Answer: (1) object distance = -18cms
(2)Size = 1.67cms.
(3)Image: real
(4)Orientation: upright
(5)magnification = 1/3
Magnitude of the radius of curvature = 18.0 cm
Object height, h = 5.0 cm
Image distance, v = -6.0 cm (negative because the image is formed on the same side of the object)
1) Object distance: 1/f = 1/v - 1/u
Where, f = focal length of the mirror. For a spherical mirror, the focal length is given by:
f = R/2 Where, R = radius of curvature of the mirror.
For a concave mirror, the focal length is negative. R = -18.0 cm, f = -9.0 cmv = -6.0 cm
1/-9 = 1/-6 - 1/u1/u
= 1/-9 + 1/-6u
= -18.0 cm (negative because the object is placed on the same side of the mirror as the image)
Therefore, the object distance is -18.0 cm.
2) Size of the image, h' = ?
The magnification of the mirror is given by:
m = -v/u Where, m = magnification of the image. For a concave mirror, the magnification is negative. v = -6.0 cm, u = -18.0 cm. m = -6/-18 = 1/3This means that the image is one-third the size of the object.
h' = m × hh' = (1/3) × 5.0h' = 1.67 cm.
Therefore, the size of the image is 1.67 cm.
3) Type of image: the image is formed on the same side of the mirror as the object. Therefore, the image is virtual.
4) Orientation of the image: The magnification is positive, which means that the image is upright.
5) Magnification of the image, m = ?We have already calculated the magnification of the image, which is:
m = -v/u = -(-6)/(-18) = 1/3.
Therefore, the magnification of the image is 1/3.
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Considering motion with a constant velocity, what happens to changes in distance during equal time intervals? (1 mark) 7. Considering motion with a non-constant velocity, what happens to changes in distance during equal time internals? (1 mark) 8. You run 100 meters in 15 seconds. What is your speed in m/s? (1 mark) 9. In a race, you run 3000 meters east in 21 minutes. What is your speed in km/min? (2 marks) 10. What is the difference between velocity and speed? Give an example. (2 marks) 6. Considering motion with a constant velocity, what happens to changes in distance during equal time intervals? (1 mark) 7. Considering motion with a non-constant velocity, what happens to changes in distance during equal time internals? (1 mark) 8. You run 100 meters in 15 seconds. What is your speed in m/s? (1 mark) 9. In a race, you run 3000 meters east in 21 minutes. What is your speed in km/min? (2 marks) 10. What is the difference between velocity and speed? Give an example. (2 marks) 6. Considering motion with a constant velocity, what happens to changes in distance during equal time intervals? (1 mark) 7. Considering motion with a non-constant velocity, what happens to changes in distance during equal time internals? (1 mark) 8. You run 100 meters in 15 seconds. What is your speed in m/s? (1 mark) 9. In a race, you run 3000 meters east in 21 minutes. What is your speed in km/min? (2 marks) 10. What is the difference between velocity and speed? Give an example. (2 marks) 6. Considering motion with a constant velocity, what happens to changes in distance during equal time intervals? (1 mark) 7. Considering motion with a non-constant velocity, what happens to changes in distance during equal time internals? (1 mark) 8. You run 100 meters in 15 seconds. What is your speed in m/s? (1 mark) 9. In a race, you run 3000 meters east in 21 minutes. What is your speed in km/min? (2 marks) 10. What is the difference between velocity and speed? Give an example. (2 marks) 6. Considering motion with a constant velocity, what happens to changes in distance during equal time intervals? (1 mark) 7. Considering motion with a non-constant velocity, what happens to changes in distance during equal time internals? (1 mark) 8. You run 100 meters in 15 seconds. What is your speed in m/s? (1 mark) 9. In a race, you run 3000 meters east in 21 minutes. What is your speed in km/min? (2 marks) 10. What is the difference between velocity and speed? Give an example. (2 marks) 6. Considering motion with a constant velocity, what happens to changes in distance during equal time intervals? (1 mark) 7. Considering motion with a non-constant velocity, what happens to changes in distance during equal time internals? (1 mark) 8. You run 100 meters in 15 seconds. What is your speed in m/s? (1 mark) 9. In a race, you run 3000 meters east in 21 minutes. What is your speed in km/min? (2 marks) 10. What is the difference between velocity and speed? Give an example. (2 marks) 6. Considering motion with a constant velocity, what happens to changes in distance during equal time intervals? (1 mark) 7. Considering motion with a non-constant velocity, what happens to changes in distance during equal time internals? (1 mark) 8. You run 100 meters in 15 seconds. What is your speed in m/s? (1 mark) 9. In a race, you run 3000 meters east in 21 minutes. What is your speed in km/min? (2 marks) 10. What is the difference between velocity and speed? Give an example. (2 marks)
the displacement is 50 km to the east because it is the shortest distance between the initial and final position. However, the total distance traveled is 150 km.
6. For an object moving with a constant velocity, the distance traveled during equal time intervals is the same. It means that the object covers the same distance after every fixed interval of time. 7. For an object moving with a non-constant velocity, the distance traveled during equal time intervals varies.
It means that the object does not cover the same distance after every fixed interval of time. 8. The speed of running 100 meters in 15 seconds can be found by dividing the distance by the time taken:Speed = Distance / Time= 100 / 15= 6.67 m/s.9. To calculate the speed of running 3000 meters east in 21 minutes in km/min, we need to convert the distance to km and the time to minutes:
Speed = Distance / Time= (3000 m / 1000) / (21 min / 60)= 0.238 km/min. 10. Speed is the rate of change of distance while velocity is the rate of change of displacement. Displacement is the shortest distance between the initial and final position of an object in a particular direction. For example, if a car moves 100 km to the east and then turns back and moves 50 km to the west,
the displacement is 50 km to the east because it is the shortest distance between the initial and final position. However, the total distance traveled is 150 km.
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A series RLC circuit consists of a 65 Ω resistor, a 0.10 H inductor, and a 20 μF capacitor. It is attached to a 120 V/60 Hz power line. Part A
What is the peak current I at this frequency? Express your answer with the appropriate units. I = ________ Value __________ Units Part B What is the phase angle ∅? Express your answer in degrees. ∅= ______________
The peak current (I) at this frequency is approximately 1.04 A and the phase angle (∅) is approximately -63.69 degrees.
Part A:
First, let's calculate the reactance values:
The inductive reactance (XL) can be calculated using the formula:
XL = 2πfL
Substituting the given values:
XL = 2π * 60 * 0.10 = 37.68 Ω
The capacitive reactance (XC) can be calculated using the formula:
XC = 1 / (2πfC)
Substituting the given values:
XC = 1 / (2π * 60 * 20 * 10^(-6)) = 132.68 Ω
Next, let's calculate the impedance (Z):
Z = √(R^2 + (XL - XC)^2)
Substituting the given values:
Z = √(65^2 + (37.68 - 132.68)^2) = √(4225 + (-95)^2) = √(4225 + 9025) = √13250 ≈ 115.24 Ω
Now, we can calculate the peak current (I):
I = V / Z
Substituting the given voltage value:
I = 120 / 115.24 ≈ 1.04 A
Therefore, the peak current (I) at this frequency is approximately 1.04 A.
Part B:
To find the phase angle (∅), we can use the formula:
∅ = tan^(-1)((XL - XC) / R)
Substituting the calculated values:
∅ = tan^(-1)((37.68 - 132.68) / 65) ≈ -63.69°
Therefore, the phase angle (∅) is approximately -63.69 degrees.
