a) The depth of the tank is approximately 1.683 meters. b) On the winter solstice in Miami, the depth of the tank would need to be approximately 2.589 meters for the sun not to illuminate the bottom of the tank .
(a) In the given scenario, when the sunlight ceases to illuminate any part of the bottom of the tank, then it can be solved by following method,
The height of the tank is ='h', and the angle between the ground and the sunlight is = θ (30.5°). The radius of the tank is = 'r'.
Since the sunlight ceases to illuminate the bottom of the tank, the height 'h' will be equal to the radius 'r' of the tank. Therefore, the value of 'h should be found out.
The tangent of an angle is equal to the ratio of the opposite side to the adjacent side. In this case, the tangent of angle θ is equal to h/r:
tan(θ) = h/r
Substituting the given values: tan(30.5°) = h/2.9
To find 'h', one can rearrange the equation:
h = tan(30.5°) × 2.9
Calculating the value of 'h':
h ≈ 2.9 × tan(30.5°) ≈ 1.683 m
So, the depth of the tank is approximately 1.683 meters.
b) the sun reaches a maximum altitude of 40.8° above the horizon,
The angle θ is now 40.8°, and one need to find the depth 'h' required for the sun not to illuminate the bottom of the tank.
Using the same trigonometric relationship,
tan(θ) = h/r
Substituting the given values: tan(40.8°) = h/2.9
To find 'h', rearrange the equation:
h = tan(40.8°) ×2.9
Calculating the value of 'h':
h ≈ 2.9 × tan(40.8°) ≈ 2.589 m
Therefore, on the winter solstice in Miami, the depth of the tank would need to be approximately 2.589 meters for the sun not to illuminate the bottom of the tank.
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Imagine that velocity vector (V) is measured in meters per second and can be split on three (x-, y-, 2-) components. Then, using the concept of unit vectors (i, j, k) one can express as V = Vx i + Vy j + Vz k. What are the units of vector components and unit vectors ? Will it be possible to calculate the unit vectors?
The units of vector components are meters per second while the units of unit vectors are pure numbers. It is possible to calculate the unit vectors.
The vector is a mathematical object that has both a magnitude and direction. Vectors are often used in physics and engineering to represent physical quantities such as velocity, acceleration, force, and displacement. In this problem, we are given a velocity vector (V) that has three components in the x, y, and z directions, respectively. The units of vector components are meters per second since the velocity is measured in meters per second.
The unit vectors are dimensionless since they represent pure numbers. We can calculate the unit vectors using the following formula: $\vec{V} = V_x \vec{i} + V_y \vec{j} + V_z \vec{k}$Where $\vec{i}, \vec{j}, \vec{k}$ are the unit vectors in the x, y, and z directions, respectively. To find the unit vector in each direction, we can divide the vector component by its magnitude:$$\vec{i} = \frac{\vec{V_x}}{|V|}$$$$\vec{j} = \frac{\vec{V_y}}{|V|}$$$$\vec{k} = \frac{\vec{V_z}}{|V|}$$Where |V| is the magnitude of the velocity vector V.
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a)
Calculate the density of the moon by assuming it to be a sphere of diameter 3475 km and having a mass of 7.35 × 10^22 kg. Express your answer in g/cm3.
)
A car accelerates from zero to a speed of 36 km/h in 15 s.
i.
Calculate the acceleration of the car in m/s2.
ii.
If the acceleration is assumed to be constant, how far will the car travel in 1 minute ?
iii.
Calculate the speed of the car after 1 minute.
The density of the moon is determined to be 3.35 g/cm³ based on its mass and volume. In the case of the car, it experiences an acceleration of 2/3 m/s², enabling it to travel a distance of 4000 m in 1 minute and achieve a speed of 200/3 m/s.
a) Density of the moon: Density is the measure of mass per unit volume of a substance. It is denoted by p. It is given as:
[tex]\[Density=\frac{Mass}{Volume}\][/tex]
Given that the diameter of the moon is 3475 km and the mass of the moon is 7.35 × 10²² kg, we need to find the density of the moon. We know that the volume of a sphere is given as:
[tex]\[V=\frac{4}{3}πr^{3}\][/tex]
Here, the diameter of the sphere is 3475 km. Therefore, the radius of the sphere will be half of it, i.e.:
[tex]\[r=\frac{3475}{2}\ km=1737.5\ km\][/tex]
Substituting the given values in the formula to get the volume, we get:
[tex]\[V=\frac{4}{3}π(1737.5)^{3}\ km^{3}\][/tex]
Converting km to cm, we get:
[tex]\[1\ km=10^{5}\ cm\]\[\Rightarrow 1\ km^{3}=(10^{5})^{3}\ cm^{3}=10^{15}\ cm^{3}\][/tex]
Therefore,[tex]\[V=\frac{4}{3}π(1737.5×10^{5})^{3}\ cm^{3}\][/tex]
Now we can find the density of the moon:
[tex]\[Density=\frac{Mass}{Volume}\]\[Density=\frac{7.35×10^{22}}{\frac{4}{3}π(1737.5×10^{5})^{3}}\ g/{cm^{3}}\][/tex]
Simplifying, we get the density of the moon as:
[tex]\[Density=3.35\ g/{cm^{3}}\][/tex]
b) Acceleration of the car
i. The initial velocity of the car is zero. The final velocity of the car is 36 km/h or 10 m/s. The time taken by the car to reach that velocity is 15 s. We can use the formula of acceleration:
[tex]\[Acceleration=\frac{Change\ in\ Velocity}{Time\ Taken}\]\[Acceleration=\frac{10-0}{15}\ m/s^{2}\][/tex]
Simplifying, we get the acceleration of the car as:
[tex]\[Acceleration=\frac{2}{3}\ m/s^{2}\][/tex]
ii. If we assume that the acceleration of the car is constant, we can use the formula of distance traveled by a uniformly accelerated body:
[tex]\[Distance\ travelled=\frac{Initial\ Velocity×Time\ Taken+\frac{1}{2}Acceleration\times(Time\ Taken)^{2}}{2}\][/tex]
Here, the initial velocity of the car is zero, the acceleration of the car is 2/3 m/s² and the time taken by the car to travel a distance of 1 minute is 60 s.
Substituting these values, we get:
[tex]\[Distance\ travelled=\frac{0\times 60+\frac{1}{2}\times \frac{2}{3}\times (60)^{2}}{2}\ m\]\[Distance\ travelled=\frac{12000}{3}=4000\ m\][/tex]
Therefore, the car will travel a distance of 4000 m in 1 minute.
iii. If we assume that the acceleration of the car is constant, we can use the formula of distance traveled by a uniformly accelerated body
[tex]:\[Distance\ travelled=\frac{Initial\ Velocity×Time\ Taken+\frac{1}{2}Acceleration\times(Time\ Taken)^{2}}{2}\][/tex]
Here, the initial velocity of the car is zero, the acceleration of the car is 2/3 m/s² and the time taken by the car to travel a distance of 1 minute is 60 s. We need to find the speed of the car after 1 minute. We know that:
[tex]\[Speed=\frac{Distance\ travelled}{Time\ Taken}\][/tex]
Substituting the values of the distance traveled and time taken, we get:
[tex]\[Speed=\frac{4000}{60}\ m/s\][/tex]
Simplifying, we get the speed of the car after 1 minute as: [tex]\[Speed=\frac{200}{3}\ m/s\][/tex]
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A 1m rod is travelling in region where there is a uniform magnetic field of 0.1T, going into the page. The velocity is 4m/s, and perpendicular to the magnetic field. The rod is connected to a 20 Ohm resistor. Calculate the current circulating in the rod. Provide a
draw with the direction of the current.
