90 rpm clockwise.
Now, we know that Gear B is in contact with Gear A, and the angular velocity of the two gears must be the same. Therefore, the angular velocity of Gear B must also be 120 rpm clockwise.
So, the corresponding angular velocity of Gear B is also 120 rpm clockwise.
To determine the angular velocity of Gear B, we first need to find the angular velocity of the arm AB relative to Gear A. Since both Gear A and Arm AB are rotating clockwise, we can simply subtract their angular velocities to find the relative angular velocity.
Step 1: Find the relative angular velocity of Arm AB with respect to Gear A.
Relative angular velocity of Arm AB = Angular velocity of Arm AB - Angular velocity of Gear A
= 90 rpm - 120 rpm
= -30 rpm
The negative sign indicates that Arm AB is rotating counterclockwise relative to Gear A.
Step 2: Calculate the angular velocity of Gear B.
Since Gear B is connected to Arm AB, it will rotate with the same relative angular velocity as Arm AB with respect to Gear A. Thus, the angular velocity of Gear B is the sum of the angular velocities of Gear A and Arm AB relative to Gear A.
Angular velocity of Gear B = Angular velocity of Gear A + Relative angular velocity of Arm AB
= 120 rpm + (-30 rpm)
= 90 rpm (clockwise)
Therefore, the angular velocity of Gear B is 90 rpm in the clockwise direction.
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II. Understanding Concepts
Skill: Making and Using Tables
Directions: Complete the following table by placing the correct terms in the numbered spaces.
Electromagnetic radiation
X rays
2.
3.
4.
infrared waves
1.
Unit
television satellites
TV video and audio signals
kills germs
5.
X rays - To examine bones in the body(medical Purpose)
Radio waves - Television satellite
Visible light - TV video and audio signal
Ultraviolet waves - Kills germs
infrared waves - TV remote radiation.
Depending on the energy of the radiated particles, radiation is frequently divided into ionizing and non-ionizing categories. More than 10 eV is carried by ionizing radiation, which is sufficient to ionize atoms and molecules and rupture chemical bonds. Due to the significant differences in how toxic these substances are to living things, this distinction is crucial. Radioactive substances that generate radiation in the form of helium nuclei, electrons or positrons, or photons are frequently sources of ionizing radiation. Other sources include X-rays from radiography tests used in medicine as well as muons, mesons, positrons, neutrons, and other particles that are created when primary cosmic rays contact with the atmosphere of Earth.
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If two waves of same frequency and amplitude respectively on superposition produce a resultant disturbance of the same amplitude, the wave differ in phase by :
If the two waves have the same amplitude and frequency and produce a resultant disturbance of the same amplitude, they must differ in phase by 90 degrees.
What if two waves of the same frequency and amplitude combineIf two waves of the same frequency and amplitude combine, the resulting wave will have an amplitude equal to the sum of the two individual waves.
The phase difference between the two waves will determine the shape of the resulting wave. If the two waves are in phase, meaning their peaks and troughs line up, the resulting wave will have a larger amplitude
If the two waves are out of phase by 180 degrees, meaning their peaks line up with each other's troughs, they will cancel each other out and the resulting wave will have zero amplitude.
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Use the exact values you enter to make later calculations.
You monitor the voltage difference across a capacitor in an RC circuit as time passes and find the following results.
Time when V = 0 Time when V = (0.63Vmax) = 7.50 volts
0.040 s 0.080 s
(a) If the equivalent resistance of your circuit is 200.0 ?, calculate the capacitance of the circuit.
C = (b) Using this capacitance in your calculation, find the charge on the capacitor when it is fully charged.
Q =
(a)The capacitance of the circuit is 2.00 × 10⁻⁴F. (b) The charge on the capacitor when it is fully charged is 1.50 × 10⁻³C.