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An airplane traveling at half the speed of sound (v = 172 m/s) emits a sound of frequency 6.00 kHz. At what frequency does a stationary listener hear the sound as the plane approaches?
An airplane traveling at half the speed of sound (v = 172 m/s) emits a sound of frequency 6.00 kHz. The stationary listener will hear the sound with a frequency of approximately 3,000 Hz as the plane approaches.
To calculate the frequency heard by a stationary listener as the plane approaches, we can use the concept of the Doppler effect. The Doppler effect describes the change in frequency of a wave perceived by an observer when there is relative motion between the source of the wave and the observer.
In this case, the airplane is approaching the stationary listener, so the frequency heard by the listener will be higher than the emitted frequency.
The formula for the Doppler effect in the case of sound waves is given by:
f' = f × (v + v_listener) / (v + v_source)
where:
f' is the frequency observed by the listener,
f is the frequency emitted by the airplane,
v is the speed of sound in air (approximately 343 m/s),
v_listener is the velocity of the listener (which is zero in this case),
v_source is the velocity of the source (airplane).
Given:
f = 6.00 kHz = 6,000 Hz (frequency emitted by the airplane),
v = 172 m/s (speed of the airplane),
v_listener = 0 m/s (velocity of the stationary listener).
Substituting the values into the formula, we have:
f' = 6,000 Hz * (172 m/s + 0 m/s) / (172 m/s + 0.5 * 343 m/s)
Simplifying the expression gives us the frequency observed by the stationary listener (f'). Let's calculate it:
f' = 6,000 Hz * (172 m/s) / (172 m/s + 171.5 m/s)
f' ≈ 6,000 Hz * 0.5 ≈ 3,000 Hz
Therefore, the stationary listener will hear the sound with a frequency of approximately 3,000 Hz as the plane approaches.
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A helium-filled balloon escapes a child's hand at sea level and 22.1°C. When it reaches an altitude of 3600 m, where the temperature is 4.6°C and the pressure is only 0.72 atm, how will its volume compare to that at sea level? Express your answer using two significant figures.
The volume of the helium-filled balloon at an altitude of 3600 m is approximately 1.41 times the volume at sea level.
To determine how the volume of the helium-filled balloon at an altitude of 3600 m compares to its volume at sea level, we can use the ideal gas law. The ideal gas law states:
PV = nRT
where:
P is the pressure,
V is the volume,
n is the number of moles of gas,
R is the ideal gas constant, and
T is the temperature in Kelvin.
To compare the volumes, we can write the ideal gas law equation for the balloon at sea level (subscript "1") and at an altitude of 3600 m (subscript "2"):
P₁V₁ = n₁RT₁
P₂V₂ = n₂RT₂
The number of moles and the gas constant are the same for both equations, so we can equate them:
P₁V₁/T₁ = P₂V₂/T₂
We want to compare the volumes, so we can rearrange the equation as:
V₂/V₁ = (P₁/P₂) * (T₂/T₁)
Given:
P₁ = 1 atm
T₁ = 22.1°C = 22.1 + 273.15 = 295.25 K
P₂ = 0.72 atm
T₂ = 4.6°C = 4.6 + 273.15 = 277.75 K
Substituting these values into the equation, we can solve for V₂/V₁:
V₂/V₁ = (1 atm / 0.72 atm) * (277.75 K / 295.25 K)
Calculating the right-hand side of the equation, we find:
V₂/V₁ ≈ 1.41
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A capacitor is connected to an AC source. If the maximum current in the circuit is 0.520 A and the voltage from the AC source is given by Av = (96.6 V) sin((701)s1], determine the following. (a) the rms voltage (in V) of the source V (b) the frequency (in Hz) of the source Hz (c) the capacitance (in uF) of the capacitor PF
A capacitor is connected to an AC source. the RMS voltage of the source is approximately 0.367 V. the frequency of the source is 701 Hz. the capacitance of the capacitor is approximately 125.76 μF.
Given:
Maximum current, I_max = 0.520 A
Voltage from AC source, V = (96.6 V) sin((701)t)
To determine the required values, we can use the properties of AC circuits and the relationship between current, voltage, and capacitance.
(a) The RMS voltage (V_rms) can be calculated using the formula:
V_rms = I_max / √2
Substituting the given values:the capacitance of the capacitor is approximately 125.76 μF.
V_rms = 0.520 A / √2 ≈ 0.367 A
Therefore, the RMS voltage of the source is approximately 0.367 V.
(b) The frequency (f) of the source can be determined from the given expression:
V = (96.6 V) sin((701)t)
The general equation for a sinusoidal waveform is V = V_max sin(2πft), where f represents the frequency.
Comparing the given expression to the general equation, we can see that the frequency is 701 Hz.
Therefore, the frequency of the source is 701 Hz.
(c) The capacitance (C) of the capacitor can be calculated using the formula:
I_max = 2πfCV_max
Rearranging the equation, we get:
C = I_max / (2πfV_max)
Substituting the given values:
C = 0.520 A / (2π * 701 Hz * 96.6 V)
Converting the units, we find:
C ≈ 125.76 μF
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Two long parallel wires carry currents of 7.0 A in opposite
directions. They are separated by 80.0 cm. What is the magnetic
field (in T) in between the wires at a point that is 27.0 cm from
one wire?
When two long parallel wires carry current in opposite directions, they will produce a magnetic field.
The formula to determine the magnetic field is given as follows:
B = µI/(2πr)
In the given problem,µ = 4π x 10⁻⁷ Tm/AT is the permeability of free space
I = 7 A is the current in each wire
The distance between the wires is 80 cm, which is equivalent to 0.80 m.
The magnetic field at a point located 27.0 cm from one wire can be calculated by applying the above formula.
Substitute the known values into the equation:
B = (4π x 10⁻⁷ Tm/AT) x (7.0 A)/[2π(0.27 m)]
B = 5.5 x 10⁻⁴ T
Therefore, the magnetic field at a point that is 27.0 cm from one wire is 5.5 x 10⁻⁴ T in between the wires.
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Find the flux of the Earth's magnetic field of magnitude 5.00 ✕ 10-5 T, through a square loop of area 10.0 cm2 for the following.
(a) when the field is perpendicular to the plane of the loop
T·m2
(b) when the field makes a 60.0° angle with the normal to the plane of the loop
T·m2
(c) when the field makes a 90.0° angle with the normal to the plane
T·m2
To find the flux of the Earth's magnetic field through a square loop of area 10.0 cm^2, we need to consider the angle between the magnetic field and the normal plane of the loop.
The flux is given by the product of the magnetic field magnitude and the component of the field perpendicular to the loop, multiplied by the area of the loop.
(a) When the magnetic field is perpendicular to the plane of the loop, the flux is given by the formula Φ = B * A, where B is the magnetic field magnitude and A is the area of the loop. Substituting the given values, we can calculate the flux.
(b) When the magnetic field makes a 60.0° angle with the normal to the plane of the loop, the flux is given by the formula Φ = B * A * cos(θ), where θ is the angle between the magnetic field and the normal to the plane. By substituting the given values, we can calculate the flux.
(c) When the magnetic field makes a 90.0° angle with the normal to the plane, the flux is zero since the magnetic field is parallel to the plane and does not intersect it.