If a 1m rod is travelling in region where there is a uniform magnetic field of 0.1T, going into the page, then the current circulating in the rod is 0.02A and the direction of the current is in a clockwise direction.
We have been given the following information :
Velocity of the rod = 4m/s
Magnetic field = 0.1T
Resistance of the resistor = 20Ω
Let's use the formula : V = I * R to find the current through the rod.
Current flowing in the rod, I = V/R ... equation (1)
The potential difference created in the rod due to the motion of the rod in the magnetic field, V = B*L*V ... equation (2)
where
B is the magnetic field
L is the length of the rod
V is the velocity of the rod
Perpendicular distance between the rod and the magnetic field, L = 1m
Using equation (2), V = 0.1T * 1m * 4m/s = 0.4V
Substituting this value in equation (1),
I = V/R = 0.4V/20Ω = 0.02A
So, the current circulating in the rod is 0.02A
Direction of the current is as follows: the rod is moving inwards, the magnetic field is going into the page.
By Fleming's right-hand rule, the direction of the current is in a clockwise direction.
Thus, the current circulating in the rod is 0.02A and the direction of the current is in a clockwise direction.
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Two transverse sinusoidal waves combining in a medium are described by the wave functionsy₁ = 3.00sin π(x + 0.600t) y₂ = 3.00 sinπ(x - 0.600t) where x, y₁ , and y₂ are in centimeters and t is in seconds. Determine the maximum transverse position of an element of the medium at (a) x = 0.250cm,
The maximum transverse position of an element of the medium at x = 0.250 cm is [tex]3√2[/tex] cm.
The maximum transverse position of an element of the medium at x = 0.250 cm can be determined by finding the sum of the two wave functions [tex]y₁[/tex]and [tex]y₂[/tex] at that particular value of x.
Given the wave functions:
[tex]y₁ = 3.00 sin(π(x + 0.600t))[/tex]
[tex]y₂ = 3.00 sin(π(x - 0.600t))[/tex]
Substituting x = 0.250 cm into both wave functions, we get:
[tex]y₁ = 3.00 sin(π(0.250 + 0.600t))[/tex]
[tex]y₂ = 3.00 sin(π(0.250 - 0.600t))[/tex]
This occurs when the two waves are in phase, meaning that the arguments inside the sine functions are equal. In other words, when:
[tex]π[/tex](0.250 + 0.600t) = [tex]π[/tex](0.250 - 0.600t)
Simplifying the equation, we get:
0.250 + 0.600t = 0.250 - 0.600t
The t values cancel out, leaving us with:
0.600t = -0.600t
Therefore, the waves are always in phase at x = 0.250 cm.
Substituting x = 0.250 cm into both wave functions, we get:
[tex]y₁ = 3.00 sin(π(0.250 + 0.600t))[/tex]
[tex]y₂ = 3.00 sin(π(0.250 - 0.600t))[/tex]
Therefore, the maximum transverse position at x = 0.250 cm is:
[tex]y = y₁ + y₂ = 3.00 sin(π(0.250 + 0.600t)) + 3.00 sin(π(0.250 - 0.600t))[/tex]
Now, we can substitute t = 0 to find the maximum transverse position at x = 0.250 cm:
[tex]y = 3.00 sin(π(0.250 + 0.600(0))) + 3.00 sin(π(0.250 - 0.600(0)))[/tex]
Simplifying the equation, we get:
[tex]y = 3.00 sin(π(0.250)) + 3.00 sin(π(0.250))[/tex]
Since [tex]sin(π/4) = sin(π - π/4)[/tex], we can simplify the equation further:
[tex]y = 3.00 sin(π/4) + 3.00 sin(π/4)[/tex]
Using the value of [tex]sin(π/4) = 1/√2[/tex], we can calculate the maximum transverse position:
[tex]y = 3.00(1/√2) + 3.00(1/√2) = 3/√2 + 3/√2 = 3√2/2 + 3√2/2 = 3√2 cm[/tex]
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Marcus has an electrical appliance that operates on 120 V. He will soon be traveling to Peru, where the wall outlets provide 230 V. Marcus decides to build a transformer so that his appliance will work for him in Peru. If the primary winding of the transformer has 2,000 turns, how many turns will the secondary have?
Marcus will need approximately 3,833 turns in the secondary winding of the transformer to step up the voltage from 120 V to 230 V. This ratio of turns ensures that the electrical appliance operates at the desired voltage level in Peru, matching the available wall outlet voltage.
To determine the number of turns required for the secondary winding of the transformer, we can use the transformer turns ratio formula, which states that the ratio of turns between the primary and secondary windings is proportional to the voltage ratio:
N₁/N₂ = V₁/V₂
Where:
N₁ is the number of turns in the primary winding,
N₂ is the number of turns in the secondary winding,
V₁ is the voltage in the primary winding, and
V₂ is the voltage in the secondary winding.
Given that the primary winding has 2,000 turns and the primary voltage is 120 V, and we want to achieve a secondary voltage of 230 V, we can rearrange the formula to solve for N₂:
N₂ = (N₁ * V₂) / V₁
Substituting the given values, we have:
N₂ = (2,000 * 230) / 120
Calculating this expression, we find:
N₂ ≈ 3,833.33
Since the number of turns must be an integer, we round the result to the nearest whole number:
N₂ ≈ 3,833
Therefore, Marcus will need approximately 3,833 turns in the secondary winding of the transformer to step up the voltage from 120 V to 230 V. This ratio of turns ensures that the electrical appliance operates at the desired voltage level in Peru, matching the available wall outlet voltage.
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A 23.0 kg child plays on a swing having support ropes that are 1.80 m long. A friend pulls her back until the ropes are at angle 39.0 from the vertical and releases her from rest. For related problem-solving tips and strategies, you may want to view a Video Tutor Solution of Calculating speed along a vertical circle. Part A What is the potential energy for the child just as she is released, compared with the potential energy at the bottom of the swing?
The potential energy for the child just as she is released is greater compared to the potential energy at the bottom of the swing.
When the child is released from rest at the highest point of the swing, her potential energy is at its maximum. This is because the potential energy of an object is directly related to its height and the force of gravity acting on it. At the bottom of the swing, the child's potential energy is minimum or zero because she is at the lowest point. As the child swings back and forth, her potential energy continuously changes between maximum and minimum values.
The potential energy of the child is highest at the point of release because she is at the highest point of her swing trajectory. As she descends, her potential energy is converted into kinetic energy, reaching its minimum at the bottom of the swing when the child has the highest speed.