(a) The time constant of the RC circuit can be calculated using the time when the voltage is at (0.63Vmax):
τ = RC = t(0.63Vmax) = 0.080 s - 0.040 s = 0.040 s
Given the equivalent resistance of the circuit, R = 200.0 Ω, we can solve for the capacitance:
C = τ/R = (0.040 s)/(200.0 Ω) = 2.00 × 10⁻⁴F
Therefore, the capacitance of the circuit would be 2.00 × 10⁻⁴F.
(b) The charge on a fully charged capacitor is given by:
Q = CVmax
Already know the capacitance, C, and the maximum voltage, Vmax, which is simply the voltage when the capacitor is fully charged. From the given data, can see that Vmax is 7.50 V. Therefore, we have:
Q = (2.00 × 10⁻⁴F)(7.50 V) = 1.50 × 10⁻³C
Therefore, the charge on the capacitor when it is fully charged would be 1.50 × 10⁻³C.
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The activation energy of a certain reaction is 47.1kJ/mol . At 20C , the rate constant is 0.0170s^{-1} . At what temperature in degrees Celsius would this reaction go twice as fast? Given that the initial rate constant is 0.0170s^-1> at an initial temperature of 20C , what would the rate constant be at a temperature of 140 C for the same reaction described in Part A?
The activation energy of a certain reaction is used to find the temperature at which the reaction would go twice as fast. while the Arrhenius equation can be used to find the rate constant at a different temperature for the same reaction.
We can use the Arrhenius equation, which relates the rate constant of a reaction to the activation energy and temperature. We know the rate constant at 20C and the activation energy, so we can set up the equation as follows:
k2 = 2k1
ln(k2/k1) = Ea/R * (1/T1 - 1/T2)
T2 = Ea/R * (1/T1 - ln(k2/k1)/Ea)
Plugging in the given values, we get:
T2 = 47.1 kJ/mol / (8.314 J/mol*K) * (1/293 K - ln(2)/(47.1 kJ/mol))
T2 ≈ 358 K or 85 C
For the second part of your question, we can use the same equation to find the rate constant at 140 C:
ln(k2/k1) = Ea/R * (1/T1 - 1/T2)
k2 = k1 * e^(Ea/R * (1/T1 - 1/T2))
Plugging in the given values, we get:
k2 = 0.0170 s^-1 * e^(47.1 kJ/mol / (8.314 J/mol*K) * (1/293 K - 1/413 K))
k2 ≈ 1.81 s^-1.
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an object of mass 9.00 kg attached to an ideal massless spring is pulled with a steady horizontal force across a frictionless level surface. if the spring constant is 95.0 n/m and the spring is stretched by 22.0 cm , what is the magnitude of the acceleration of the object?
The force exerted by the spring using Hooke's Law, states that the force exerted by a spring is directly proportional to the amount it is stretched from its equilibrium position.
So, F = kx,
where F is the force exerted by the spring, k is the spring constant, and x is the displacement of the spring from its equilibrium position.
In this case, the spring is stretched by 22.0 cm, which is 0.22 m. So, F = (95.0 N/m) x (0.22 m) = 20.9 N.
Next, we can use Newton's second law of motion, which states that the acceleration of an object is directly proportional to the net force acting on it and inversely proportional to its mass. So,
a = F/m,
where a is the acceleration of the object and m is its mass.
In this case, the net force acting on the object is the force exerted by the spring, which is 20.9 N. The mass of the object is 9.00 kg. So, a = (20.9 N) / (9.00 kg) = 2.32 m/s^2.
Therefore, the magnitude of the acceleration of the object is 2.32 m/s^2.
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A person with body resistance between his hands of 12 kohm accidentally grasps the terminals of a 16-kV power supply. (a) If the internal resistance of the power supply is 2320 ohm, what is the current through the person's body? A (b) What is the power dissipated in his body? kw (c) If the power supply is to be made safe by increasing its internal resistance, what should the internal resistance be for the maximum current in the above situation to be 1.05 mA or less?
(a) The current through the person's body is approximately 1.23 mA.