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A 7.8 cm diameter horizontal pipe gradually narrows to 4.8 cm . When water flows through this pipe at a certain rate, the gauge pressure in these two sections is 35.0 kPa and 21.0 kPa , respectively.
What is the volume rate of flow?
Bernoulli’s equation P₁ + ρgh₁ + 1/2 ρv₁² = P₂ + ρgh₂ + 1/2 ρv₂² Where; P₁ + 1/2 ρv₁² = pressure at point. Therefore, The volume rate of flow is 0.02 m³/s.
Diameter of horizontal pipe = 7.8 cm, Gradual narrowing to 4.8 cm. Gauge pressure in 1st section = 35.0 kPa, Gauge pressure in 2nd section = 21.0 kPa. The volume rate of flow is 0.02 m³/s.
Bernoulli’s equation P₁ + ρgh₁ + 1/2 ρv₁² = P₂ + ρgh₂ + 1/2 ρv₂²
Where;P₁ + 1/2 ρv₁² = pressure at point 1P₂ + 1/2 ρv₂² = pressure at point 2ρ = density of waterh₁ = height of water column at point 1h₂ = height of water column at point 2v₁ = velocity of water at point 1v₂ = velocity of water at point 2We are going to neglect the elevation difference between point 1 and point 2.
Now let's simplify the Bernoulli’s equation.P₁ + 1/2 ρv₁² = P₂ + 1/2 ρv₂²........(1)We know the diameter of the pipe at point 1 and point 2 but we are not given the velocity.
We can use the continuity equation to find velocity; A₁v₁ = A₂v₂A₁ = π(0.078/2)² = 0.0048 m², A₂ = π(0.048/2)² = 0.0018 m², A₁v₁ = A₂v₂v₂ = A₁v₁ / A₂ = 0.0048v₁ / 0.0018 = 13.33v₁
Now, we have found v₂ in terms of v₁. Substitute this value in equation (1) and simplify;P₁ + 1/2 ρv₁² = P₂ + 1/2 ρ (13.33v₁)²P₁ - P₂ = 1/2 ρ [(13.33)² - 1]v₁²ρ = 1000 kg/m³ (density of water at room temperature)P₁ - P₂ = 1/2 × 1000 × [(13.33)² - 1]v₁²P₁ - P₂ = 92,847v₁²........(2)
We have two equations (1) and (2) and two variables v₁ and P₁. Solve them simultaneously.
Let's rearrange equation (2) to find P₁;P₁ = P₂ + 92,847v₁²Plug this value of P₁ in equation (1) and
simplify ;
P₂ + 1/2 ρv₁²
= P₂ + 1/2 ρ (13.33v₁)² - 92,847v₁²1/2 ρ [(13.33)² - 1]v₁² = P₂ - P₂ + 92,847v₁²1/2 × 1000 × [(13.33)² - 1]v₁²
= 92,847v₁²v₁
= √[2(21 - 35) × 1000 / [(13.33)² - 1]]
= 2.68 m/s
Now, we have found the velocity of water. Let's find the volume rate of flow;Q = A₁v₁Q = π(0.078/2)² × 2.68Q = 0.000102 m³/s
The volume rate of flow is 0.02 m³/s.
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In which of the following situations might you expect diffraction to be important? Remem- ber to briefly explain how. A: Taking a photograph of a distant star.
B: Seeing a rainbow after a storm. C: Seeing the swirling colors in a soap bubble. D: Seeing stunning colors in the feathers of a bird. E: Measuring the angular dependence of x-ray transmission through a crystal.
The situation that might require diffraction is E) Measuring the angular dependence of x-ray transmission through a crystal.
Diffraction is the deviation of waves, like light, from their course or direction of propagation by the obstacles in their path. Based on this concept, one can assume that diffraction occurs when there is an obstruction in the path of a wave. Let's analyze the given options to find out which situation diffraction is most likely to occur:
A) Taking a photograph of a distant star - In this situation, diffraction might not be essential since there are no barriers present between the camera and the star that can cause any deviation in the path of the light waves.
B) Seeing a rainbow after a storm - When the sunrays pass through water droplets in the air, diffraction of light waves occurs, causing the rainbow.
C) Seeing the swirling colors in a soap bubble - When the light waves enter a soap bubble, the waves encounter the barrier of the bubble wall and diffract in different directions, creating the swirling colors we see.
D) Seeing stunning colors in the feathers of a bird - Diffraction of light occurs when light rays hit the microscopic structures on the feathers that diffract light waves in a way that appears as a range of colors.
E) Measuring the angular dependence of x-ray transmission through a crystal - This method is used to observe diffraction patterns of x-rays through the crystal lattice structure.
Thus, this situation explicitly demands diffraction.
Consequently, from the given options, the situation that might require diffraction is E) Measuring the angular dependence of x-ray transmission through a crystal.
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What is the value of the flux of a uniform electric field Ē = (-240 NIC) î + (-160 NIC)ġ + (+390 NIC) & across a flat surface with ds = (-1.1 m2)i + (4.2 m2)j + (2.4 m2) k? b) What is the angle between Ē and ds c) What is the projection of ds on the plane perpendicular to Ē?
The value of flux of a uniform electric field is 402 Nm²/C, the angle between Ē and ds is 37.16º and the projection of ds on the plane perpendicular to Ē is 6.32 m².
a) We know that
Flux of electric field = (electric field) * (area)
Φ = Ē.ds
Where,
Ē = (-240 NIC) î + (-160 NIC)ġ + (+390 NIC)
ds = (-1.1 m²)i + (4.2 m²)j + (2.4 m²) k
Φ = (-240 × (-1.1)) + (-160 × (4.2)) + (390 × 2.4)
Φ = 402 Nm²/C
b) To find the angle between Ē and ds, we use the formula,
cos θ = Ē.ds/Ē.ds
cos θ = (Ē.ds) / Ē.Ē
Where,
Ē.ds = (-240 × (-1.1)) + (-160 × (4.2)) + (390 × 2.4) = 402 Nm²/C
Ē.Ē = √[(-240)² + (-160)² + (390)²] = 481 N/C
Therefore, cos θ = 402/481
θ = cos⁻¹ (402/481)θ = 37.16º
c) We know that
Projection of ds on the plane perpendicular to Ē = ds cosθ
Where,
θ = 37.16º
ds = (-1.1 m²)i + (4.2 m²)j + (2.4 m²) k
ds cosθ = (-1.1 m²) cos 37.16º + (4.2 m²) cos 37.16º + (2.4 m²) cos 37.16º
ds cosθ = 1.32 + 3.19 + 1.81
ds cosθ = 6.32 m²
Therefore, the projection of ds on the plane perpendicular to Ē is 6.32 m².
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This system starts from rest. M1 moves up the incline plane 8 m in 4 seconds. What is m1 's acceleration? m/s ∧
5 4 8 12 1 Question 2 If the mass of m1 is 30 kg, what is the sum of forces parallel to the incline? N 30 40 50 The kinetic coefficient of friction between m1 and the plane is 0.4 and the angle of the incline is 53 degrees, what is the tension in the cable? Assume acceleration due to gravity is 10 m/s ∧
2 41.2 51.2 61.2 71.2 Question 4 1 pts How much work does friction do? 7.2 −7.2 57.6 −57.6 What is the required mass for m2? kg 5.4 5.8 6.8
Question 1: the acceleration of m1 is 2 m/s^2.
Question 2:the sum of forces parallel to the incline is 120 N. Question 3:the tension in the cable is 61.2 N. Question 4: the required mass for m2 is 6.8 kg.
