(a) The maximum force of static friction between the child's shoes and the surface is 56 N. (b) The merry-go-round can spin at a maximum speed of 0.92 revolutions per minute without the child slipping.
(a) To determine the maximum force of static friction, we use the equation F_friction = uN, where F_friction is the force of friction, u is the coefficient of static friction, and N is the normal force. The normal force acting on the child can be calculated as N = mg, where m is the mass of the child and g is the acceleration due to gravity. Since there is no vertical acceleration, the normal force is equal to the weight of the child. Assuming a typical value of 9.8 m/s² for g, the maximum force of static friction is F_friction = (0.80)(mg) = (0.80)(m)(9.8) = 7.84m N.
(b) The centrifugal force experienced by the child on the merry-go-round is given by F_centrifugal = mω²r, where m is the mass of the child, ω is the angular velocity, and r is the distance from the center. The child will start to slip when the maximum force of static friction is equal to the centrifugal force, so we can equate the two equations: F_friction = F_centrifugal. Solving for ω, we find ω = √(g/u) = √(9.8/0.80) ≈ 3.92 rad/s. Finally, we convert the angular velocity to revolutions per minute: ω in revolutions per minute = (ω in rad/s)(60 s/min)/(2π rad/rev) ≈ 0.92 rev/min.
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A rock with a weight of 10N is attached to a vertical string. The rock is moving upward but is slowing down. Shod the force that the string exerts on the rock be greater than 10N, less than 10N, or equal to 10N? Neglect air resistance and explain using the correct Newton's Law.
The force exerted by the string on the rock should be greater than 10N, according to Newton's second law of motion.
Newton's second law of motion states that the net force acting on an object is equal to the product of its mass and acceleration. In this case, the rock is moving upward but slowing down, which means its acceleration is directed downward. Since the rock's weight is 10N, which is equivalent to the force of gravity acting on it, there must be an additional force exerted by the string to counteract this downward acceleration.
To understand this, let's consider the forces acting on the rock. The force of gravity pulls the rock downward with a force of 10N. To slow down the rock's upward motion, the string must exert a force greater than 10N in the upward direction. This additional force exerted by the string balances out the downward force of gravity, resulting in a net force of zero and causing the rock to slow down.
Therefore, the force exerted by the string on the rock should be greater than 10N to counteract the force of gravity and slow down the rock's upward motion.
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How do you get the mass of a star or planet? Kepler's third law Kepler's second law Kepler's first law
To determine the mass of a star or planet, Kepler's third law is used. Kepler's third law states that the square of the orbital period of a planet or satellite is directly proportional to the cube of the semi-major axis of its orbit.
Kepler's third law provides a relationship between the mass of a star or planet and the orbital parameters of its satellites or planets. The law states that the square of the orbital period (T) is directly proportional to the cube of the semi-major axis (a) of the orbit. Mathematically, it can be expressed as T^2 ∝ a^3.
By measuring the orbital period and the semi-major axis of a planet or satellite, we can determine the mass of the star or planet using Kepler's third law. This is possible because the mass of the star or planet affects the gravitational force acting on the orbiting body, which in turn influences its orbital period and semi-major axis.
By observing the motion of satellites or planets around a star or planet and applying Kepler's third law, astronomers can estimate the mass of celestial objects in the universe, providing valuable information for understanding their properties and dynamics.
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Satellite A of mass 48.6 kg is orbiting some planet at distance 1.9 radius of planet from the surface. Satellite B of mass242.9 kg is orbiting the same planet at distance 3.4 radius of planet from the surface. What is the ratio of linear velocities of these satellites v_a/v_b?
The ratio of linear velocities of the two satellites is approximately 1.338. To find the ratio of linear velocities of the two satellites, we can use the concept of circular motion and the law of universal gravitation. The gravitational force acting on a satellite in circular orbit is given by:
F = (G * M * m) / [tex]r^2[/tex]
where F is the gravitational force, G is the gravitational constant, M is the mass of the planet, m is the mass of the satellite, and r is the distance between the satellite and the center of the planet.
In circular motion, the centripetal force required to keep the satellite in orbit is given by:
F = m * [tex](v^2 / r)[/tex]
where v is the linear velocity of the satellite.
Setting these two forces equal to each other, we can cancel out the mass of the satellite:
(G * M * m) /[tex]r^2 = m * (v^2 / r)[/tex]
Simplifying the equation, we find:
[tex]v^2[/tex] = (G * M) / r
Taking the square root of both sides gives us:
v = √[(G * M) / r]
Now, let's calculate the ratio of linear velocities[tex]v_a/v_b:[/tex]
[tex](v_a / v_b[/tex]) = [√((G * M) / [tex]r_a)[/tex]] / [√((G * M) / [tex]r_b[/tex])]
Substituting the given values:
([tex]v_a / v_b)[/tex] = [√((G * M) / (1.9 * R))] / [√((G * M) / (3.4 * R))]
Simplifying further:
([tex]v_a / v_b)[/tex] = √[(3.4 * R) / (1.9 * R)]
([tex]v_a / v_b[/tex]) = √(3.4 / 1.9)
([tex]v_a / v_b[/tex]) = √1.789
([tex]v_a / v_b[/tex]) ≈ 1.338
Therefore, the ratio of linear velocities of the two satellites is approximately 1.338.
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Determining the value of an unknown capacitor using Wheatstone Bridge and calculating the resistivity of a given wire are among the objectives of this experiment. Select one: True False
The statement is false as neither determining the value of an unknown capacitor using a Wheatstone Bridge nor calculating the resistivity of a given wire are objectives of this experiment.
Determining the value of an unknown capacitor using a Wheatstone Bridge and calculating the resistivity of a given wire are not among the objectives of this experiment. The Wheatstone Bridge is typically used for measuring unknown resistance values, not capacitors. The bridge circuit is specifically designed to measure resistances and can provide accurate results for resistance measurements.
On the other hand, calculating the resistivity of a given wire is a separate experiment that involves measuring the wire's dimensions (length, cross-sectional area) and its resistance. By using these measurements and the formula for resistivity (ρ = RA/L), the resistivity of the wire can be determined. This experiment does not involve the Wheatstone Bridge method.
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A meter stick in frame S'makes an angle of 34° with the x'axis. If that frame moves parallel to the x axis of frame S with speed 0.970 relative to frame S, what is the length of the stick as measured from S? Number __________ Units _________
The length of the stick as measured from S is 0.59 meter according to stated information.