(b) The power dissipated in his body is approximately 24.84 W.
(c) The internal resistance of the power supply should be at least 14,188 ohm.
(a) The current through the person's body can be calculated using Ohm's law. The total resistance in the circuit is the sum of the person's body resistance and the internal resistance of the power supply. Thus,
I = V / (R_person + R_internal) = 16,000 V / (12,000 ohm + 2,320 ohm) = 1.23 mA.
(b) The power dissipated in the person's body can be calculated using the formula P = I^2 * R, where R is the person's body resistance. Thus,
P = (1.23 mA)^2 * 12,000 ohm = 24.84 W.
(c) To limit the current through the person's body to 1.05 mA, the internal resistance of the power supply should be increased. The maximum allowable internal resistance can be calculated using the formula R_internal = (V / I_max) - R_person, where I_max is the maximum current allowed. Thus,
R_internal = (16,000 V / 1.05 mA) - 12,000 ohm = 14,188 ohm.
Therefore, the internal resistance of the power supply should be at least 14,188 ohm to limit the current through the person's body to 1.05 mA or less.
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Acurrent of 100ma is passed through a solution of copper sulfate if 30c of chargemost pass before the copper deposited on it
If a current of 100 mA is passed through a solution of copper sulfate and 30 coulombs of charge pass before copper is deposited on the electrode, then the mass of copper deposited on the electrode 9.89 mg.
To calculate the mass of copper deposited on the electrode, we must apply Faraday's electrolysis equations, which indicate that the quantity of a substance deposited on an electrode during electrolysis is directly proportional to the amount of electricity that flows through the electrolytic cell.
The formula we can use is:
mass = (Q × M) / (n × F)
Where:
Q is the total electric charge passed through the cell (in coulombs)
M is the molar mass of the substance being deposited (in grams per mole)
n is the number of electrons involved in the deposition reaction (this is also the charge on the ion being deposited)
F is Faraday's constant, which is the amount of charge in one mole of electrons (96,485 C/mol)
In this case, we are depositing copper from a copper sulfate solution, and the reaction is:
Cu2+ + 2e- -> Cu
So n is 2 (since 2 electrons are involved) and M is the molar mass of copper, which is 63.55 g/mol.
Plugging in the numbers, we get:
mass = (30 C × 63.55 g/mol) / (2 × 96,485 C/mol)
mass = 9.89 mg
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A bus accelerates for 25 s at a rate of 0.2 m/s². how much does its velocity increase?
Answer: Velocity increase is, 5m/s.
Explanation: Given,
t = 25s, acceleration(a)=0.2m/s², assuming(required but not given) initial velocity = 0m/s.
According to laws of motion,
v = u + at,
v : Final velocity
u : Initial velocity
a : Acceleration
t : Time
Therefore, on putting values, as given, we get
v = 0 + (0.2)(25)
v = 5m/s
Therefore, velocity increase is 5m/s.
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An EM wave in free space has a wavelength of 710 nm . What is its frequency? Express your answer to two significant figures and include the appropriate units. f = How would we classify it?
The EM wave has a frequency of roughly 4.23 x 10¹⁴ Hz. This EM wave would be categorised as visible light, more especially in the red region of the spectrum, based on its frequency.
How can I determine frequency?To calculate the frequency, divide the total number of occurrences of the event by the duration. Example: Anna divides the time by the quantity of page clicks (236). (one hour, or 60 minutes). Her clickthrough rate is 3.9 per minute, she learns. This gives the wave's frequency in Hertz as well.
c = fλ
Since the wave is in free space, its speed is the speed of light in vacuum, which is approximately 3.00 x 10⁸ m/s.
We need to convert the wavelength to meters, which gives: λ = 710 nm x (1 m/10⁹ nm) = 7.10 x 10⁻⁷ m.
f = c/λ = (3.00 x 10⁸ m/s)/(7.10 x 10⁻⁷ m) ≈⁸ 4.23 x 10¹⁴ Hz.