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The molar specific heat can be temperature dependent at very low temperatures. A matter X has it specific heat C=aT ^3
Where T is the temperature and a=8.7×10 ^−5 J mol −1 K ^−4
is a constant. Find (i) the amount of heat that raises the temperature of 1.50 moles of matter X from 10.0 K to 20.0 K. (ii) the average molar heat capacity in the temperature range 10.0 K to 20.0 K.
The average molar heat capacity for matter X in the temperature range 10.0 K to 20.0 K is approximately 4.98 J mol^(-1) K^(-1).
To find the amount of heat required and the average molar heat capacity for matter X, which has a specific heat given by C = aT^3, where T is the temperature and a = 8.7 × 10^(-5) J mol^(-1) K^(-4), we can follow these steps:
(i) Calculate the amount of heat required to raise the temperature of 1.50 moles of matter X from 10.0 K to 20.0 K:
ΔT = 20.0 K - 10.0 K = 10.0 K
The amount of heat (Q) can be calculated using the formula:
Q = nCΔT
where n is the number of moles and C is the specific heat.
Q = (1.50 mol) * (8.7 × 10^(-5) J mol^(-1) K^(-4)) * (10.0 K)^3 = 1.305 J
Therefore, the amount of heat required to raise the temperature of 1.50 moles of matter X from 10.0 K to 20.0 K is 1.305 J.
(ii) Calculate the average molar heat capacity in the temperature range 10.0 K to 20.0 K:
The average molar heat capacity (C_avg) can be calculated using the formula:
C_avg = (1/n) * ∫(C dT)
where n is the number of moles, C is the specific heat, and the integration is performed over the temperature range.
C_avg = (1/1.50 mol) * ∫((8.7 × 10^(-5) J mol^(-1) K^(-4)) * T^3 dT) from 10.0 K to 20.0 K
Integrating the expression, we get:
C_avg = (1/1.50 mol) * [(8.7 × 10^(-5) J mol^(-1) K^(-4)) * (1/4) * (20.0 K)^4 - (8.7 × 10^(-5) J mol^(-1) K^(-4)) * (1/4) * (10.0 K)^4]
C_avg ≈ 4.98 J mol^(-1) K^(-1)
Therefore, the average molar heat capacity for matter X in the temperature range 10.0 K to 20.0 K is approximately 4.98 J mol^(-1) K^(-1).
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Pool players often pride themselves on their ability to impart a large speed to a pool ball. In the sport of billiards, event organizers often remove one of the rails on a pool table to allow players to measure the speed of their break shots (the opening shot of a game in which the player strikes a ball with his pool cue). With the rail removed, a ball can fly off the table, as shown in the figure. Vo = The surface of the pool table is h = 0.710 m from the floor. The winner of the competition wants to know if he has broken the world speed record for the break shot of 32 mph (about 14.3 m/s). If the winner's ball landed a distance of d = 4.15 m from the table's edge, calculate the speed of his break shot vo. Assume friction is negligible. 10.91 At what speed v₁ did his pool ball hit the ground? V₁ = 10.93 h Incorrect d m/s m/s
The speed at which the ball hit the ground (v₁) is approximately 11.02 m/s.
How to calculate speed?To calculate the speed of the break shot, use the principle of conservation of energy, assuming friction is negligible.
Given:
Height of the table surface from the floor (h) = 0.710 m
Distance from the table's edge to where the ball landed (d) = 4.15 m
World speed record for the break shot = 32 mph (about 14.3 m/s)
To calculate the speed of the break shot (vo), equate the initial kinetic energy of the ball with the potential energy at its maximum height:
(1/2)mv₀² = mgh
where m = mass of the ball, g = acceleration due to gravity (9.8 m/s²), and h = height of the table surface.
Solving for v₀:
v₀ = √(2gh)
Substituting the given values:
v₀ = √(2 × 9.8 × 0.710) m/s
v₀ ≈ 9.80 m/s
So, the speed of the break shot (vo) is approximately 9.80 m/s.
Since friction is negligible, the horizontal component of the velocity remains constant throughout the motion. Therefore:
v₁ = d / t
where t = time taken by the ball to reach the ground.
To find t, use the equation of motion:
h = (1/2)gt²
Solving for t:
t = √(2h / g)
Substituting the given values:
t = √(2 × .710 / 9.8) s
t ≈ 0.376 s
Substituting the values of d and t, now calculate v₁:
v₁ = 4.15 m / 0.376 s
v₁ ≈ 11.02 m/s
Therefore, the speed at which the ball hit the ground (v₁) is approximately 11.02 m/s.
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You are 2m away from a convex mirror in a store, you see yourself about 1 m behind the mirror. Is this image real or virtual? O real O virtual O no image O not enough info, can not determine
The image observed in the convex mirror, with yourself appearing 1 meter behind while standing 2 meters away, is O virtual
The image formed by the convex mirror is virtual. When you see yourself about 1 meter behind the mirror while standing 2 meters away from it, the image is not a real one. It is important to understand the characteristics of convex mirrors to determine the nature of the image formed.
Convex mirrors are curved outward and have a reflective surface on the outer side. When an object is placed in front of a convex mirror, the light rays coming from the object diverge after reflection. These diverging rays appear to come from a virtual point behind the mirror, creating a virtual image.
In this scenario, the fact that you see yourself 1 meter behind the mirror indicates that the image is virtual. The image is formed by the apparent intersection of the diverging rays behind the mirror. It is important to note that virtual images cannot be projected onto a screen, and they appear smaller than the actual object.
Therefore, he correct answer is: O virtual
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A standing wave is set up on a string of length L, fixed at both ends. If 3-loops are observed when the wavelength is 1 = 1.5 m, then the length of the string is:
A standing wave is set up on a string of length L, fixed at both ends. If 3-loops are observed when the wavelength is 1 = 1.5 m, then the length of the string is 2.25 meters.
In a standing wave on a string fixed at both ends, the number of loops (or antinodes) observed is related to the wavelength (λ) and the length of the string (L).
For a standing wave on a string fixed at both ends, the relationship between the number of loops (n) and the wavelength is given by:
n = (2L) / λ,
where n is the number of loops and λ is the wavelength.
In this case, 3 loops are observed when the wavelength is 1.5 m:
n = 3,
λ = 1.5 m.
We can rearrange the equation to solve for the length of the string (L):
L = (n× λ) / 2.
Substituting the given values:
L = (3 × 1.5) / 2 = 4.5 / 2 = 2.25 m.
Therefore, the length of the string is 2.25 meters.
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The velocity of a mass is increased 4 times the kinetic energy is increased a) 16 times b) 4 times c) 2 times d) 8 times e) not at all, since the mass remains the same.
The velocity of a mass is increased by 4 times; the kinetic energy is increased by 16 times. The correct option is a) 16 times.
What is kinetic energy?
Kinetic energy is the energy an object possesses when it is in motion. It is proportional to the mass and the square of the velocity of an object.
Kinetic energy is defined as:
K = 1/2 mv²
where K is the kinetic energy of the object in joules,
m is the mass of the object in kilograms, and
v is the velocity of the object in meters per second.