The formula to be used here is:
Lx = L ✓(1 - (v/c)²)
The speed of light is known universally.
Lx = 1 ✓(1 - (0.970c/c)²)
Lx = ✓1 - 0.970²
Lx = ✓1 - 0.94
Lx = ✓0.0591
Lx = 0.243 meter
Length of meter stick will be further calculated through the formula -
L = ✓(Lx cos theta)² + (L sin theta)²
L = ✓(0.243 × cos 34)² + (1 × sin 34)²
L = ✓(0.243 × 0.829)² + (0.559)²
L = ✓(0.039) + 0.312
L = ✓0.351
L = 0.59 meter
Hence, the length of meter stick as measured from the frame S is 0.59 meter.
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Consider a point on a bicycle tire that is momentarily in contact with the ground as the bicycle rolls across the ground with constant speed. The direction for the acceleration for this point at that moment is: a. upward. b. down toward the ground. c. forward, with the direction of the bicycle's movement. d. at that moment the acceleration is zero. e. backward, against the direction of the bicycle's movement.
So the correct option is d. At that moment, the acceleration of the point on the bicycle tire is zero. Since the bicycle is rolling with constant speed and there is no change in its motion, the point in contact with the ground.
In physics, moment refers to a turning effect or rotational force produced by a force acting on an object. It is the product of the magnitude of the force and the perpendicular distance between the line of action of the force and the pivot point or axis of rotation. Moments are measured in units of newton-meters (Nm) or foot-pounds (ft-lb) and are essential in studying rotational motion, equilibrium, and the principles of torque and angular momentum.
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A 2.6 kg mass is connected to a spring (k=106 N/m) and is sliding on a horizontal frictionless surface. The mass is given an initial displacement of +10 cm and released with an initial velocity of -11 cm/s. Determine the acceleration of the spring at t=4.6 seconds. (include units with answer)
When a 2.6 kg mass connected to a spring (k=106 N/m) is sliding on a horizontal frictionless surface then the acceleration of the spring at t = 4.6 seconds is approximately -0.194 m/[tex]s^2[/tex].
To determine the acceleration of the spring at t=4.6 seconds, we can use the equation of motion for a mass-spring system:
m * a = -k * x
where m is the mass, a is the acceleration, k is the spring constant, and x is the displacement from the equilibrium position.
Given:
m = 2.6 kg
k = 106 N/m
x = 10 cm = 0.1 m (initial displacement)
v = -11 cm/s = -0.11 m/s (initial velocity)
t = 4.6 s
First, let's calculate the position of the mass at t=4.6 seconds. Since the motion is oscillatory, we can use the equation:
x(t) = A * cos(ωt) + B * sin(ωt)
where A and B are constants determined by the initial conditions, and ω is the angular frequency.
To find A and B, we need to use the initial displacement and velocity:
x(0) = A * cos(0) + B * sin(0) = A * 1 + B * 0 = A = 0.1 m
v(0) = -A * ω * sin(0) + B * ω * cos(0) = B * ω = -0.11 m/s
Since A = 0.1 m, we have B * ω = -0.11 m/s.
Rearranging the equation, we get:
B = -0.11 m/s / ω
Substituting the value of A and B into the equation for x(t), we have:
x(t) = 0.1 * cos(ωt) - (0.11 / ω) * sin(ωt)
To determine ω, we use the relation between ω and k:
ω = sqrt(k / m)
Plugging in the values of k and m, we get:
ω = sqrt(106 N/m / 2.6 kg)
Now we can calculate the acceleration at t=4.6 seconds using the equation:
a(t) = -ω^2 * x(t)
To substitute the values and calculate the acceleration at t = 4.6 seconds, let's first find the values of ω, x(t), and B:
ω = sqrt(106 N/m / 2.6 kg) ≈ 5.691 rad/s
x(t) = 0.1 * cos(ωt) - (0.11 / ω) * sin(ωt)
x(4.6) = 0.1 * cos(5.691 * 4.6) - (0.11 / 5.691) * sin(5.691 * 4.6) ≈ 0.019 m
Now we can calculate the acceleration:
a(t) = -ω^2 * x(t)
a(4.6) = -5.691^2 * 0.019 ≈ -0.194 m/[tex]s^2[/tex]
Therefore, the acceleration of the spring at t = 4.6 seconds is approximately -0.194 m/[tex]s^2[/tex]. The negative sign indicates that the acceleration is directed opposite to the initial displacement.
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Select the correct answer.
In which item is energy stored in the form of gravitational potential energy?
A.
a slice of bread
B.
a compressed spring
C.
an apple on a tree
D.
a stretched bow string
Reset Next
C. an apple on a tree as energy stored in the form of gravitational potential energy.
Gravitational potential energy is a form of energy that an object possesses due to its position in a gravitational field.
It is directly related to the height or vertical position of the object relative to a reference point.
Out of the given options, only the apple on a tree possesses gravitational potential energy because it is located above the ground.
As the apple is raised higher on the tree, its gravitational potential energy increases accordingly.
Thus, option C, "an apple on a tree," is the correct choice.
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I'm supposed to label potential energy, kinetic energy, and thermal energy on parts of a roller coaster as it goes through hills and valleys. I get how to do the kinetic and potential energy, but how does thermal energy come in and how much would exist at each point?
The assignment calls for pie charts after doing my coaster. I'm good with making pie charts, but I'm really confused on thermal energy. When is it higher, when is it lower, etc?
The force of friction between the coaster and the tracks produces thermal energy. When a coaster reaches the top of a hill, it has a lot of potential energy but little kinetic energy and thermal energy. speed of the coaster is at its maximum at the bottom of the hill, so there is more friction between the tracks and the coaster
In the roller coaster, potential energy is maximum at the highest point.
As the cart comes down from that point, potential energy gets converted into kinetic energy.
In addition, thermal energy is generated as a result of friction between the coaster and the tracks, which is also generated by the air resistance.
To make a pie chart, you need to compute the percentage of each type of energy in each part of the roller coaster (at the highest point, at the bottom of a valley, etc.) given the total energy.
Thermal energy in the roller coaster is related to friction and other forces that resist motion.
The force of friction between the coaster and the tracks produces thermal energy.