Therefore, the frequency of the EM wave is approximately 4.23 x 10¹⁴ Hz.
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A weight lifter benches a bar a vertical distance of 1.5m. What is the work done on the weights if the lifter exerts a constant force of 1000N?
1500 Joules of effort are put into the weights (J). work done
What constitutes a work formula?The length of the path is multiplied by the component of the force operating along the path to calculate work if the force is constant. The work W is theoretically equivalent to the force f times the distance d, or W = fd, to represent this idea.
Given that the force is applied in the same direction as the motion and that there is no angle between the force and the direction of motion, cos(theta) equals 1.
The distilled formula is as follows:
W = F * d W = 1000 N x 1.5 m W = 1500 J
So, 1500 Joules of effort are put into the weights (J).
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Step functions can be used to define a window function. Thus u (t+2) – u (t – 3) defines a window 1 unit high and 5 units wide located on the time axis between -2 and 3. A function f (t) is defined as follows: f(t) = 0, t< 0 = 5t, 0
Outside the window, the step function u(t+2) - u(t-3) evaluates to zero, so the whole expression reduces to zero.
An expression is a combination of numbers, symbols, and/or variables that represents a mathematical or logical operation. It can be as simple as a single number or variable, or as complex as a long series of calculations.
Expressions can be used in a variety of contexts, from solving basic arithmetic problems to programming complex algorithms. They can be used to perform calculations, compare values, or evaluate conditions. In computer programming, expressions are often used to assign values to variables, manipulate data, or control program flow. In mathematics, expressions are used to represent equations, inequalities, and other mathematical relationships. They can be simplified or expanded to make them easier to work with, and can be used to solve a wide range of mathematical problems.
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Complete Question:-
Step functions can be used to define a window function. Thus u(t + 2) - u(t - 3) defines a window 1 unit high and 5 units wide located on the time axis between 2 and 3. A function f(t) is defined as follows:
f(t) = 0, t ≤ 0; = 5t, 0 ≤ t ≤ 10 s; = -5t + 100, 10 s ≤ t ≤ 30 s; = -50, 30 s ≤ t ≤ 40 s; = 2.5t - 150, 40 s ≤ t ≤ 60 s; = 0, 60 s ≤ t < ∞.
a) Sketch f(t) over the interval 0 s ≤ t ≤ 60 s.
b) Use the concept of the window function to write an expression for f(t).
decay of silicon-27 by positron emission yields
The Decay of silicon-27 by positron emission yields aluminum-27, a positron, and a neutrino.
When silicon-27 decays by positron emission, it yields the following:
1. Silicon-27 (Si-27) undergoes positron emission, which is a type of radioactive decay.
2. During positron emission, a proton in the nucleus of Si-27 is converted into a neutron.
3. This process creates a positron (a positively charged electron) and a neutrino, which are emitted from the nucleus.
4. As a result of this decay, the atomic number of the element decreases by one, and the mass number remains the same.
5. The new element formed is aluminum-27 (Al-27).
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A) How much gravitational potential energy must a 3030-kg satellite acquire in order to attain a geosynchronous orbit?B) How much kinetic energy must it gain?Note that because of the rotation of the Earth on its axis, the satellite had a velocity of 456 m/s relative to the center of the Earth just before launch.
The satellite must gain approximately 1.35 x 10[tex]^9[/tex]J of kinetic energy to maintain a geosynchronous orbit.
A) To find the gravitational potential energy required for the satellite to attain a geosynchronous orbit, we need to find the change in potential energy between the initial orbit and the final orbit. We can use the formula:
[tex]ΔPE = -GMm (1/ri - 1/rf)[/tex]
Where G is the gravitational constant, M is the mass of the Earth, m is the mass of the satellite, ri is the initial distance from the center of the Earth, and rf is the final distance from the center of the Earth (which is the radius of the geosynchronous orbit).