Hence, we can see that the kinetic energy of an object depends on its mass and velocity.
The question states that the velocity of a mass is increased 4 times.
Therefore, if the initial velocity was v,
the final velocity is 4v.
We can now calculate the ratio of the final kinetic energy to the initial kinetic energy using the formula given earlier.
K1/K2 = (1/2 m(4v)²) / (1/2 mv²)
= 16
Therefore, the kinetic energy is increased by 16 times, option a) is the correct option.
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A heat engine takes in a quantity of heat equals 10 kJ from a hot reservoir at 900 °C and rejects a quantity of heat Qc to a cold reservoir at a temperature 400 °C. The maximum possible efficiency of this engine is
The maximum possible efficiency of this heat engine is approximately 42.69%. It can be calculated using the Carnot efficiency formula.
The maximum possible efficiency of a heat engine can be calculated using the Carnot efficiency formula, which is given by:
Efficiency = 1 - (Tc/Th), where Tc is the temperature of the cold reservoir and Th is the temperature of the hot reservoir.
In this case, the temperature of the hot reservoir (Th) is 900 °C, which needs to be converted to Kelvin (K) by adding 273.15 to the Celsius value. So Th = 900 + 273.15 = 1173.15 K.
Similarly, the temperature of the cold reservoir (Tc) is 400 °C, which needs to be converted to Kelvin as well. Tc = 400 + 273.15 = 673.15 K. Now, we can calculate the maximum possible efficiency:
Efficiency = 1 - (Tc/Th)
Efficiency = 1 - (673.15 K / 1173.15 K)
Efficiency ≈ 1 - 0.5731
Efficiency ≈ 0.4269
Therefore, the maximum possible efficiency of this heat engine is approximately 42.69%.
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A current of 1.2 mA flows through a ½ W resistor. The voltage across
resistance is:
417V,o
b.
You don't have all the information you need to know.
c.
4.17V,
d
0.6V
e.
0.6mV,
A current of 1.2 mA flows through a ½ W resistor. The voltage across the ½ W resistor with a current of 1.2 mA is (c) 4.17 V,
The voltage across a resistor can be calculated using Ohm's Law:
V = I * R
where:
V is the voltage in volts
I is the current in amperes
R is the resistance in ohms
In this case, we have:
I = 1.2 mA = 1.2 × 10⁻³ A
R = ½ W = ½ × 1 W = 500 Ω
Substituting these values into Ohm's Law, we get:
V = 1.2 × 10⁻³ A × 500 Ω
V = 4.17 V
Therefore, the voltage across the resistance is (c) 4.17 V.
The other answers are incorrect:
417V is too high. A ½ W resistor can only dissipate ½ W of power, so the voltage across it cannot be more than ½ W / 1.2 mA = 417 V.You don't have all the information you need to know. The only information we need to know is the current and the resistance.0.6V is too low. The voltage across a resistor cannot be less than the current multiplied by the resistance.0.6mV is also too low. The voltage across a resistor cannot be less than the current multiplied by the resistance, and the resistance is in ohms, which is a much larger unit than millivolts.To know more about the voltage across a resistor refer here,
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HAIL Please find the resistance with a drilled hole along axy of radius a
To calculate the resistance of an object with a drilled hole along the axis of radius "a" (Ao) and length "L," we need additional information about the dimensions and material of the object.
The resistance of an object can be determined using the formula:
R = ρ * (L / A)
Where:
R is the resistance
ρ is the resistivity of the material
L is the length of the object
A is the cross-sectional area of the object
For an object with a drilled hole along the axis, the cross-sectional area would depend on the shape and dimensions of the object.Please provide more details about the object, such as its shape, dimensions, and the material it is made of, so that a more accurate calculation can be performed.
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Problem 2: Three 0.300 kg masses are placed at the corners of a right triangle as shown below. The sides of the triangle are of lengths a = 0.400 m, b = 0.300 m, and c = 0.500 m. Calculate the magnitude and direction of the gravitational force acting on m3 (the mass on the lower right corner) due to the other 2 masses only. (10 points) G = 6.67x10-11 N m²/kg? m 2 с. ma b b m3
We need to calculate the magnitude and direction of the gravitational force acting on m3 (the mass on the lower right corner) due to the other 2 masses only. To find we use concepts of gravity.
Given information:
Mass of each object, m = 0.300 kg
Length of sides of the triangle,
a = 0.400 m,
b = 0.300 m,
c = 0.500 m
Gravitational force constant, G = 6.67 x 10-11 N m²/kg
Now, we need to find out the magnitude and direction of the gravitational force acting on m3 (the mass on the lower right corner) due to the other 2 masses only. In order to calculate the gravitational force, we use the formula:
F = (G × m1 × m2) / r²
Where, F is the gravitational force acting on m3m1 and m2 are the masses of the objects r is the distance between the objects. Let's calculate the gravitational force between m1 and m3 first:
Using the above formula:
F1 = (G × m1 × m3) / r1²
Where,r1 is the distance between m1 and m3
r1² = (0.4)² + (0.3)²r1 = √0.25 = 0.5 m
Putting the values in the above equation:
F1 = (6.67 x 10-11 × 0.3²) / 0.5²
F1 = 1.204 x 10-11 N
Towards the right side of m1.
Now, let's calculate the gravitational force between m2 and m3: Using the formula:
F2 = (G × m2 × m3) / r2²
Where,r2 is the distance between m2 and m3
r2² = (0.3)² + (0.5)²r2 = √0.34 = 0.583 m
Putting the values in the above equation:
F2 = (6.67 x 10-11 × 0.3²) / 0.583²
F2 = 8.55 x 10-12 N
Towards the left side of m2
Net gravitational force acting on m3 is the vector sum of F1 and F2. Now, let's find out the net gravitational force using the Pythagorean theorem: Net force,
Fnet = √(F1² + F2²)
Fnet = √[(1.204 x 10-11)² + (8.55 x 10-12)²]
Fnet = 1.494 x 10-11 N
Direction: If θ is the angle between the net gravitational force and the horizontal axis, then
tanθ = (F2/F1)
θ = tan⁻¹(F2/F1)
θ = tan⁻¹[(8.55 x 10-12)/(1.204 x 10-11)]
θ = 35.4° above the horizontal (approximately)
Therefore, the magnitude of the gravitational force acting on m3 is 1.494 × 10-11 N and the direction is 35.4° above the horizontal.
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A steel walkway (a=18.4 x 10^-6 mm/mmC) spans the rome walkway . The walkway spans a 170 foot 8.77 inch gap. If the walkway is meant for a temperature range of -32.4 C to 39.4 C how much space needs to be allowed for expansion? Report your answer in inches ..
2048.77 inches space needed to be allowed for expansion
To calculate the expansion space required for a steel walkway that spans a 170 ft 8.77 inch gap.
we need to consider the walkway's coefficient of thermal expansion and the temperature range it's designed for. Using the given coefficient of and the temperature range of -32.4 C to 39.4 C, we can calculate the expansion space required in inches, which turns out to be 2.39 inches.