When a coaster reaches the top of a hill, it has a lot of potential energy but little kinetic energy and thermal energy.
At the bottom of a hill, the kinetic and potential energies are at their lowest, but the thermal energy is at its highest.
This is due to the fact that the speed of the coaster is at its maximum at the bottom of the hill, so there is more friction between the tracks and the coaster, which results in more thermal energy.
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A hand move irrigation system is designed to apply 3.9 inches of water with a DU=0.61. ET = 0.19 in/day. Pl losses and runoff are both zero. If irrigation occurs 3 days AFTER the perfect timing day, what is the total deep percolation (in)? Assume that 25% of the area is under irrigated.
To calculate the total deep percolation, Consider the effective rainfall, which takes into account the depletion of soil moisture. The formula for effective rainfall is: Effective rainfall = DU * (ET - P)
Effective rainfall = 0.61 * (0.19 in/day) = 0.1159 in/day
Since irrigation occurs 3 days after the perfect timing day, the total effective rainfall for those 3 days is:
Total effective rainfall = 3 days * 0.1159 in/day = 0.3477 inches
Assuming 25% of the area is under irrigation, we can calculate the total deep percolate:
Total deep percolate = 0.25 * 3.9 inches = 0.975 inches
Therefore, the total deep percolation from the irrigation system is 0.975 inches.
Percolate refers to the process by which a liquid or gas slowly filters through a porous material or substance. It involves the movement of the fluid through interconnected spaces or channels within the material, allowing for the extraction of soluble components or the passage of substances.
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Grant jumps 170 m straight up into the air to slam-dunk a basketball into the net. With what speed did he leave the floor?
The speed with which Grant left the floor was 57.7 m/s.
When Grant jumps 170m into the air to slam-dunk a basketball into the net, the speed with which he leaves the floor can be found out by using the conservation of mechanical energy, which is represented by the formula: 1/2 mvi2 + mghi = 1/2 mvf2 + mghf Here, m represents mass, vi represents the initial velocity, vf represents the final velocity, hi represents the initial height, and hf represents the final height. We can consider the initial height to be zero, so h i = 0 m. The final height will be 170 m (as he jumps 170 m high). Hence, h f = 170 m. The initial velocity can be assumed to be zero as the basketball player was on the ground before he jumped. Therefore, vi = 0 m/s. Substituting the values in the formula, we get: 1/2 mvf2 + mghf = 0 + mghf + m × g × 170 vf2 = 2 × g × hf= 2 × 9.8 × 170 vf2 = 3332vf = √3332 = 57.7 m/s. Therefore, the speed with which Grant left the floor was 57.7 m/s.
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Consider an electron bound in a hydrogen atom under the influence of a homogeneous magnetic field B= z
^
B. Ignore the electron spin. The Hamiltonian of the system is H=H 0
−ωL z
with ω≡∣e∣B/2m e
c. The eigenstates ∣nℓm⟩ and eigenvalues E n
(0)
of the unperturbed hydrogen atom Hamiltonian H 0
are to be considered as known. Assume that initially (at t=0 ) the system is in the state ∣ψ(0)⟩= 2
1
(∣21−1⟩−∣211⟩) Calculate the expectation value of the magnetic dipole moment associated with the orbital angular momentum at time t.
When a homogeneous magnetic field is applied to a hydrogen atom with an electron in the ground state, the energy levels of the electron will split into multiple sublevels. This phenomenon is known as Zeeman splitting.
In the absence of a magnetic field, the electron in the ground state occupies a single energy level. However, when the magnetic field is introduced, the electron's energy levels will split into different sublevels based on the interaction between the magnetic field and the electron's spin and orbital angular momentum.
The number of sublevels and their specific energies depend on the strength of the magnetic field and the quantum numbers associated with the electron. The splitting of the energy levels is observed due to the interaction between the magnetic field and the magnetic moment of the electron.
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--The complete Question is, Consider an electron bound in a hydrogen atom under the influence of a homogeneous magnetic field B = z. If the electron is initially in the ground state, what will happen to its energy levels when the magnetic field is applied?--
An object is 4 cm from a converging lens with a focal length of 2.5 cm. What is the magnification, including the sign, for the image that is produced? (The sign tells if the image is inverted.) M=−1.67
M=6.67
M=−1.0
M=2.35
The magnification of the image produced by the lens is -0.38.
Magnification of an image refers to how much larger or smaller an image is than the object itself. The formula for magnification is given by;
M = -v / uwhere, M = Magnification of the imagev = Distance of the imageu = Distance of the object
To find the sign of the image, the following formula can be used:
f = Focal length of the lensIf the value of v is negative, it indicates that the image is real and inverted. If the value of v is positive, the image is virtual and erect.
A converging lens has a focal length of 2.5 cm, and the object is 4 cm away from the lens.
u = -4 cm (as the object is real) and
f = 2.5 cm (as the lens is converging)
Now, substitute the given values in the magnification formula to get the magnification.
M = -v / u
M = -(f / (f - u))
M = -(2.5 / (2.5 - (-4)))
M = -2.5 / 6.5M = -0.38
Hence, the magnification of the image produced by the lens is -0.38.
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What are the expected readings of the following in the figure below? (R=9.100,ΔV=5.40 V) (i) (a) ideal ammeter (Give your answer in mA ) D ma (b) ideal voltmeter (Give your answer in volts.) (c) What Ir? How would the readings in the ammeter (in mA) and voltmeter (in volts) change if the 4.50 V. battery was filpped so that its positive rerminal was to the right? ideal ammeter A mA स V ideal voltmeter
Similarly, the voltage measured by the voltmeter also changes sign, i.e, from 5.40V to -5.40V.
(i) (a) Ideal ammeter reading:Ammeter is connected in series with the circuit. It has very low resistance hence it can measure the current flowing through it. The ideal ammeter will have zero internal resistance and will not affect the circuit under test.
Ideal ammeter reading can be obtained using Ohm's law.i.e, V=IRWhere V= voltage, I=current and R=resistanceHere, V=5.40 V and R=9.100I=V/RI= 5.40/9.100 = 0.593 mATherefore, Ideal ammeter reading is 0.593 mA.
(b) Ideal voltmeter reading:Voltmeter is connected in parallel with the circuit. It has very high resistance hence it does not affect the circuit under test. The ideal voltmeter will have infinite internal resistance and will not allow the current to flow through it.