Using the values given, we have:
[tex]ΔPE = -(6.67 x 10^-11 Nm^2/kg^2)(5.97 x 10^24 kg)(3030 kg) (1/(6.38 x 10^6 m) - 1/(4.23 x 10^7 m))\\ΔPE ≈ 6.61 x 10^10 J[/tex]
Therefore, the satellite must acquire approximately [tex]6.61 x 10^10 J[/tex] of gravitational potential energy to attain a geosynchronous orbit.
B) Once the satellite has attained the geosynchronous orbit, it will be traveling at the same speed as the Earth's rotation, which is approximately 1670 km/h (or 464 m/s) at the equator. Therefore, the kinetic energy that the satellite must gain to maintain this speed is given by:
[tex]KE = (1/2)mv^2[/tex]
Where m is the mass of the satellite and v is the final velocity (which is 464 m/s plus the initial velocity of 456 m/s, since the satellite is already moving relative to the center of the Earth).
Using the values given, we have:
[tex]KE = (1/2)(3030 kg)(920 m/s)^2\\KE ≈ 1.35 x 10^9 J[/tex]
Therefore, the satellite must gain approximately[tex]1.35 x 10^9 J[/tex]of kinetic energy to maintain a geosynchronous orbit.
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A scalloped hammerhead shark swims at a steady speed of 1.0 m/s with its 83-cm-wide head perpendicular to the earth's 52 μT magnetic field.What is the magnitude of the emf induced between the two sides of the shark's head? Express your answer using two significant figures.
The magnitude of the emf induced between the two sides of the shark's head is 43 μV.
To calculate the magnitude of the emf induced between the two sides of the scalloped hammerhead shark's head, you can use Faraday's law of electromagnetic induction. The formula is:
emf = B × L × v
where emf is the induced electromotive force, B is the magnetic field strength (52 μT or 52 x 10⁻⁶ T), L is the width of the shark's head (83 cm or 0.83 m), and v is the shark's steady speed (1.0 m/s).
Plugging in the values:
emf = (52 x 10⁻⁶ T) × (0.83 m) × (1.0 m/s)
emf ≈ 4.3 × 10⁻⁵ V
The magnitude of the emf induced between the two sides of the shark's head is approximately 4.3 × 10⁻⁵ V, or 43 μV, when expressed using two significant figures.
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two small restriction fragments of nearly the same base pair size appear as a single band. what could be done to resolve the fragments?
To resolve the two small restriction fragments of nearly the same base pair size that appear as a single band, one option would be to use a higher percentage agarose gel.
This would provide better resolution between the fragments, allowing them to be distinguished as separate bands. Another option would be to use a different restriction enzyme that cuts the DNA at different sites, producing fragments of different sizes. This would also allow for the fragments to be distinguished as separate bands on the gel. Additionally, using a DNA ladder with fragments of known sizes can aid in identifying the individual fragments.
To resolve two small restriction fragments of nearly the same base pair size that appear as a single band, you could use one or a combination of these techniques:
1. Increase the agarose gel concentration: A higher agarose gel concentration will improve separation of fragments with small size differences.
2. Run the gel for a longer time: Extending the electrophoresis time allows for better separation of the fragments.
3. Use a different restriction enzyme: Cutting the DNA with an alternative restriction enzyme could produce fragments with more distinguishable sizes.
4. Utilize polyacrylamide gel electrophoresis (PAGE): PAGE is capable of resolving smaller fragments with greater precision than agarose gel electrophoresis.
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Eight identical lights are connected in series across a 110-V line. What is the voltage across each bulb?
The voltage across each bulb is 13.75 volts.
To find the voltage across each bulb in a series circuit, we can use the formula:
Total Voltage (V_total) = Voltage across each bulb (V_bulb) × Number of bulbs (n)
Given that there are 8 identical lights connected in series across a 110-V line, we can rearrange the formula to solve for the voltage across each bulb:
V_bulb = V_total / n
V_bulb = 110 V / 8
V_bulb = 13.75 V
So, the voltage across each bulb is 13.75 volts.