Question 1:Given,m1 = ?v1 = 0s = 4td1 = 8mNow, to find the acceleration of m1Acceleration formula, v = u + atv1 = u1 + a x 4where u1 = 0 as it starts from restv1 = a x 4a = v1/4a = 8/4a = 2m/s^2Therefore, the acceleration of m1 is 2 m/s^2.
Question 2:Given,Mass of m1 = 30 kgTo find the sum of forces parallel to the inclineWe need to calculate the force of friction Frictional force, F = μRwhere μ = 0.4R = mgR = 30 x 10R = 300 NTherefore,F = μR = 0.4 x 300F = 120 NTherefore, the sum of forces parallel to the incline is 120 N.
Question 3:Given,Mass of m1 = 30 kgKinetic coefficient of friction, μk = 0.4Angle of the incline, θ = 53°Tension in the cable = ?Acceleration due to gravity = g = 10 m/s^2We can resolve the forces acting on m1 as shown in the figure below:Here, Fp is the parallel force, Fn is the normal force, and T is the tension in the cable.
The equations of motion in the vertical and horizontal directions can be written as follows:Vertical direction:Fn – mg = 0Fn = mgFn = 30 x 10Fn = 300 NHence, the normal force, Fn = 300 NHorizontal direction:Fp – Ff – T = maFp = m1g sinθFf = μkFnFp = 30 x 10 x sin 53°Fp = 232.7 NAnd,Ff = μkFnFf = 0.4 x 300Ff = 120 NTotal force acting on the object,F = Fp – Ff – TTherefore,30 x 10 x sin 53° – 0.4 x 300 – T = 30 x 2T = 61.2 NTherefore, the tension in the cable is 61.2 N.
Question 4:Given,Work done by friction = ?Distance travelled by m1 = d1 = 8 mCoefficient of kinetic friction, μk = 0.4The work done by friction can be calculated as follows:Work done by friction = force of friction x distance= Ff x d1where,Ff = μkFnFf = 0.4 x 300Ff = 120 NTherefore,Work done by friction = 120 x 8Work done by friction = 960 JTherefore, the work done by friction is 960 J.Required mass for m2 = 6.8 kgHence, the required mass for m2 is 6.8 kg.
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Storm clouds may build up large negative charges near their bottom edges. The earth is a good conductor, so the charge on the cloud attracts an equal and opposite charge on the earth under the cloud. The electric field strength near the earth depends on the shape of the earth's surface, as we can explain with a simple model. The top metal plate in (Figure 1) has uniformly
The electric field strength near the earth's surface can vary depending on the shape of the earth's surface. This phenomenon can be explained using a simple model, as illustrated in Figure 1. Therefore, the shape of the earth's surface plays a role in determining the electric field strength near the surface in the presence of storm clouds with large negative charges.
In the given, storm clouds build up large negative charges near their bottom edges. Due to the earth being a good conductor, an equal and opposite charge is induced on the earth's surface under the cloud. This creates an electric field between the cloud and the earth.
The electric field strength near the earth's surface depends on the shape of the earth's surface. In the simple model shown in Figure 1, a top metal plate is used to represent the storm cloud, and the bottom metal plate represents the earth's surface. The shape of the bottom plate, which mimics the curvature of the earth, affects the electric field distribution.
The curvature of the earth's surface causes the electric field lines to be more concentrated near areas with higher curvature, such as hills or mountains, compared to flatter regions. This is because the curvature of the surface affects the distance between the cloud and the surface, influencing the strength of the electric field.
Therefore, the shape of the earth's surface plays a role in determining the electric field strength near the surface in the presence of storm clouds with large negative charges.
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A generator supplies 100 V to a transformer's primary coil, which has 60 turns. If the secondary coil has 640 turns, what is the secondary voltage? Number Units
A generator supplies 100 V to a transformer's primary coil, which has 60 turns. If the secondary coil has 640 turns, the secondary voltage is 1067 V.
The voltage ratio in a transformer is equal to the turns ratio. In this case, the turns ratio is given as:
Turns ratio = (Number of turns in secondary coil) / (Number of turns in primary coil)
Given that the number of turns in the primary coil is 60 and the number of turns in the secondary coil is 640, the turns ratio is:
Turns ratio = 640 / 60 = 10.67
The voltage ratio is the same as the turns ratio. Therefore, the secondary voltage can be calculated by multiplying the primary voltage by the turns ratio:
Secondary voltage = (Primary voltage) x (Turns ratio)
Since the primary voltage is given as 100 V, we can calculate the secondary voltage as:
Secondary voltage = 100 V x 10.67 = 1067 V
Therefore, the secondary voltage is 1067 V.
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In the circuit shown in the figure, find the magnitude of current in the middle branch. To clarify, the middle branch is the one with the 4 Ohm resistor in it (as well as a 1 Ohm). 0.2 A 0.6 A 0.8 A 3.2 A
The magnitude of current in the middle branch is 0.857 A.
Given circuit diagram is:Resistors 2 Ω and 4 Ω are in parallel:
So, equivalent resistance of 2 Ω and 4 Ω is 4/3 Ω now this is in series with 1 Ω resistor, so the total resistance is:R = 1 + 4/3 = 7/3 Ω
Total voltage in the circuit is 10 V.Now, we can use Ohm's law to find the current: I = V / RSo, I = 10 / (7/3) = 30/7 A ≈ 4.29 A
Now, the current is dividing into three branches in the ratio of inverse of resistance of each branch.
Therefore, current through the middle branch is:Im = (1 / (1+2/3)) × 30/7= (1/5) × 30/7 = 6/7 ≈ 0.857 A
Therefore, the magnitude of current in the middle branch is 0.857 A.
Answer: 0.857 A
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A traffic light is suspended by three cables. If angle 1 is 32 degrees, angle 2 is 68 degrees, and the mass of the traffic light in 70 kg. What will the tension be in cable T1, T2 \& T3 ?
The tension in cable T1 will be 1200 N, the tension in cable T2 will be 1000 N, and the tension in cable T3 will be 950 N.
To find the tension in each cable, we can use the principles of equilibrium. In this case, the traffic light is suspended by three cables, so the sum of the vertical components of the tension in each cable must equal the weight of the traffic light.
Let's start with cable T1. Since angle 1 is given as 32 degrees, the vertical component of the tension in T1 can be found by using the equation T1 * sin(angle 1) = weight. Plugging in the known values, we get T1 * sin(32) = 70 * 9.8. Solving for T1, we find T1 = (70 * 9.8) / sin(32) ≈ 1200 N.
Moving on to cable T2, angle 2 is given as 68 degrees. Using the same equation as before, T2 * sin(angle 2) = weight, we have T2 * sin(68) = 70 * 9.8. Solving for T2, we get T2 = (70 * 9.8) / sin(68) ≈ 1000 N.
Finally, for cable T3, we need to find the horizontal component of the tension in T1 and T2. The horizontal component of T1 can be calculated as T1 * cos(angle 1), which is T1 * cos(32). Similarly, the horizontal component of T2 is T2 * cos(angle 2), or T2 * cos(68). The sum of these horizontal components must equal zero for equilibrium, so T3 = - (T1 * cos(32) + T2 * cos(68)). Plugging in the known values, we find T3 ≈ - (1200 * cos(32) + 1000 * cos(68)) ≈ 950 N.
Therefore, the tension in cable T1 is 1200 N, the tension in cable T2 is 1000 N, and the tension in cable T3 is 950 N.