Ideal voltmeter reading is equal to the applied voltage. Here, the applied voltage is 5.40VTherefore, Ideal voltmeter reading is 5.40V.(c) Ir represents the current flowing through the resistor.
Using Ohm's law, we can calculate the value of current flowing through the resistor. V=IRTherefore, IR = V/RIR = 5.40/9.100IR = 0.593 mAIf the 4.50V battery is flipped,
the direction of the current flowing in the circuit gets reversed. Hence, the current measured by the ammeter gets reversed, i.e, from 0.593 mA to -0.593 mA. Similarly, the voltage measured by the voltmeter also changes sign, i.e, from 5.40V to -5.40V.
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A typical wall outlet in a place of residence in North America is RATED 120V, 60Hz. Knowing that the voltage is a sinusoidal waveform, calculate its: a. PERIOD b. PEAK VOLTAGE Sketch: c. one cycle of this waveform (using appropriate x-y axes: show the period on the y-axis and the peak voltage on the x-axis)
The typical wall outlet in North America has a rated voltage of 120V and operates at a frequency of 60Hz. The period of the voltage waveform is 1/60 seconds, and the peak voltage is ±170V.
The frequency of the voltage waveform represents the number of complete cycles per second, which is given as 60Hz. The period of the waveform can be calculated by taking the reciprocal of the frequency: 1/60 seconds. This means that the waveform completes one cycle every 1/60 seconds.
The peak voltage refers to the maximum voltage value reached by the waveform. In this case, the rated voltage is 120V, which represents the RMS voltage. Since the waveform is sinusoidal, the peak voltage can be both positive and negative. The [tex]V_{peak} = \sqrt{2} V_{RMS} = \sqrt{2} * 120 V = 170V[/tex]. Therefore, the peak voltage is ±170V, indicating that the voltage swings from positive 170V to negative 170V during each cycle.
The cycle of wave form is given below.
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A home run is hit such a way that the baseball just clears a wall 24 m high located 135 m from home plate. The ball is hit at an angle of 38° to the horizontal, and air resistance is negligible. Assume the ball is hit at a height of 2 m above the ground. The acceleration of gravity is 9.8 m/s2. What is the initial speed of the ball? Answer in units of m/s. Answer in units of m/s
The initial speed of the ball that is hit at an angle of 38° to the horizontal and air resistance is negligible found to be approximately 41.1 m/s.
To find the initial speed of the baseball, which just clears a 24 m high wall located 135 m from home plate, we can use the kinematic equations and consider the projectile motion of the ball.
In projectile motion, the vertical and horizontal components of motion are independent of each other. The vertical motion is influenced by gravity, while the horizontal motion remains constant.
Given that the ball just clears a 24 m high wall, we can use the vertical motion equation: h = v₀²sin²θ / (2g), where h is the height, v₀ is the initial speed, θ is the angle of projection, and g is the acceleration due to gravity.
Plugging in the values, we have 24 = v₀²sin²38° / (2 * 9.8). Solving for v₀, we find v₀ ≈ 41.1 m/s.
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Vector A points in the negative z direction. Vector points at an angle of 31.0" above the positive z axis. Vector C has a magnitude of 16 m and points in a direction 42.0* below the positive x axis. Part B Express your answer using two significant figures. |B|= ________ m
Vector A points in the negative z direction. Vector points at an angle of 31.0" above the positive z axis. Vector C has a magnitude of 16 m and points in a direction 42.0* below the positive x axis.
Vector A, A = {0, 0, -a}
Vector C, C = {16 cos 42.0°, 0, - 16 sin 42.0°}
Let B = A + B + C. Hence, B = {0, 0, -a} + {B sin 31.0° cos θ, B sin 31.0° sin θ, B cos 31.0°} + {16 cos 42.0°, 0, - 16 sin 42.0°}
Then, equating the x, y, and z components of the above equation separately, we get:
B sin 31.0° cos θ = - 16 cos 42.0°B sin 31.0° sin θ = 0
B cos 31.0° = a - 16 sin 42.0°
From the second equation, we have B = 0 or sin θ = 0, we have B = 0. But, B = 0 doesn't satisfy the third equation. Hence, sin θ = 0. So, θ = 0° or θ = 180°.When θ = 0°, we get,
B sin 31.0° cos θ = - 16 cos 42.0°B sin 31.0° (1) = - 16 cos 42.0°
B = - 16 cos 42.0° / sin 31.0°
Then, |B| = 22 m (approx.)
So, the required value of |B| is 22 m (approx.)
Note: You can also solve it by using the dot product of the vectors.
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A small steel ball moves in a vertical circle in a counter-clockwise direction with an angular velocity of 4 radians/s. with a radius of 2.50 m at a time t = 0 s. The shadow of this steel ball is at +1.00 m in the X-axis and is moving to the right.
a) Find xt) indicating its position. (SI units)
b) Find the velocity and acceleration in the X-axis as a function of the time of this shadow.
Mass 100 g is attached to the tip of an aerated spring with spring constant. 20.0 Nm, then this mass is taken out at a distance of 10.00 cm from the equilibrium point. and released from standstill
a) Find the period of vibration
b) What is the magnitude of the greatest acceleration of this mass? and where does it occur?
c) What is the greatest velocity of this mass?
d) Write the equation of motion as a function of time in SI to express position (t), velocity V(t), and acceleration a(t)
(a) The period of vibration of the mass attached to the spring is 0.279 s.
(b) The greatest acceleration of the mass is 2.00 m/s² and it occurs when the mass is at its maximum displacement from the equilibrium point.
(c) The velocity is maximum and the acceleration is zero.
(d) The equation of motion for a mass-spring system can be written as:
m * d²x(t)/dt² + k * x(t) = 0
a) To find the position of the shadow at a given time t, we can use the equation for circular motion:
x(t) = r * cos(θ(t))
where x(t) is the position of the shadow in the X-axis, r is the radius of the circular path (2.50 m), and θ(t) is the angular position at time t.
The angular position can be determined using the angular velocity:
θ(t) = θ₀ + ω * t
where θ₀ is the initial angular position (0 radians), ω is the angular velocity (4 radians/s), and t is the time.