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what is the spoon-shaped projection of the scapula called?
The spoon-shaped projection of the scapula is called the spine of the scapula.
The scapula, also known as the shoulder blade, is a flat, triangular bone located on the upper back, connecting the humerus (upper arm bone) to the clavicle (collarbone). The spine of the scapula is a prominent bony ridge that runs diagonally across the dorsal side of the scapula, this ridge serves as a point of attachment for various muscles that help to stabilize and move the shoulder joint. One of the most important functions of the spine of the scapula is to divide the scapula into two distinct regions, known as the supraspinous fossa and the infraspinous fossa. These fossae accommodate the muscles of the rotator cuff, a group of muscles and tendons that provide stability and mobility to the shoulder joint.
The spine of the scapula also terminates at the acromion process, which forms the highest point of the shoulder and is a key structure in the formation of the acromioclavicular joint. In summary, the spine of the scapula is a critical anatomical structure in the shoulder, providing a point of attachment for various muscles and tendons that contribute to the stability and mobility of the shoulder joint. It also serves as an important landmark for the division of the scapula into distinct functional regions. The spoon-shaped projection of the scapula is called the spine of the scapula.
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in a dream you're in a car traveling at 50 km/h and you bump into another car traveling toward you at 48 km/h. the speed of impact is
In a dream, you're in a car traveling at 50 km/h and you bump into another car traveling toward you at 48 km/h. the speed of impact is 98 km/h.
To calculate the speed of impact in your dream, where your car is traveling at 50 km/h and the other car is traveling towards you at 48 km/h, you simply add the speeds of both cars. The speed of impact in this scenario would be 50 km/h (your car) + 48 km/h (the other car) = 98 km/h. An impact velocity is the total speed of an object when it makes an impact with the ground or another object after falling from a certain distance. How do you find the impact speed of two cars? Once the momentum of the individual cars is known, the after-collision velocity is determined by simply dividing momentum by mass (v=p/m).
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find the direction angle θa(ii)θa(ii) of the velocity of sphere aa after the first collision. express your answer in degrees. the angle is measured from the x -axis toward the y y -axis.
We can express the angle in degrees by converting from radians to degrees:
θa(ii) = θa(ii) * (180 / π)
To find the direction angle θa(ii) of the velocity of sphere A after the first collision, we'll need information about the initial velocities and masses of the spheres involved in the collision, as well as their relative positions.
Once we have that information, we can use conservation of momentum and energy principles to find the final velocities of the spheres. Then, we can calculate the direction angle θa(ii) by taking the inverse tangent (arctan) of the ratio of the y-component of the velocity to the x-component of the velocity:
θa(ii) = arctan(Vy / Vx)
Finally, we can express the angle in degrees by converting from radians to degrees:
θa(ii) = θa(ii) * (180 / π)
Please provide the necessary information, and I will be glad to help you find the direction angle θa(ii) for the velocity of sphere A after the first collision.
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a 100 g ball rolls off a table and hits 2.0 m from the base of the table. a 200 g ball rolls off the same table with the same speed. it lands at distance
The 200 g ball lands at a distance of 2.0 m from the base of the table.
We are given the masses of the balls (100 g and 200 g), the distance from the base of the table (2.0 m), and we need to determine the distance the 200 g ball lands from the base of the table.
To solve this problem, we'll assume that the only force acting on the balls after they leave the table is gravity, and that air resistance is negligible.
Since both balls roll off the table with the same speed and are only affected by gravity, their horizontal motion should be the same.
Recognize that both balls have the same initial horizontal speed and are under the influence of gravity.
Understand that their masses (100 g and 200 g) do not affect their horizontal motion because gravity affects all objects equally.
Since their horizontal motion is the same, the 200 g ball will also land 2.0 m from the base of the table, just like the 100 g ball.
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