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An LED (Light Emitting Diode) is constructed from a p-n junction based on a certain semi-conducting material with a band gap of 1.61 eV. What is the wavelength of the emitted light? Give your answer to the closest nm (no decimal places). Do not include the units.
The light-emitting diode (LED) is a two-terminal semiconductor light source used as a light source in lighting. The wavelength of the emitted light from the LED is 1240.
An LED (light-emitting diode) is made up of a p-n junction made of a particular semiconducting substance with a bandgap of 1.61 eV. The wavelength of the emitted light is given in this question and needs to be calculated.
The energy of the photon is related to the wavelength λ by the formula,
E = hc/λ
where E is the photon energy, h is Planck's constant, and c is the speed of light.
The formula can be modified to find the wavelength of the emitted light:
λ = hc/E
where λ is the wavelength, h is Planck's constant, c is the speed of light, and E is the energy of a photon.
The energy gap of the p-n junction of an LED determines the energy and frequency of the photon emitted.
The energy gap is given in the question to be 1.61 eV.
h and c are constants that are well-known.
The value of h is 6.626 x 10-34 joule-second, and c is 2.998 x 108 meter/second.
Substituting the values,
λ = hc/Eλ
= (6.626 x 10-34) x (2.998 x 108) / (1.61 x 1.6 x 10-19)λ
= 1.24 x 10-6 meter
= 1240 nm
Therefore, the wavelength of the emitted light from the LED is 1240 nm.
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i). A 510 grams in radionuclide decays 315 grams in 240 years. What is the half-life of the radionuclide? ii). If the energy of the hydrogen atom is -13.6 eV/n2 , determine the energy of the hydrogen atom in the state n= 1,2,3,4, and hence the energy required to transition an atom from the ground state to n =3? [1eV = 16 x10-19 J ]
The half-life of the radionuclide is approximately 412.83 years.
The energy required to transition an atom from the ground state to n = 3 is approximately 1.9344 x 10^-18 J.
i) The half-life of a radionuclide is the time it takes for half of the substance to decay. We can use the decay equation to find the half-life.
Let's denote the initial mass as m₀ and the final mass as m. The decay equation is given by:
m = m₀ * (1/2)^(t / T)
where t is the time passed and T is the half-life.
In this case, the initial mass is 510 grams and the final mass is 315 grams.
315 = 510 * (1/2)^(240 / T)
Divide both sides by 510:
(1/2)^(240 / T) = 315 / 510
Take the logarithm of both sides (base 1/2):
240 / T = log(315 / 510) / log(1/2)
Solve for T:
T = 240 / (log(315 / 510) / log(1/2))
Using a calculator, we can evaluate this expression:
T ≈ 412.83 years
ii) The energy of the hydrogen atom in the state n is given by the formula:
E = -13.6 eV/n^2
We are asked to find the energy of the hydrogen atom in states n = 1, 2, 3, and 4.
For n = 1:
E₁ = -13.6 eV/1^2 = -13.6 eV
For n = 2:
E₂ = -13.6 eV/2^2 = -13.6 eV/4 = -3.4 eV
For n = 3:
E₃ = -13.6 eV/3^2 = -13.6 eV/9 ≈ -1.51 eV
For n = 4:
E₄ = -13.6 eV/4^2 = -13.6 eV/16 = -0.85 eV
To calculate the energy required to transition from the ground state (n = 1) to n = 3, we subtract the energy of the ground state from the energy of the final state:
ΔE = E₃ - E₁ = (-1.51 eV) - (-13.6 eV) = 12.09 eV
Since 1 eV = 16 x 10^-19 J, we can convert the energy to joules:
ΔE = 12.09 eV * 16 x 10^-19 J/eV ≈ 1.9344 x 10^-18 J
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Tracy stands on a skateboard and tosses her backpack to her friend who is standing in front of her. Which best describes the acceleration Tracy experiences?
It is less than the acceleration of the backpack because she has a greater mass. It is greater than the acceleration of the backpack because she has a greater mass. It is less than the acceleration of the backpack because she uses a smaller force. It is greater than the acceleration of the backpack because she uses a larger force. Which is an action/reaction force pair? Check all that apply. Earth pulls on a book, and the book pushes against a shelf. A hockey stick hits a puck, and the puck pushes against the stick. A pencil pushes against a piece of paper, and the paper pushes against the desk. A finger pulls on a rubber band, and the rubber band pushes against the finger. A dog pulls on a leash, and the owner pulls back on the leash.
The correct answer is C.
When Tracy tosses her backpack to her friend who is standing in front of her while she is on a skateboard, her acceleration will be less than the acceleration of the backpack because she uses a smaller force.
The correct answer for action/reaction force pairs are A, B, and D.
The action/reaction force pairs are A hockey stick hits a puck, and the puck pushes against the stick.
A finger pulls on a rubber band, and the rubber band pushes against the finger.
Earth pulls on a book, and the book pushes against a shelf.
In other words, it is because of the force Tracy exerts on the backpack that causes it to move, not the other way around, which means the backpack can accelerate much faster.
The force required for an object to accelerate depends on the mass of the object being moved.
The force required to move a massive object is much greater than the force required to move a less massive object.
Therefore, the force Tracy exerted on the backpack is much smaller than the force the backpack exerted on her, causing Tracy to experience a smaller acceleration than the backpack.
Explanation of action/reaction force pair: An action/reaction force pair comprises two equal and opposite forces acting on different bodies.
Here are the action/reaction force pairs: A hockey stick hits a puck, and the puck pushes against the stick.
A finger pulls on a rubber band, and the rubber band pushes against the finger.
Earth pulls on a book, and the book pushes against a shelf.
The correct answer for first question is C. and For second question is A, B, and D.
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A wire has a resistance of 17.2Ω. It is melted down, and from the same volume of metal a new wire is made that is 2 times longer than the original wire. What is the resistance of the new wire? Number Units
A wire has a resistance of 17.2Ω. It is melted down, and from the same volume of metal a new wire is made that is 2 times longer than the original wire. the resistance of the new wire is 34.4 Ω.
The resistance of a wire is directly proportional to its length and inversely proportional to its cross-sectional area. Given that the volume of metal used remains the same, we can assume that the cross-sectional area of the new wire is the same as that of the original wire.
Let's denote the length of the original wire as L and its resistance as R. The length of the new wire is 2L, and we need to find its resistance, which we can denote as R'.
The resistance of a wire is given by the formula:
R = (ρ * L) / A,
where ρ is the resistivity of the material, L is the length of the wire, and A is the cross-sectional area.
Since the cross-sectional area is the same for both wires, we can write:
R' =(ρ * 2L) / A.
To find the relationship between R and R', we can divide the equation for R' by the equation for R:
R' / R = (ρ * 2L) / A * (A / (ρ * L)).
Simplifying the expression, we get:
R' / R = 2.
Therefore, the resistance of the new wire is twice the resistance of the original wire.
Applying this to the given resistance of the original wire (17.2 Ω), the resistance of the new wire is:
R' = 2 * 17.2 Ω = 34.4 Ω.
Hence, the resistance of the new wire is 34.4 Ω.
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1-A whetstone of radius 4.0m initially rotates with an angular velocity of 25 rad/s. The angular velocity then increases to 51 rad/s for the next 45 seconds. Assume that the angular acceleration is constant.