The expansion space required for the steel walkway can be calculated using the following formula:
ΔL = L * α * ΔT
Where ΔL is the change in length of the walkway, L is the original length (in this case, the length of the gap the walkway spans), α is the coefficient of thermal expansion, and ΔT is the temperature difference.
[tex]ΔL = 170 ft 8.77 in * (18.4 \times 10^-6 mm/mmC) * (39.4 C - (-32.4 C))[/tex]
Converting the length to inches and the temperature difference to Fahrenheit and Simplifying this expression, we get
ΔL=170ft8.77in∗(18.4×10 − 6mm/mmC)∗(39.4C−(−32.4C))
Therefore, the expansion space required for the steel walkway is 2.39 inches. This means that the gap the walkway spans should be slightly larger than its original length to allow for thermal expansion and prevent buckling or distortion.
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What is the wavelength of a man riding a bicycle at 6.70 m/s if the combined mass of the man and the bicycle is 85.4 kg?
Answer is: 1.16 x10-36 m
Using the de Broglie wavelength formula, with a speed of 6.70 m/s and a combined mass of 85.4 kg, the object in this scenario is a man riding a bicycle.
The wavelength of a moving object can be calculated using the de Broglie wavelength formula, which relates the wavelength to the momentum of the object. The formula is given by:
λ = h / p
where λ is the wavelength, h is Planck's constant (approximately 6.626 × 10⁻³⁴ J·s), and p is the momentum of the object.
To calculate the momentum of the man and the bicycle, we use the equation:
p = m * v
where p is the momentum, m is the mass, and v is the velocity.
In this case, the combined mass of the man and the bicycle is given as 85.4 kg, and the velocity of the man riding the bicycle is 6.70 m/s.
Calculating the momentum:
p = (85.4 kg) * (6.70 m/s)
p ≈ 572.38 kg·m/s
Substituting the values into the de Broglie wavelength formula:
λ = (6.626 × 10⁻³⁴ J·s) / (572.38 kg·m/s)
λ ≈ 1.16 × 10⁻³⁶ m
Therefore, the wavelength of a man riding a bicycle at 6.70 m/s, with a combined mass of 85.4 kg, is approximately 1.16 × 10⁻³⁶ meters.
In conclusion, Using the de Broglie wavelength formula, we can calculate the wavelength of a moving object. In this case, the object is a man riding a bicycle with a velocity of 6.70 m/s and a combined mass of 85.4 kg.
By substituting the values into the equations for momentum and wavelength, we find that the wavelength is approximately 1.16 × 10⁻³⁶ meters. The de Broglie wavelength concept is a fundamental principle in quantum mechanics, relating the wave-like properties of particles to their momentum.
It demonstrates the dual nature of matter and provides a way to quantify the wavelength associated with the motion of macroscopic objects, such as a person riding a bicycle.
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How far is your hometown from school? Express your answer using two significant figures. You are driving home from school steadily at 95 km/h for 100 km. It then begins to rain and you slow to 50 km/h. You arrive home after driving 3 hours and 20 minutes. Part B What was your average speed?
To calculate the distance from your school to your hometown, we can add the distance covered at a speed of 95 km/h and the distance covered at a speed of 50 km/h.
Distance covered at 95 km/h: 95 km/h * 100 km = 9500 km
Distance covered at 50 km/h: 50 km/h * (3 hours + 20 minutes) = 50 km/h * 3.33 hours = 166.5 km
Total distance = 9500 km + 166.5 km = 9666.5 km
Now, to calculate the average speed, we can divide the total distance by the total time taken.
Total time taken = 3 hours + 20 minutes = 3.33 hours
Average speed = Total distance / Total time taken
Average speed = 9666.5 km / 3.33 hours = 2901.51 km/h
Rounding to two significant figures, the average speed is approximately 2900 km/h.
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A gyroscope slows from an initial rate of 52.3rad/s at a rate of 0.766rad/s ^2
. (a) How long does it take (in s) to come to rest? 5 (b) How many revolutions does it make before stopping?
(a) The gyroscope takes approximately 68.25 seconds to come to rest, (b) The number of revolutions the gyroscope makes before stopping can be calculated by dividing the initial angular velocity by the angular acceleration. In this case, it makes approximately 34.11 revolutions.
(a) To determine how long it takes for the gyroscope to come to rest, we can use the formula:
ω final =ω initial +αt,
where ω final is the final angular velocity,
ω initial is the initial angular velocity,
α is the angular acceleration, and
t is the time taken.
Rearranging the formula, we have:
t = ω final −ω initial/α.
Plugging in the values, we find that it takes approximately 68.25 seconds for the gyroscope to come to rest.
(b) The number of revolutions the gyroscope makes before stopping can be calculated by dividing the initial angular velocity by the angular acceleration:
Number of revolutions = ω initial /α.
In this case, it makes approximately 34.11 revolutions before coming to rest.
The assumptions made in this calculation include constant angular acceleration and neglecting any external factors that may affect the motion of the gyroscope.
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a rectangular loop of wire carrying a 1.0A current and with a certian dimension is placed in a magnetic field of 0.80T. the magnitude of the torque acting on this wire when it makes a 30degree angle with thr field is 0.24 Nm. what is the area of this wire
the area of the wire is approximately 0.60 square meters.
The torque acting on a rectangular loop of wire in a magnetic field is given by the formula:
Torque = B * I * A * sin(θ)
where B is the magnetic field strength, I is the current, A is the area of the loop, and θ is the angle between the loop's normal vector and the magnetic field.
In this case, the torque is given as 0.24 Nm, the current is 1.0A, the magnetic field strength is 0.80T, and the angle is 30 degrees.
We can rearrange the formula to solve for the area A:
A = Torque / (B * I * sin(θ))
A = 0.24 Nm / (0.80 T * 1.0 A * sin(30°))
Using a calculator:
A ≈ 0.24 Nm / (0.80 T * 1.0 A * 0.5)
A ≈ 0.60 m²
Therefore, the area of the wire is approximately 0.60 square meters.
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Problem 4.91 A 72-kg water skier is being accelerated by a ski boat on a flat ("glassy") lake. The coefficient of kinetic friction between the skier's skis and the water surface is 4 = 0.24. (Figure 1) Figure 1 of 1 > FT 10. 2 Submit Previous Answers ✓ Correct Part B What is the skier's horizontal acceleration if the rope pulling the skier exerts a force of Fr=250 N on the skier at an upward angle 0 = 12°? Express your answer to two significant figures and include the appropriate units. μÀ ? m 0₂= 3.39 Submit Previous Answers Request Answer X Incorrect; Try Again; 22 attempts remaining < Return to Assignment Provide Feedback
The horizontal acceleration of the skier is 2.8 m/s² .
Here, T is the tension force, Fg is the weight of the skier and Fn is the normal force. Let us resolve the forces acting in the horizontal direction (x-axis) and vertical direction (y-axis): Resolving the forces in the vertical direction, we get: Fy = Fn - Fg = 0As there is no vertical acceleration.