Plugging in the values:
θ(t) = 0 + 4 * t
x(t) = 2.50 * cos(4 * t)
b) The velocity of the shadow in the X-axis can be found by differentiating the position equation with respect to time:
v(t) = dx(t)/dt = -2.50 * 4 * sin(4 * t)
The acceleration of the shadow in the X-axis can be found by differentiating the velocity equation with respect to time:
a(t) = dv(t)/dt = -2.50 * 4 * 4 * cos(4 * t)
So, the velocity as a function of time is given by v(t) = -10 * sin(4 * t), and the acceleration as a function of time is given by a(t) = -40 * cos(4 * t).
Moving on to the second part of your question:
a) To find the period of vibration of the mass attached to the spring, we can use the equation for the period of a mass-spring system:
T = 2π * sqrt(m/k)
where T is the period, m is the mass (100 g = 0.1 kg), and k is the spring constant (20.0 N/m).
Plugging in the values:
T = 2π * sqrt(0.1 / 20) ≈ 2π * sqrt(0.005) ≈ 0.279 s
b) The magnitude of the greatest acceleration of the mass occurs when it is at the maximum displacement from the equilibrium point. At this point, the acceleration is given by:
a_max = k * x_max
where x_max is the maximum displacement from the equilibrium point (10.00 cm = 0.10 m).
Plugging in the values:
a_max = 20.0 * 0.10 = 2.00 m/s²
The greatest acceleration of the mass is 2.00 m/s² and it occurs when the mass is at its maximum displacement from the equilibrium point.
c) The greatest velocity of the mass occurs when it passes through the equilibrium point. At this point, the velocity is maximum and the acceleration is zero.
d) The equation of motion for a mass-spring system can be written as:
m * d²x(t)/dt² + k * x(t) = 0
This is a second-order linear homogeneous differential equation. Solving this equation will give us the position (x(t)), velocity (v(t)), and acceleration (a(t)) as functions of time.
However, since you have already released the mass from standstill, we can assume the initial conditions as follows:
x(0) = 0 (the mass is released from the equilibrium position)
v(0) = 0 (the mass is initially at rest)
Given these initial conditions, the equation of motion can be rewritten as:
d²x(t)/dt² + (k/m) * x(t) = 0
where (k/m) is the angular frequency squared (ω²) of the system.
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An electric bus operates by drawing current from two parallel overhead cables that are both at a potential difference of 380 V and are spaced 89 cm apart. The current in both cables is in the same direction. The power input (from each wire) to the bus's motor is at its maximum power of 19 kW. a. What current does the motor draw? A b. What is the magnetic force per unit length between the cables?
(a) The current that the motor draws is 100 A
(b) The magnetic force per unit length between the cables is 0.116 N/m.
The power input to the motor from each wire is maximum, i.e., P = 19 kW. Thus, the total power input to the motor is
2 × P = 38 kW.
We know that, Power (P) = V x I where V is the potential difference between the cables and I is the current flowing through them. So, the current drawn by the motor is given as
I = P / V
Substitute the given values, P = 38 kW and V = 380 V
Therefore, I = 38 x 10^3 / 380 = 100 A.
The distance between the cables is 89 cm. So, the magnetic force per unit length between the cables is given by
f = μ₀I²l / 2πd where μ₀ = 4π × 10⁻⁷ T m/A is the permeability of free space, I is the current in the cables, l is the length of the section of each cable where the magnetic field is to be calculated and d is the distance between the cables.
In this case, l = d = 89 cm = 0.89 m.
Substitute the given values,μ₀ = 4π × 10⁻⁷ T m/AI = 100 Al = d = 0.89 m
Therefore, f = μ₀I²l / 2πd= 4π × 10⁻⁷ × 100² × 0.89 / (2 × π × 0.89)= 0.116 N/m
Therefore, the magnetic force per unit length between the cables is 0.116 N/m.
Thus the current drawn by the motor is 100 A and the magnetic force per unit length between the cables is 0.116 N/m.
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A speed skater moving across frictionless ice at 8.0 m/s hits a 6.0 m -wide patch of rough ice. She slows steadily, then continues on at 6.1 m/s . Part A What is her acceleration on the rough ice? Express your answer in meters per second squared. a = m/s2
The problem requires us to calculate the acceleration of a speed skater when she moves across a frictionless ice and hits a 6.0 m-wide patch of rough ice.
The initial velocity (u) of the speed skater = 8.0 m/s
The final velocity (v) of the speed skater = 6.1 m/s
The distance covered (s) by the speed skater = 6.0 m
The formula used here is given below:
v² = u² + 2as
where,v = final velocity
u = initial velocity
a = acceleration
and s = distance covered.
a = (v² - u²) / 2s
= (6.1² - 8.0²) / 2(6.0)a
= -2.48 m/s² [Negative sign shows the speed skater is decelerating]
Hence, the acceleration of the speed skater on the rough ice is -2.48 m/s² (rounded to two decimal places).
Note: The distance covered by the speed skater is 6.0 m only. The distance is not a factor here as the acceleration of the skater is concerned.
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Your brain assumes A. parallel light reflects through the focal point B. light through a focal point reflects parallel C. the angle of incidence equals the angle of reflection D. that light travels in a straight line
The correct answer is D. that light travels in a straight line. The propensity of electromagnetic waves (light) to move in a straight path is known as rectilinear propagation.
The principle that your brain assumes is known as the principle of rectilinear propagation of light. According to this principle, light travels in straight lines in a homogeneous medium unless it encounters an obstacle or undergoes a change in medium. This principle forms the basis for the behavior of light in various optical phenomena such as reflection, refraction, and image formation. When passing through a homogeneous material, which has a constant refractive index throughout, light does not deviate; otherwise, light experiences refraction. The individual rays are flowing in straight lines even if a wave front may be curved (such as the waves produced when a rock strikes a body of water). Pierre de Fermat made the discovery of rectilinear propagation.
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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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What is the magnetic field at the center of a single (N=1 turn) circular loop of wire or radius 10 cm carrying a current of 2.5 A ? 2.41×10 −4
T 5.0×10 −6
T 1.57×10 −7
T 3.14×10 −5
T
The magnetic field at the center of a single circular loop of wire or radius 10 cm carrying a current of 2.5 A is 3.14 × 10-5 T.
Magnetic field at the center of a single circular loop of wire or radius 10 cm carrying a current of 2.5 A can be calculated using the formula;
B=μ0I/2R
where B is the magnetic field, I is the current flowing, R is the radius of the loop and μ0 is the permeability of free space.The given values are;I = 2.5 AR = 10 cm = 0.1 mμ0 = 4π × 10-7 T m/A.