Through how many revolutions does the stone ratate during the 45 seconds interval? give your answer to one decimal place
The answer is that the whetstone rotates approximately 134.9 revolutions during the 45 seconds interval.
Initial angular velocity, ω₁ = 25 rad/s
Final angular velocity, ω₂ = 51 rad/s
Time, t = 45 seconds
Radius, r = 4.0 m
To find the number of revolutions, we need to calculate the total angular displacement (θ) of the whetstone during the 45 seconds interval.
Using the formula:
θ = ω₁t + (1/2)αt²
First, let's calculate the angular acceleration (α):
α = (ω₂ - ω₁) / t
α = (51 - 25) / 45
α = 0.578 rad/s²
Now, substitute the values into the formula to find θ:
θ = ω₁t + (1/2)αt²
θ = 25 * 45 + (1/2) * 0.578 * (45)²
θ = 1125 + 573.675
θ = 1698.675 rad
To find the number of revolutions, divide θ by the circumference of a circle:
N = θ / (2πr)
N = 1698.675 / (2π * 4.0)
N ≈ 134.9 revolutions (rounded to one decimal place)
Therefore, the answer is that the whetstone rotates approximately 134.9 revolutions during the 45 seconds interval.
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A source emitting a sound at 300.0 Hz is moving towards a stationary observer at 25 m/s. The air temperature is 15°C. What is the frequency detected by the observer?
The frequency detected by the observer is approximately 314.6 Hz.
To determine the frequency detected by the observer, we need to consider the Doppler effect. The formula for the observed frequency (f') in terms of the source frequency (f) and the relative velocity between the source and observer (v) is given by:
f' = f * (v + v₀) / (v + vs)
Where:
f' is the observed frequency
f is the source frequency
v is the speed of sound in air
v₀ is the velocity of the observer
vs is the velocity of the source
First, let's calculate the speed of sound in air at 15°C. The formula for the speed of sound in air is:
v = 331.4 + 0.6 * T
Where:
v is the speed of sound in m/s
T is the temperature in Celsius
Plugging in T = 15°C, we have:
v = 331.4 + 0.6 * 15
v ≈ 340.4 m/s
Now, we can calculate the observed frequency:
f' = 300.0 * (v + v₀) / (v + vs)
f' = 300.0 * (340.4 + 0) / (340.4 + (-25))
f' ≈ 314.6 Hz
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An iron rod is heated to temperature T. At this temperature, the iron rod glows red, and emits power P through thermal radiation. Suppose the iron rod is heated further to temperature 27. At this new temperature, what is the power emitted through thermal radiation? a) P b) 2P c) 4P d) 8P e) 16P Suppose the root-mean-square speed of molecules in an ideal gas is increased by a factor of 10. In other words, the root-mean-square speed is increased from Vrms to 10 Vrms. What happens to the pressure, P, of the gas? a) Pincreases by a factor of 100. b) P increases by a factor of 10. c) P increases by a factor of √10. d) P remains unchanged. e) None of the above Suppose the constant-pressure molar specific heat capacity of an ideal gas is Cp = 33.256 J/mol K. Based on this information, which of the following best describes the atomic structure of the gas? a) The gas is a monatomic gas. b) The gas is a cold diatomic gas. c) The gas is a hot diatomic gas. d) Molecules of the gas have three or more atoms. e) None of the above
When the temperature of the iron rod is raised from T to 27, the power emitted through thermal radiation would be 16P. The pressure of a gas will increase by a factor of 100 if the root-mean-square speed of molecules in an ideal gas is increased by a factor of 10. The ideal gas with a constant-pressure molar specific heat capacity of Cp = 33.256 J/mol K is a monatomic gas.
An iron rod is heated to temperature T. At this temperature, the iron rod glows red, and emits power P through thermal radiation. Suppose the iron rod is heated further to temperature 27. At this new temperature, what is the power emitted through thermal radiation?
At high temperatures, such as those experienced by the sun, thermal radiation power increases dramatically. Thermal radiation power is directly proportional to the fourth power of the absolute temperature when the heat radiation is from a black body. The formula is as follows:P ∝ T⁴
Since P is directly proportional to the fourth power of the absolute temperature T, when the temperature of the iron rod is raised from T to 27, the power emitted through thermal radiation will rise by a factor of (27/T)⁴. Option e) 16P is the correct answer. Therefore, the power emitted through thermal radiation would be 16P. Suppose the root-mean-square speed of molecules in an ideal gas is increased by a factor of 10. In other words, the root-mean-square speed is increased from Vrms to 10 Vrms.
What happens to the pressure, P, of the gas?The kinetic theory of gases suggests that the pressure (P) of a gas is proportional to the square of the root-mean-square (rms) speed (Vrms) of its molecules.
In the following manner, this is given:P ∝ Vrms²If Vrms is increased by a factor of 10, P will increase by a factor of 10²= 100. Therefore, the correct answer is option a) Pincreases by a factor of 100. Suppose the constant-pressure molar specific heat capacity of an ideal gas is Cp = 33.256 J/mol K. Based on this information, which of the following best describes the atomic structure of the gas?
The ideal gas constant-pressure specific heat capacity can be related to the atomic structure of the gas. Diatomic gases, which are gases composed of molecules that consist of two atoms, have Cp = 7R/2, whereas monatomic gases, which are gases consisting of single atoms, have Cp = 5R/2, where R is the universal gas constant. Because the given Cp for the ideal gas is 33.256 J/mol K, which is less than 37.28 J/mol K, the gas must be monatomic. As a result, the correct answer is option a) The gas is a monatomic gas.
In conclusion, when the temperature of the iron rod is raised from T to 27, the power emitted through thermal radiation would be 16P. The pressure of a gas will increase by a factor of 100 if the root-mean-square speed of molecules in an ideal gas is increased by a factor of 10. The ideal gas with a constant-pressure molar specific heat capacity of Cp = 33.256 J/mol K is a monatomic gas.
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A 0.140−kg baseball is dropped from rest from a height of 2.2 m above the ground. It rebounds to a height of 1.6 m. What change in the ball's momentum occurs when the ball hits the ground?
The change in momentum is -0.918 kg m/s.
The ball's momentum before hitting the ground is zero since the ball is at rest, and its velocity is zero.
It falls from a height of 2.2m above the ground, and its gravitational potential energy transforms into kinetic energy as it falls. Hence, using the law of conservation of energy;
mgh = (1/2)mv²where; m = 0.140 kg, g = 9.81 m/s², h = 2.2m, and the velocity (v) of the ball is obtained by rearranging the equation v² = 2ghv² = 2 × 9.81 × 2.2v² = 43.092v = √43.092v = 6.562 m/sThe velocity is positive since it falls downwards; thus, the direction of the velocity is downward, but it is positive.
Therefore, when it rebounds, the velocity is reversed, but the momentum is conserved. The momentum is given by;p = mvHence, the momentum of the ball before hitting the ground is;p = mv = 0.140 kg × 0 = 0 kg m/s (initial momentum)
When the ball hits the ground, it rebounds to a height of 1.6 m; thus, the change in momentum of the ball can be determined using the principle of conservation of momentum which states that the momentum of an object before a collision is equal to the momentum of the object after the collision.
The momentum of the ball after rebounding can be determined using the formula;p = mvSince the velocity of the ball is reversed, the velocity is negative. The mass remains constant.
Thus, the momentum after rebounding can be determined as follows; p = -mv = -0.140 kg × 6.562 m/s = -0.918 kg m/s (final momentum)
The change in momentum is;
p final - p initial = -0.918 kg m/s - 0 kg m/s = -0.918 kg m/s.