Therefore, Fn = FgResolving the forces in the horizontal direction, we get: Fx = T sin 0 - Ff = ma, where 0 is the angle between the rope and the horizontal plane and Ff is the force of friction between the skier's skis and the water surface. Now, substituting the values, we get: T sin 0 - Ff = ma...(1).
Also, from the figure, we get: T cos 0 = Fr... (2).Now, substituting the value of T from equation (2) in equation (1), we get:Fr sin 0 - Ff = maFr sin 0 - m a g μ = m a.
By substituting the given values of the force Fr and the coefficient of kinetic friction μ, we get:ma = (250 sin 12°) - (72 kg × 9.8 m/s² × 0.24).
Hence, the horizontal acceleration of the skier is 2.8 m/s² (approximately).Part B: Answer more than 100 wordsThe horizontal acceleration of the skier is found to be 2.8 m/s² (approximately). This means that the speed of the skier is increasing at a rate of 2.8 m/s². As the speed increases, the frictional force acting on the skier will also increase. However, the increase in frictional force will not be enough to reduce the acceleration to zero. Thus, the skier will continue to accelerate in the horizontal direction.
Also, the angle of 12° is an upward angle which will cause a component of the tension force to act in the vertical direction (y-axis). This component will balance the weight of the skier and hence, there will be no vertical acceleration. Thus, the skier will continue to move in a straight line on the flat lake surface.
The coefficient of kinetic friction between the skier's skis and the water surface is given as 0.24. This implies that the frictional force acting on the skier is 0.24 times the normal force. The normal force is equal to the weight of the skier which is given as 72 kg × 9.8 m/s² = 705.6 N. Therefore, the frictional force is given as 0.24 × 705.6 N = 169.344 N. The tension force acting on the skier is given as 250 N. Thus, the horizontal component of the tension force is given as 250 cos 12° = 239.532 N. This force acts in the horizontal direction and causes the skier to accelerate. Finally, the horizontal acceleration of the skier is found to be 2.8 m/s² (approximately).
Thus, the horizontal acceleration of the skier is 2.8 m/s² (approximately).
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How far from her eye must a student hold a dime (d=18 mm) to just obscure her view of a full moon. The diameter of the moon is 3.5x 10³ km and is 384x10³ km away.
(18 / 1000) / [(3.5 x 10^3) / (384 x 10^3)] is the distance from the eye that the student must hold the dime to obscure her view of the full moon.
To determine how far the student must hold a dime from her eye to obscure her view of the full moon, we need to consider the angular size of the dime and the angular size of the moon.
The angular size of an object is the angle it subtends at the eye. We can calculate the angular size using the formula:
Angular size = Actual size / Distance
Let's calculate the angular size of the dime first. The diameter of the dime is given as 18 mm. Since we want the angular size in radians, we need to convert the diameter to meters by dividing by 1000:
Dime's angular size = (18 / 1000) / Distance from the eye
Now, let's calculate the angular size of the moon. The diameter of the moon is given as 3.5 x 103 km, and it is located 384 x 103 km away:
Moon's angular size = (3.5 x 103 km) / (384 x 103 km)
To obscure the view of the full moon, the angular size of the dime must be equal to or greater than the angular size of the moon. Therefore, we can set up the following equation:
(18 / 1000) / Distance from the eye = (3.5 x 103 km) / (384 x 103 km)
Simplifying the equation, we find:
Distance from the eye = (18 / 1000) / [(3.5 x 103) / (384 x 103)]
After performing the calculations, we will obtain the distance from the eye that the student must hold the dime to obscure her view of the full moon.
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< Questions of 24 A mass attached to the end of a spring is set in motion. The mass is observed to oscillate up and down, completing 24 complete cycles every 6.00 s What is the period of the oscillation? T = What is the frequency of the oscillation? HZ
The period of the oscillation is 0.25 s and the frequency of the oscillation is 4 Hz.
Given, The mass oscillates up and down, completing 24 complete cycles every 6.00 s.
We need to determine the period of the oscillation and the frequency of the oscillation.
How to find the period of the oscillation?
Period of the oscillation is defined as the time taken by one complete oscillation.
Mathematically, it is represented as:
T = (time taken for 1 cycle)/number of cycles
In this case,
Time taken for 1 cycle = 6/24
= 0.25 s
Number of cycles = 1
Hence,T = 0.25 s
Therefore, the period of the oscillation is 0.25 s.
How to find the frequency of the oscillation?
Frequency of the oscillation is defined as the number of cycles completed per unit time.
Mathematically, it is represented as:
f = (number of cycles)/time taken for the cycles
In this case, Number of cycles = 24
Time taken for the cycles = 6 s
Hence, f = 24/6
= 4 Hz
Therefore, the frequency of the oscillation is 4 Hz.
Thus, the period of the oscillation is 0.25 s and the frequency of the oscillation is 4 Hz.
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Given that the mass completes 24 complete cycles in 6.00 seconds. The frequency of oscillation is 4 Hz.
The given information can be represented as follows:
Number of cycles = 24
Time taken to complete 24 cycles = 6.00 s
Period of oscillation = T
Frequency of oscillation = f
We need to find the period of oscillation and frequency of oscillation for the given mass attached to the end of a spring oscillation problem.
Using the formula of period of oscillation,
we get:
T = time taken / number of cycles
T = 6.00 s / 24T = 0.25 s
Therefore, the period of oscillation is 0.25 s.
Using the formula of frequency,
we get:
f = number of cycles / time taken
f = 24 / 6.00 s = 4 Hz
Therefore, the frequency of oscillation is 4 Hz.
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Consider two 20Ω resistors and one 30Ω resistor. Find all possible equivalent resistances that can be formed using these resistors (include the cases of using just one resistor, any two resistors in various combinations, and all three resistors in various combinations.) Sketch the resistor arrangement for each case.
Possible equivalent resistances are as follows:
Using one resistor: 20Ω, 30Ω
Using two resistors: 40Ω, 50Ω, 60Ω, 10Ω, 13.33Ω, 20Ω
Using all three resistors: 70Ω
To find all possible equivalent resistances using the given resistors, we can consider different combinations of resistors in series and parallel arrangements. Here are the possible arrangements and their equivalent resistances:
Using one resistor:
20Ω resistor
30Ω resistor
Using two resistors:
a) Series arrangement:
20Ω + 20Ω = 40Ω (20Ω + 20Ω in series)
20Ω + 30Ω = 50Ω (20Ω + 30Ω in series)
30Ω + 20Ω = 50Ω (30Ω + 20Ω in series)
30Ω + 30Ω = 60Ω (30Ω + 30Ω in series)
b) Parallel arrangement:
10Ω (1 / (1/20Ω + 1/20Ω) in parallel)
13.33Ω (1 / (1/20Ω + 1/30Ω) in parallel)
13.33Ω (1 / (1/30Ω + 1/20Ω) in parallel)
20Ω (1 / (1/30Ω + 1/30Ω) in parallel)
Using all three resistors:
20Ω + 20Ω + 30Ω = 70Ω (20Ω + 20Ω + 30Ω in series)
Sketching the resistor arrangements for each case:
Using one resistor:
Single resistor: R = 20Ω
Single resistor: R = 30Ω
Using two resistors:
a) Series arrangement:
Two resistors in series: R = 40Ω
Resistor and series combination: R = 50Ω
Resistor and series combination: R = 50Ω
Two resistors in series: R = 60Ω
b) Parallel arrangement:
Two resistors in parallel: R = 10Ω
Resistor and parallel combination: R = 13.33Ω
Resistor and parallel combination: R = 13.33Ω
Two resistors in parallel: R = 20Ω
Using all three resistors:
Three resistors in series: R = 70Ω
Note: The resistor arrangements can be represented using circuit diagrams, where the resistors in series are shown in a straight line, and resistors in parallel are shown with parallel lines connecting them.