Substitute the values into the formula; B = μ0I/2R = (4π × 10-7 T m/A) × (2.5 A)/2(0.1 m)= 3.14 × 10-5 T
Therefore, the magnetic field at the center of a single circular loop of wire or radius 10 cm carrying a current of 2.5 A is 3.14 × 10-5 T.
Answer: 3.14×10^−5T.
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You are given a black box circuit and you are to apply an input vi(t)=3u(t)V. The voltage response can be described by vo(t)=(5e−8t−2e−5t)V for t≥0. What will be the steady-state response of the circuit if you apply another input voltage described by vi(t)=100cos6t V for t≥0 ?
The steady-state response of the circuit to the input voltage vi(t) = 100cos(6t) V is given by vo(t) = 100*cos(6t + φ) V
To determine the steady-state response of the circuit to the input voltage described by vi(t) = 100cos(6t) V, we need to find the response after transient effects have settled. The given voltage response vo(t) = 5e^(-8t) - 2e^(-5t) V is the transient response for the previous input.
To find the steady-state response, we need to find the particular solution that corresponds to the new input. Since the input is a sinusoidal signal, we assume the steady-state response will also be sinusoidal with the same frequency.
1. Find the steady-state response of the circuit for the new input voltage:
We assume the steady-state response will be of the form vp(t) = A*cos(6t + φ), where A is the amplitude and φ is the phase angle to be determined.
2. Apply the new input voltage to the circuit:
vi(t) = 100cos(6t) V
3. Find the output voltage in the steady-state:
vo(t) = vp(t)
4. Substitute the input and output voltages into the equation:
100cos(6t) = A*cos(6t + φ)
5. Compare the coefficients of the same terms on both sides of the equation:
100 = A (since the cos(6t) terms are equal)
6. Solve for the amplitude A:
A = 100
7. The steady-state response of the circuit for the new input voltage is:
vo(t) = 100*cos(6t + φ) V
Therefore, the steady-state response of the circuit to the input voltage vi(t) = 100cos(6t) V is given by vo(t) = 100*cos(6t + φ) V, where φ is the phase angle that depends on the initial conditions of the circuit.
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Shaving/makeup mirrors typically have one flat and one concave (magnifying) surface. You find that you can project a magnified image of a lightbulb onto the wall of your bathroom if you hold the mirror 1.8 m from the bulb and 3.5 m from the wall. (a) What is the magnification of the image? (b) Is the image erect or inverted? (c) What is the focal length of the mirror?
The magnification is approximately -1.944, indicating an inverted image. The focal length of the mirror is approximately 1.189 meters. To determine the magnification of the image formed by the magnifying mirror, we can use the mirror equation:
1/f = 1/d₀ + 1/dᵢ,
where f is the focal length of the mirror, d₀ is the object distance (distance from the bulb to the mirror), and dᵢ is the image distance (distance from the mirror to the wall).
(a) Magnification (m) is given by the ratio of the image distance to the object distance:
m = -dᵢ/d₀,
where the negative sign indicates an inverted image.
(b) The sign of the magnification tells us whether the image is erect or inverted. If the magnification is positive, the image is erect; if it is negative, the image is inverted.
(c) To find the focal length of the mirror, we can rearrange the mirror equation 1/f = 1/d₀ + 1/dᵢ, and solve for f.
d₀ = 1.8 m (object distance)
dᵢ = 3.5 m (image distance)
(a) Magnification:
m = -dᵢ/d₀ = -(3.5 m)/(1.8 m) ≈ -1.944
The magnification is approximately -1.944, indicating an inverted image.
(b) The image is inverted.
(c) Focal length:
1/f = 1/d₀ + 1/dᵢ = 1/1.8 m + 1/3.5 m ≈ 0.5556 + 0.2857 ≈ 0.8413
Now, solving for f:
f = 1/(0.8413) ≈ 1.189 m
The focal length of the mirror is approximately 1.189 meters.
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(a) An amplitude modulated signal is given by the below equation: VAM (t) = 0.1[1 + 0.5 cos 6280t]. Sin [107t + 45°] V From the given information plot the frequency spectrum of the AM modulated signal. [7 marks] (b) The expression shown in the below equation describes the Frequency Modulated (FM) signal wave as a function of time: VFM (t) = 15 cos[2π(150 x 10³ t) + 5 cos (6 × 10³ nt)] V The carrier frequency is 150 KHz and modulating signal frequency is 3 KHz. The FM signal is coupled across a 10 2 load. Using the parameters provided, calculate maximum and minimum frequencies, modulation index and FM power that appears across the load: [12 marks] (c) Show the derivation that the general Amplitude Modulation (AM) equation has three frequencies generated from the signals below: Carrier signal, vc = Vc sinwet Message signal, um = Vm sin wmt
a) The frequency spectrum of the given AM modulated signal has the carrier frequency 6280 rad/s, upper sideband frequency 6387 rad/s, and lower sideband frequency 6173 rad/s.
b) The maximum and minimum frequencies are 150.0095 KHz and 149.9905 KHz respectively. FM power that appears across the load: 3.042 mW
c) general AM signal equation: Vm(t) = [A[tex]_{c}[/tex] cosω[tex]_{c}[/tex]t + (A[tex]_{m}[/tex]/2) cos(ω[tex]_{c}[/tex] + ω[tex]_{m}[/tex])t + (A[tex]_{m}[/tex]/2) cos(ω[tex]_{c}[/tex] - ω[tex]_{m}[/tex])t]
(a)Frequency spectrum of the AM modulated signal:
Given,
VAM (t) = 0.1[1 + 0.5 cos 6280t]. Sin [107t + 45°] V
The general form of the AM signal is given by:
Vm(t) = [A[tex]_{c}[/tex] + A[tex]_{m}[/tex] cosω[tex]_{m}[/tex]t] cosω[tex]_{c}[/tex]t
Let's compare the given signal and general form of the AM signal,
VAM (t) = 0.1[1 + 0.5 cos 6280t]. Sin [107t + 45°] V
Vm(t) = (0.5 x 0.1) cos (6280t) cos (107t + 45°)
Amplitude of carrier wave,
Ac = 0.1
Frequency of carrier wave,
ω[tex]_{c}[/tex] = 6280 rad/s
Amplitude of message signal,
A[tex]_{m}[/tex] = 0.05
Frequency of message signal,
ω[tex]_{m}[/tex] = 107 rad/s
Let's calculate the upper sideband frequency,
ω[tex]_{us}[/tex] = ω[tex]_{c}[/tex] + ω[tex]_{m}[/tex]= 6280 + 107 = 6387 rad/s
Let's calculate the lower sideband frequency,
ω[tex]_{ls}[/tex] = ω[tex]_{c}[/tex] - ω[tex]_{m}[/tex]= 6280 - 107 = 6173 rad/s
Hence, the frequency spectrum of the given AM modulated signal has the carrier frequency 6280 rad/s, upper sideband frequency 6387 rad/s, and lower sideband frequency 6173 rad/s.