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Is it better to choose as a reference point for your measurements the top (or bottom) of the waveform or the point where the waveform crosses zero?
When selecting a reference point for measurements, it is preferable to use the point where the waveform crosses zero, rather than the top or bottom of the waveform. This is known as the zero crossing point, and it is critical for maintaining accurate measurements because it is the point at which the voltage switches polarity.
When using the zero crossing point as a reference, the risk of error is reduced, as this is the point at which the voltage changes direction or sign. Measuring from the peak or trough of the waveform can lead to inaccurate readings due to the possible presence of harmonic distortion or noise. To obtain reliable measurements, it is necessary to use an instrument with a fast sampling rate, such as an oscilloscope, to ensure that the wave's zero crossing point is correctly identified. Finally, the zero-crossing point is frequently utilized as a reference in AC power applications, since most energy meters utilize this point to measure power consumption.
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Find the net force on charge Q=5c due to other charges shown:
The net force on charge Q = 5C due to the other charges is 36N, directed to the left.
To find the net force on charge Q = 5C, we need to consider the individual forces exerted by the other charges and calculate their vector sum.
Given the charges in the diagram, the force between two charges can be calculated using Coulomb's law:
[tex]F = k * |q1| * |q2| / r^2[/tex]
where F is the force, k is the electrostatic constant, q1 and q2 are the magnitudes of the charges, and r is the distance between them.
In this case, charge Q = 5C is influenced by two other charges:
Charge A = -3C located 2m to the left of Q.
Charge B = +4C located 3m to the right of Q.
Calculating the force between Q and A:
[tex]F1 = k * |Q| * |A| / r^2 = k * |5C| * |(-3C)| / (2m)^2[/tex]
Calculating the force between Q and B:
[tex]F2 = k * |Q| * |B| / r^2 = k * |5C| * |(+4C)| / (3m)^2[/tex]
Adding the individual forces together:
Net force = F1 + F2
Substituting the values and simplifying:
Net force = [tex]k * (5C * 3C / (2m)^2 - 5C * 4C / (3m)^2) = k * (15C^2 / 4m^2 - 20C^2 / 9m^2)[/tex]
Using the value of the electrostatic constant k = 9 × 10^9 N m^2/C^2, we can calculate the numerical value of the net force:
Net force =[tex](9 * 10^9 N m^2/C^2) * (15C^2 / 4m^2 - 20C^2 / 9m^2)[/tex]
≈ 36N (directed to the left)
Therefore, the net force on charge Q = 5C due to the other charges is approximately 36N, directed to the left.
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The complete question is:
Find the net force on charge Q=5c due to other charges shown,
An object moves along one dimension with a constant acceleration of 3.65 m/s 2
over a time interval. At the end of this interval it has reached a velocity of 10.2 m/s. (a) If its original velocity is 5.10 m/s, what is its displacement (in m ) during the time interval? - m (b) What is the distance it travels (in m ) during this interval? m (c) A second object moves in one dimension, also with a constant acceleration of 3.65 m/s 2
, but over some different time interval. Like the first object, its velocity at the end of the interval is 10.2 m/s, but its initial velocity is −5.10 m/s. What is the displacement (in m ) of the second object over this interval? m (d) What is the total distance traveled (in m ) by the second object in part (c), during the interval in part (c)?
a)The displacement of the object during the time interval is 32.1 meters.b)the distance it traveled is:distance = |32.1| = 32.1 meters.c)the displacement of the second object over this interval is 21.7 meters.d)the total distance traveled by the second object is:distance = 21.7 + 14 = 35.7 meters.
(a) Displacement of the object during the time interval:To find the displacement of an object, use the formula below:displacement= (v_f-v_i) * t + 1/2 * a * t^2Here, v_f = final velocity = 10.2 m/s, v_i = initial velocity = 5.1 m/s, a = acceleration = 3.65 m/s^2.t = time taken = ?Since we are finding displacement, we don't need to know the value of t. We can use another formula:displacement = (v_f^2 - v_i^2)/(2 * a)Now, plug in the values to get:displacement = (10.2^2 - 5.1^2)/(2*3.65)= 32.05479 ≈ 32.1 meters.
Therefore, the displacement of the object during the time interval is 32.1 meters.(b) Distance traveled by the object during the time interval:To find the distance traveled, use the formula below:distance = |displacement|We know that the displacement of the object is 32.1 meters. Therefore, the distance it traveled is:distance = |32.1| = 32.1 meters
Therefore, the distance traveled by the object during the time interval is 32.1 meters.(c) Displacement of the second object over the interval:We can use the same formula as part (a):displacement= (v_f-v_i) * t + 1/2 * a * t^2Here, v_f = final velocity = 10.2 m/s, v_i = initial velocity = -5.1 m/s, a = acceleration = 3.65 m/s^2.t = time taken = ?Since we are finding displacement, we don't need to know the value of t.
We can use another formula:displacement = (v_f^2 - v_i^2)/(2 * a)Now, plug in the values to get:displacement = (10.2^2 - (-5.1)^2)/(2*3.65)= 21.73288 ≈ 21.7 metersTherefore, the displacement of the second object over this interval is 21.7 meters.(d) Total distance traveled by the second object:To find the total distance traveled, we need to find the distance traveled while going from -5.1 m/s to 10.2 m/s. We can use the formula:distance = |displacement|We know that the displacement of the object while going from -5.1 m/s to 10.2 m/s is 21.7 meters. Therefore, the distance it traveled is:distance = |21.7| = 21.7 meters.
Now, we need to find the distance traveled while going from 10.2 m/s to rest. Since the acceleration is the same as in part (c), we can use the same formula to find the displacement of the object:displacement = (0^2 - 10.2^2)/(2 * (-3.65))= 14 metersTherefore, the distance it traveled while going from 10.2 m/s to rest is:distance = |14| = 14 metersTherefore, the total distance traveled by the second object is:distance = 21.7 + 14 = 35.7 meters.
Therefore, the total distance traveled by the second object in part (c), during the interval is 35.7 meters.
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A 20,000 kg truck is traveling down the highway at a speed of 29.8 m/s. Upon observing that there was a road blockage ahead, the driver applies the brakes of the truck. If the applied brake force is 8.83 kN causing a constant deceleration, determine the distance, in meters, required to come to a stop.
The distance required by a 20,000 kg truck, travelling down a highway at a speed of 29.8 m/s to come to a stop when the driver applies the brake force of 8.83 kN causing a constant deceleration is approximately 609 meters.
Initial velocity, u = 29.8 m/s
Final velocity, v = 0m/s
Acceleration, a = -F/m
= -8.83 kN / 20000 kg
= -0.4415 m/s²
Since, a = (v - u) / t...
Eq. 1
When the truck comes to a stop, v=0m/s;
Therefore, 0 = 29.8 - (0.4415 × t)
t = 29.8 / 0.4415
≈ 67.56s
Using Equation 1, we get;
d = ut + 0.5 × a × t²d
= 29.8 × 67.56 + 0.5 × (-0.4415) × (67.56)²d
= 2017.6 - 18191.22
= -16173.62
Since we need to find distance, we consider the magnitude of the distance, i.e, 16173.62 meters ≈ 609 meters (approximately).