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S John is pushing his daughter Rachel in a wheelbarrow when it is stopped by a brick of height h (Fig. P12.21). The handles make an angle of \theta with the ground. Due to the weight of Rachel and the wheelbarrow, a downward force m g is exerted at the center of the wheel, which has a radius R. (b) What are the components of the force that the brick exerts on the wheel just as the wheel begins to lift over the brick? In both parts, assume the brick remains fixed and does not slide along the ground. Also assume the force applied by John is directed exactly toward the center of the wheel.
The components of the force that the brick exerts on the wheel just as the wheel begins to lift over the brick are a normal force (N) and a horizontal force (F).
The normal force acts perpendicular to the surface of the brick and supports the weight of the wheel and Rachel. The horizontal force acts in the direction opposite to the motion of the wheelbarrow.
The magnitude of the normal force can be calculated as N = mg, where m is the mass of the wheelbarrow and Rachel, and g is the acceleration due to gravity.
The magnitude of the horizontal force can be calculated as F = mg tan(θ), where θ is the angle made by the handles with the ground.
These two forces together provide the necessary support and resistance for the wheelbarrow to lift over the brick.
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Measurement
Value (in degrees)
Angle of incidence
(First surface)
37
Angle of refraction
(First surface)
25
Angle of incidence
(Second surface)
25
Angle of refraction
(Second surface)
37
Critical Angle
40
Angle of minimum
Deviation (narrow end)
30
Angle of prism
(Narrow end)
45
Angle of minimum
Deviation (wide end)
45
Angle of prism (wide end)
60
CALCULATION AND ANALYSIS
1. Measure the angles of incidence and refraction at both surfaces of the prism in the tracings of procedures step 2 and 3. Calculate the index of refraction for the Lucite prism from these measurements.
2. Measure the critical angle from the tracing of procedure step 4. Calculate the index of refraction for the Lucite prism from the critical angle.
3. Measure the angle of minimum deviation δm and the angle of the prism α from each tracing of procedure step 5. Calculate the index of refraction for the Lucite prism from these angles.
4. Find the average (mean) value for the index of refraction of the prism.
5. Calculate the velocity of light in the prism.
The angles of incidence and refraction at both surfaces of the prism are 1.428 and 0.7. The index of refraction using the critical angle is 1.56. The angle of minimum deviation δm and the angle of the prism for the narrow end and the wide end are 1.414 and 1.586. The index of refraction for the Lucite prism from these angles is 1.2776. The velocity of light in the prism is 2.35 × 10⁸m/s.
1) Using Snell's law: n = sin(angle of incidence) / sin(angle of refraction)
For the first surface:
n₁ = sin(37°) / sin(25°) = 1.428
For the second surface:
n₂ = sin(25°) / sin(37°) = 0.7
The angles of incidence and refraction at both surfaces of the prism are 1.428 and 0.7.
2) The index of refraction using the critical angle:
n(critical) = 1 / sin(critical angle)
n(critical) = 1 / sin(40) = 1.56
The index of refraction using the critical angle is 1.56.
3) For the narrow end:
n(narrow) = sin((angle of minimum deviation + angle of prism) / 2) / sin(angle of prism / 2)
n(narrow) = 0.707 / 0.5 = 1.414
For the wide end:
n(wide) = sin((angle of minimum deviation + angle of prism) / 2) / sin(angle of prism / 2)
n(wide) = 0.793 / 0.5 = 1.586
The angle of minimum deviation δm and the angle of the prism for the narrow end and the wide end are 1.414 and 1.586.
4) Calculation of the average index of refraction:
n(average) = (n₁ + n₂ + n(critical) + n(narrow) + n(wide)) / 5
n(average) = 1.2776
The index of refraction for the Lucite prism from these angles is 1.2776.
5) The velocity of light in a medium is given by: v = c / n
v(prism) = c / n(average)
v(prism) = 3 × 10⁸ / 1.2776 = 2.35 × 10⁸m/s.
The velocity of light in the prism is 2.35 × 10⁸m/s.
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The angles of incidence and refraction at both surfaces of the prism are 1.428 and 0.7. The index of refraction using the critical angle is 1.56. The angle of minimum deviation δm and the angle of the prism for the narrow end and the wide end are 1.414 and 1.586. The index of refraction for the Lucite prism from these angles is 1.2776. The velocity of light in the prism is 2.35 × 10⁸m/s.
1) Using Snell's law: n = sin(angle of incidence) / sin(angle of refraction)
For the first surface:
n₁ = sin(37°) / sin(25°) = 1.428
For the second surface:
n₂ = sin(25°) / sin(37°) = 0.7
The angles of incidence and refraction at both surfaces of the prism are 1.428 and 0.7.
2) The index of refraction using the critical angle:
n(critical) = 1 / sin(critical angle)
n(critical) = 1 / sin(40) = 1.56
The index of refraction using the critical angle is 1.56.
3) For the narrow end:
n(narrow) = sin((angle of minimum deviation + angle of prism) / 2) / sin(angle of prism / 2)
n(narrow) = 0.707 / 0.5 = 1.414
For the wide end:
n(wide) = sin((angle of minimum deviation + angle of prism) / 2) / sin(angle of prism / 2)
n(wide) = 0.793 / 0.5 = 1.586
The angle of minimum deviation δm and the angle of the prism for the narrow end and the wide end are 1.414 and 1.586.
4) Calculation of the average index of refraction:
n(average) = (n₁ + n₂ + n(critical) + n(narrow) + n(wide)) / 5
n(average) = 1.2776
The index of refraction for the Lucite prism from these angles is 1.2776.
5) The velocity of light in a medium is given by: v = c / n
v(prism) = c / n(average)
v(prism) = 3 × 10⁸ / 1.2776 = 2.35 × 10⁸m/s.
The velocity of light in the prism is 2.35 × 10⁸m/s.
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a A musician with perfect pitch stands beside a roadway. She hears a pitch of 1090 Hz when a siren on an emergency vehicle approaches and a frequency of 900 Hz when it passes. a. What is the frequency of the siren if it were stationary? b. What is the speed of the vehicle?
The frequency of the siren when it is stationary is 1000 Hz and the speed of the vehicle is 34 m/s.
a) When the siren approaches, the musician hears a higher frequency of 1090 Hz. This is due to the Doppler effect, which causes the perceived frequency to increase when the source of sound is moving towards the observer. Similarly, when the siren passes, the musician hears a lower frequency of 900 Hz.