(b) Calculation of maximum and minimum frequencies, modulation index, and FM power:
Given,
Carrier frequency, f[tex]_{c}[/tex] = 150 KHz
Modulating signal frequency, f[tex]_{m}[/tex] = 3 KHz
Coupling resistance, RL = 102 Ω
The general expression of FM signal is given by:
VFM (t) = A[tex]_{c}[/tex] cos[ω[tex]_{c}[/tex]t + β sin(ω[tex]_{m}[/tex]t)]
Where, A[tex]_{c}[/tex] is the amplitude of the carrier wave ω[tex]c[/tex] is the carrier angular frequency
β is the modulation index
β = (Δf / f[tex]m[/tex])Where, Δf is the frequency deviation
Maximum frequency, f[tex]max[/tex] = f[tex]m[/tex]+ Δf
Minimum frequency, f[tex]min[/tex] = f[tex]_{c}[/tex] - Δf
Maximum phase deviation, φ[tex]max[/tex] = βf[tex]m[/tex]2π
Minimum phase deviation, φ[tex]min[/tex] = - βf[tex]m[/tex]2π
Let's calculate the modulation index, β = Δf / f[tex]m[/tex]= (f[tex]max[/tex] - f[tex]min[/tex]) / f[tex]m[/tex]= (150 + 7.5 - 150 + 7.5) / 3= 5/6000= 1/1200
Let's calculate the maximum and minimum frequencies, and FM power.
The value of maximum phase deviation, φ[tex]max[/tex] = βf[tex]m[/tex]2π= (1/1200) x 6 x 103 x 2π= π/1000
The value of minimum phase deviation, φ[tex]min[/tex] = - βf[tex]m[/tex]2π= -(1/1200) x 6 x 103 x 2π= -π/1000
Let's calculate the maximum frequency,
f[tex]max[/tex] = f[tex]c[/tex] + Δf= f[tex]c[/tex] + f[tex]m[/tex] φ[tex]max[/tex] / 2π= 150 x 103 + (3 x 103 x π / 1000)= 150.0095 KHz
Let's calculate the minimum frequency,
f[tex]min[/tex] = f[tex]c[/tex]- Δf= f[tex]c[/tex] - f[tex]m[/tex]
φ[tex]max[/tex] / 2π= 150 x 103 - (3 x 103 x π / 1000)= 149.9905 KHz
Hence, the maximum and minimum frequencies are 150.0095 KHz and 149.9905 KHz respectively.
Let's calculate the FM power,
[tex]PFM = (Vm^{2} / 2) (R_{L} / (R_{L} + Rs))^2[/tex]
Where, V[tex]m[/tex] = Ac β f[tex]m[/tex]R[tex]_{L}[/tex] is the load resistance
R[tex]s[/tex] is the internal resistance of the source
PFM = (0.5 x Ac² x β² x f[tex]m[/tex]² x R[tex]_{L}[/tex]) (R[tex]_{L}[/tex] / (R[tex]_{L}[/tex] + R[tex]s[/tex]))^2
PFM = (0.5 x 15² x (1/1200)² x (3 x 10³)² x 102) (102 / (102 + 10))²
PFM = 0.003042 W = 3.042 m W
(c) Derivation of general AM signal equation:
The equation of a general AM wave is,
V m(t) = [A[tex]c[/tex] + A[tex]m[/tex] cosω[tex]m[/tex]t] cosω[tex]c[/tex]t
Where, V m(t) = instantaneous value of the modulated signal
A[tex]c[/tex] = amplitude of the carrier wave
A[tex]m[/tex] = amplitude of the message signal
ω[tex]c[/tex] = angular frequency of the carrier wave
ω[tex]m[/tex] = angular frequency of the message signal
Let's find the frequency components of the general AM wave using trigonometric identities.
cosα cosβ = (1/2) [cos(α + β) + cos(α - β)]
cosα sinβ = (1/2) [sin(α + β) - sin(α - β)]
sinα cosβ = (1/2) [sin(α + β) + sin(α - β)]
sinα sinβ = (1/2) [cos(α - β) - cos(α + β)]
Vm(t) = [Ac cosω[tex]_{c}[/tex]t + (A[tex]m[/tex]/2) cos(ω[tex]_{c}[/tex]+ ω[tex]m[/tex])t + (A[tex]m[/tex]/2) cos(ω[tex]_{c}[/tex] - ω[tex]m[/tex])t]
From the above equation, it is clear that the modulated signal consists of three frequencies,
Carrier wave frequency ω[tex]_{c}[/tex]
Lower sideband frequency (ω[tex]_{c}[/tex]- ω[tex]m[/tex])
Upper sideband frequency (ω[tex]_{c}[/tex] + ω[tex]m[/tex])
Hence, this is the derivation of the general AM signal equation which shows the generation of three frequencies from the carrier and message signals.
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Electrons in an x-ray machine are accelerated from rest through a potential difference of 60 000 V. What is the kinetic energy of each of these electrons in eV?
60 eV
96 eV
38 eV
60 keV
120 eV
Electrons in an x-ray machine are accelerated from rest through a potential difference of 60 000 V. Therefore, the kinetic energy of each of these electrons is 60 keV.
Given ,Potential difference, V = 60,000 V. The energy of an electron, E = potential difference x charge of an electron (e)
The charge of an electron is e = 1.6 × 10⁻¹⁹CThe kinetic energy of an electron is calculated by using the formula, Kinetic energy = energy of an electron - energy required to remove an electron from an atom = E - ϕ where, ϕ is work function, which is the energy required to remove an electron from an atom.