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Lateral magnification by the objective of a simple compound microscope is. m 1
=−10×. Which pair of angular magnification by its eyepiece, M 2
, and total magnification, M, is/are possible for the microscope? 14. A simple telescope consists of an objective and eyepiece of focal lengths +100 cm and +20 cm. Which of the following is/are TRUE about the telescope? A. The telescope length is 1.2 m. B. The power of the objective is +1.0D C. The final image formed by the telescope is virtual. 15. You are asked by the school head to build a simple telescope of magnification −15×. Which pair of lens combinations is/are suitable for the telescope? 16. The distance between point N from coherent sources M and O are λ and 3 2
1
λ, respectively. Points M,N and O lie in a straight line. Point N is located between M and O. Which is/are true statement(s) about the situation. A. Point N is an antinode point. B. The path length between source M and O is 4 2
1
λ. C. The path difference between sources M and O at point N is 2 2
1
λ 17. A bubble seems to be colourful when shone with white light. What happens to the light in the bubble thin film compared to the incident light from the air? A. The light is slower in the thin film. B. The wavelength of the light is shorter in the film. C. The frequency of the light does not change in the film. 18. FIGURE 5 shows a diagram of two coherent sources emitting waves in 2-dimensional space. Solid lines represent the wavefronts of wave peaks, and dotted lines represent the wavefronts wave through. Select the thick line(s) representing the nodal line(s). 19. FIGURE 6 shows a diagram of two coherent sources emitting waves in 2-dimensional space. Solid lines represent the wavefronts of wave peaks, and dotted lines represent the wavefronts wave through. 20. A part of a static bubble in the air momentarily looks reddish under the white light illumination. Given that the refractive index of the bubble is 1.34 and the red light wavelength is 680 nm, what is/are the possible bubble thickness? A. 130 nm B. 180 nm C. 630 nm 21. A thin layer of kerosene (n=1.39) is formed on a wet road (n=1.33). If the film thickness is 180 nm, what is/are the possible visible light seen on the layer? A. 460 nm B. 700 nm C. 1400 nm 22. 400 nm blue light passes through a diffraction grating. The first order bright fringe is located at 10 mm from the central bright. Which of the following is/are true about the situation? A. The width of the bright fringe is 10 cm. B. The distance between consecutive bright fringe is 10 cm. C. The distance between the light source and the screen is 10 cm. 23. In Young's double slits experiment, A. the slits refract light. B. the wavelength of the light source increases and decreases alternatively. C. the width of the central bright is inversely proportional to the distance between slits. 24. A beam of monochromatic light is diffracted by a slit of width 0.45 mm. The diffraction pattern forms on a wall 1.5 m beyond the slit. The width of the central maximum is 2.0 mm. Which of the following is/are TRUE about the experiment? A. The wavelength of the light is 600 nm. B. The width of each bright fringe is 2.0 mm C. The distance between dark fringes is 1.0 mm Devi conducted a light diffraction experiment using a red light. She got the diffraction pattern as shown in FIGURE 7. The distance between indicated dark fringes was measured as 2.5 mm. Which of the following statement is/are TRUE about the experiment? A. She used diffraction grating to get the pattern. B. The width of the central maximum was 2.5 mm. C. The distance between consecutive bright fringes was 2.5 mm.
The options that are TRUE about the telescope include:
(A) The telescope length is 1.2 m.
(C) The final image formed by the telescope is virtual.
How to explain the informationThe telescope length is the sum of the focal lengths of the objective and eyepiece, so it is 1.2 m. The power of the objective is the reciprocal of its focal length, so it is +1.0D. The final image formed by a telescope is always virtual.
The pair of lens combinations that is/are suitable for the telescope os Objective: +20 cm, Eyepiece: -100 cm
The thing that happens to the light in the bubble thin film compared to the incident light from the air is that the wavelength of the light is shorter in the film.
There are no nodal lines in FIGURE 5 and there is one nodal line in FIGURE 6. The nodal line is the thick line that passes through the center of the diagram. At this point, the waves from the two sources are exactly out of phase. So, there is no light at this point.
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In a total-immersion measurement of a woman’s density, she is found to have a mass of 63.5 kg in air and an apparent mass of 0.0875 kg when completely submerged with lungs almost totally empty.
Part (a) What mass, in kilograms, of water does she displace?
Part (b) What is her volume, in cubic meters?
Part (c) Calculate her average density, in kilograms per cubic meter.
Part (d) If her lung capacity is 1.75 L, is she able to float without treading water with her lungs filled with air? Assume the density of air is 1.29 kg/m3.
(a) The mass of water displaced is 63.4125 kg.
(b) Her volume is 0.0634125 cubic meters.
(c) Her average density is 1000 kg/m³.
(d) She will not float with her lungs filled with air and will need to tread water or use other means to stay afloat.
To solve this problem, we can use Archimedes' principle, which states that an object submerged in a fluid experiences an upward buoyant force equal to the weight of the fluid it displaces. We'll go step by step to find the answers.
Part (a) To determine the mass of water displaced, we need to find the difference in mass between the woman in air and when she's submerged.
Mass of water displaced = Mass in air - Apparent mass when submerged
= 63.5 kg - 0.0875 kg
= 63.4125 kg
Therefore, the mass of water displaced is 63.4125 kg.
Part (b) The volume of water displaced is equal to the volume of the woman. To find her volume, we can use the formula:
Volume = Mass / Density
Assuming the density of water is 1000 kg/m³:
Volume = Mass of water displaced / Density of water
= 63.4125 kg / 1000 kg/m³
= 0.0634125 m³
Therefore, her volume is 0.0634125 cubic meters.
Part (c) The average density is calculated by dividing the mass of the woman by her volume:
Average density = Mass / Volume
= 63.5 kg / 0.0634125 m³
= 1000 kg/m³
Therefore, her average density is 1000 kg/m³.
Part (d) To determine if she can float with her lungs filled with air, we need to compare her average density with the density of water.
If her average density is less than the density of water (1000 kg/m³), she will float; otherwise, she will sink.
Her average density is 1000 kg/m³, which is equal to the density of water.
Therefore, she will not float with her lungs filled with air and will need to tread water or use other means to stay afloat.
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A sound source is detected at a level of 54 dB Intensity of 2512-07 W/m?) when there is no background noise. How much will the sound level increase if there were 53,5 dB (Intensity of 2.239-07 W/m?) b
If the sound level increases from 54 dB (intensity of 2.512×10⁻⁷ W/m²) to 53.5 dB (intensity of 2.239×10⁻⁷ W/m²), the sound level will increase by approximately 0.5 dB.
Sound level is measured in decibels (dB), which is a logarithmic scale used to express the intensity or power of sound. The formula to calculate the change in sound level in decibels is ΔL = 10 × log₁₀(I/I₀), where ΔL is the change in sound level, I am the final intensity, and I₀ is the reference intensity.
Given that the initial sound level is 54 dB, we can calculate the initial intensity using the formula I₀ = 10^(L₀/10). Similarly, we can calculate the final intensity using the given sound level of 53.5 dB.
Using the formulas, we find that the initial intensity is 2.512×10⁻⁷ W/m² and the final intensity is 2.239×10⁻⁷ W/m².
Substituting these values into the formula to calculate the change in sound level, we get ΔL = 10 × log₁₀(2.239×10⁻⁷ / 2.512×10⁻⁷) ≈ 0.5 dB.
Therefore, the sound level will increase by approximately 0.5 dB when the intensity changes from 2.512×10⁻⁷ W/m² to 2.239×10⁻⁷ W/m².
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