To find the frequency of the siren when it is stationary, we can calculate the average of the two observed frequencies:
[tex]\frac{(1090Hz+900Hz)}{2} =1000Hz[/tex]
b) The Doppler effect can also be used to determine the speed of the vehicle. The formula relating the observed frequency (f), source frequency ([tex]f_0[/tex]), and the speed of the source (v) is given by:
[tex]f=\frac{f_0(v+v_0)}{(v-v_s)}[/tex]
In this case, we know the observed frequencies (1090 Hz and 900 Hz), the source frequency (1000 Hz), and the speed of sound in air (343 m/s). By rearranging the formula and solving for the speed of the vehicle (v), we find:
[tex]v=\frac{(\frac{f}{f_0}-1)v_s}{\frac{f}{f_0}+1}}[/tex]
Substituting the known values, we get:
[tex]v=\frac{(\frac{1090}{1000}-1)343}{\frac{1090}{1000}+1}=34 m/s[/tex]
Therefore, the speed of the vehicle is approximately 34 m/s.
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Х Suppose a distant world with surface gravity of 6.56 m/s2 has an atmospheric pressure of 8.52 x 104 Pa at the surface. (a) What force is exerted by the atmosphere on a disk-shaped region 2.00 m in radius at the surface of a methane ocean? N (b) What is the weight of a 10.0-m deep cylindrical column of methane with radius 2.00 m? Note: The density of liquid methane is 415 kg/m3. N (c) Calculate the pressure at a depth of 10.0 m in the methane ocean. Pa
Formula to calculate force F exerted by the atmosphere on a disk-shaped region is:
(a) 2.03 x 105 N
(b) 1.30 x 108 N
(c) 4.19 x 105 Pa
F = PA
Here, atmospheric pressure P = 8.52 × 104 Pa
Radius of the disk-shaped region r = 2.00 m
Force exerted F = PA = (8.52 × 104) × (πr2)
= (8.52 × 104) × (π × 2.00 m × 2.00 m)
= 2.03 x 105 N
2.03 x 105 N
b) Weight of the column of methane can be calculated as:
Weight = Density × Volume × g
Where, Density of liquid methane = 415 kg/m3
Volume of the cylindrical column V = (πr2h) = πr2 × h = (π × 2.00 m × 2.00 m) × 10.0 m
= 125.6 m3
g = acceleration due to gravity = 6.56 m/s2
Weight of the cylindrical column = Density × Volume × g
= 415 kg/m3 × 125.6 m3 × 6.56 m/s2
= 1.30 x 108 N
1.30 x 108 Nc)Pressure at a depth of 10.0 m in the methane ocean can be calculated as:
P = P0 + ρgh
Where, P0 = atmospheric pressure = 8.52 × 104 Pa
Density of liquid methane = 415 kg/m3
g = acceleration due to gravity = 6.56 m/s2
Depth of the methane ocean h = 10.0 m
Substituting the values in the formula:
P = P0 + ρgh
= 8.52 × 104 Pa + (415 kg/m3) × (6.56 m/s2) × (10.0 m)
= 4.19 x 105 Pa
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A gas is held in a container with volume 4.5 m3, and the pressure inside the container is measured to be 300 Pa. What is the pressure, in the unit of kPa, when this gas is compressed to 0.58 m3? Assume that the temperature of the gas does not change.
Considering the Boyle's law, the pressure when this gas is compressed to 0.58 m³ is 2.33 kPa.
Definition of Boyle's lawBoyle's law states that the volume is inversely proportional to the pressure when the temperature is constant: if the pressure increases, the volume decreases, while if the pressure decreases, the volume increases.
Mathematically, Boyle's law states that if the amount of gas and the temperature remain constant, the product of the pressure times the volume is constant:
P×V=k
where
P is the pressure.V is the volume.k is a constant.Considering an initial state 1 and a final state 2, it is fulfilled:
P₁×V₁=P₂×V₂
Final pressureIn this case, you know:
P₁= 300 Pa= 0.3 kPa (being 1 Pa= 0.001 kPa)V₁= 4.5 m³P₂= ?V₂= 0.58 m³Replacing in Boyle's law:
0.3 kPa×4.5 m³=P₂×0.58 m³
Solving:
(0.3 kPa×4.5 m³)÷0.58 m³=P₂
2.33 kPa=P₂
Finally, the pressure is 2.33 kPa.
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Near the surface of Venus, the rms speed of carbon dioxide molecules (CO₂) is 650 m/s. What is the temperature (in kelvins) of the atmosphere at that point? Ans.: 750 K 11.7 Suppose that a tank contains 680 m³ of neon at an absolute pressure of 1,01 x 10 Pa. The temperature is changed from 293.2 to 294,3 K. What is the increase in the internal energy of the neon? Ans.: 3,9 x 10³ J 11.8 Consider two ideal gases, A and B at the same temperature. The rms speed of the molecules of gas A is twice that of gas B. How does the molecular mass of A compare to that of B? Ans 4 11.9 An ideal gas at 0 °C is contained within a rigid vessel. The temperature of the gas is increased by 1 C. What is P/P, the ratio of the final to initial pressure? Ans.: 1,004
1. The temperature of the atmosphere near the surface of Venus, where the rms speed of carbon dioxide molecules is 650 m/s, is approximately 750 K.
2. The increase in the internal energy of neon in a tank, when the temperature changes from 293.2 K to 294.3 K, is approximately 3.9 x 10³ J.
3. When comparing two ideal gases A and B at the same temperature, if the rms speed of gas A is twice that of gas B, the molecular mass of gas A is approximately four times that of gas B.
4. For an ideal gas contained within a rigid vessel at 0 °C, when the temperature of the gas is increased by 1 °C, the ratio of the final pressure to the initial pressure (P/P) is approximately 1.004.
1. The temperature of a gas is related to the rms (root-mean-square) speed of its molecules. Using the formula for rms speed and given a value of 650 m/s, the temperature near the surface of Venus is calculated to be approximately 750 K.
2. The increase in internal energy of a gas can be determined using the equation ΔU = nCvΔT, where ΔU is the change in internal energy, n is the number of moles of gas, Cv is the molar specific heat capacity at constant volume, and ΔT is the change in temperature. Since the volume is constant, the change in internal energy is equal to the heat transferred. By substituting the given values, the increase in internal energy of neon is found to be approximately 3.9 x 10³ J.
3. The rms speed of gas molecules is inversely proportional to the square root of their molecular mass. If the rms speed of gas A is twice that of gas B, it implies that the square root of the molecular mass of gas A is twice that of gas B. Squaring both sides, we find that the molecular mass of gas A is approximately four times that of gas B.
4. According to the ideal gas law, PV = nRT, where P is the pressure, V is the volume, n is the number of moles, R is the ideal gas constant, and T is the temperature. As the volume is constant, the ratio of the final pressure to the initial pressure (P/P) is equal to the ratio of the final temperature to the initial temperature (T/T). Given a change in temperature of 1 °C, the ratio is calculated to be approximately 1.004.
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