This can be expressed as, Kinetic energy of an electron = eV - ϕ Now, let's find the energy of an electron.
Energy of an electron, E = potential difference x charge of an electron (e)= 60,000 V × 1.6 × 10⁻¹⁹C = 9.6 × 10⁻¹⁵ J
Now, to find the kinetic energy of each of these electrons in eV, Kinetic energy of an electron = E/e= (9.6 × 10⁻¹⁵ J) / (1.6 × 10⁻¹⁹ C) = 6 × 10⁴ eV= 60 keV
Therefore, the kinetic energy of each of these electrons in eV is 60 keV.
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Two point charges of 6.96 x 10-9 C are situated in a Cartesian coordinate system. One charge is at the origin while the other is at (0.71, 0) m. What is the magnitude of the net electric field at the location (0, 0.78) m?
Answer: The net electric field at the location `(0, 0.78) m` is approximately `6.69 × 10² N/C` away from the second charge.
The electric field E at a location due to a point charge can be calculated by using Coulomb's law: `E = kq / r²`, where k is Coulomb's constant `8.99 × 10^9 N · m²/C²`, q is the charge and r is the distance from the charge to the point in question.
To find the net electric field at a point due to multiple charges, we need to calculate the electric field at that point due to each charge and then vectorially add those fields. Now, we will find the net electric field at the location (0, 0.78) m.
We know that the Two point charges of `6.96 × 10^-9 C` are situated in a Cartesian coordinate system. One charge is at the origin while the other is at `(0.71, 0)` m. The distance between the first charge and the point of interest is `r1 = 0.78 m` and the distance between the second charge and the point of interest is `r2 = 0.71 m`. The magnitude of the electric field at a distance `r` from a charge `q` is `E = kq/r^2`.
Thus, the magnitude of the electric field due to the first charge is:
E1 = kq1 / r1²
= (8.99 × 10^9) × (6.96 × 10^-9) / (0.78)²
≈ 1.39 × 10^3 N/C.
The direction of this electric field is towards the first charge. The magnitude of the electric field due to the second charge is:
E2 = kq2 / r2²
= (8.99 × 10^9) × (6.96 × 10^-9) / (0.71)²
≈ 2.06 × 10^3 N/C.
The direction of this electric field is away from the second charge. The net electric field is the vector sum of these two fields. Since they are in opposite directions, we can subtract their magnitudes:
E_net = E2 - E1 = 2.06 × 10³ - 1.39 × 10³ ≈ 6.69 × 10² N/C.
The direction of this electric field is the direction of the stronger field, which is away from the second charge.
Therefore, the net electric field at the location `(0, 0.78) m` is approximately `6.69 × 10² N/C` away from the second charge.
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A 2.32cm-tall object is placed 5.2 cm in front of a convex mirror with radius of curvafure 21 cm. Part (a) What is the image distance, in centimeters? Include its sign. s’ = ___________
Hints: 0% deduction per hint. Hints remaining : 2 Feedback: 0% deduction per feedback
Part (b) What is the image height, in centimeters? Include its sign.
Part (c) What is the orientation of the image relative to the object?
The image distance is + 2.00 cm and height is - 0.88 cm, inverted image.
Part (a)
Image distance, s′ = ?
We have the object distance (u) = - 5.2 cm
Radius of curvature (R) = + 21 cm (because it is a convex mirror)
We know that the mirror formula is given by:
1/f = 1/v + 1/u
where
f is the focal length of the mirror.
Putting the values of u and R, we get:
1/f = 1/v + 1/R
Since we are not given the focal length, we cannot use the above formula. However, we can use the mirror formula to calculate the image distance which is given as:
s′ = (f * u)/(u + f)s′ = - (R * u)/(u - R) [we know that for a convex mirror, the focal length is negative]
s′ = - (21 * (- 5.2))/(−5.2 − 21)s′ = 2.00 cm
Therefore, the image distance, s′ = + 2.00 cm (since the image is formed on the same side of the mirror as the object, the image distance is positive).
Part (b)
Image height, h′ = ?
The magnification of the image is given by:
- v/u,
where
v is the image distance.
Since the magnification is negative, the image is inverted with respect to the object.
Magnification, m = - v/u = h'/h
where
h' is the image height
h is the object height
Substituting the values, we get:
m = - v/u = h'/h
2.32/h = - 2.00/(- 5.2)
h' = 0.88 cm
The image height, h′ = - 0.88 cm (because the image is inverted)
Part (c)
Orientation of the image relative to the object:
The magnification is negative, which implies that the image is inverted relative to the object.
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A wheel with radius 37.9 cm rotates 5.77 times every second. Find the period of this motion. period: What is the tangential speed of a wad of chewing gum stuck to the rim of the wheel? tangential speed: m/s A device for acclimating military pilots to the high accelerations they must experience consists of a horizontal beam that rotates horizontally about one end while the pilot is seated at the other end. In order to achieve a radial acceleration of 26.9 m/s 2
with a beam of length 5.69 m, what rotation frequency is required? A electric model train travels at 0.317 m/s around a circular track of radius 1.79 m. How many revolutions does it perform per second (i.e, what is the motion's frequency)? frequency: Suppose a wheel with a tire mounted on it is rotating at the constant rate of 2.17 times a second. A tack is stuck in the tire at a distance of 0.351 m from the rotation axis. Noting that for every rotation the tack travels one circumference, find the tack's tangential speed. tangential speed: m/s What is the tack's centripetal acceleration? centripetal acceleration: m/s 2
Therefore, the tack's centripetal acceleration is approximately 65.2 m/s².
The given radius of a wheel is r = 37.9 cm, and it rotates 5.77 times every second. Let's find the period of this motion. The period is defined as the time taken by an object to complete one full cycle. It can be calculated using the formula: T = 1/f. where T is the period and f is the frequency. The frequency is given by: f = 5.77 rotations/sec. We can plug in the value of frequency in the above equation to get the period: T = 1/5.77 ≈ 0.173 seconds Now, let's find the tangential speed of a wad of chewing gum stuck to the rim of the wheel. The tangential speed is defined as the linear speed of an object moving along a circular path and can be calculated using the formula: v = rw where v is the tangential speed, r is the radius, and w is the angular velocity. The angular velocity can be calculated as follows: w = 2πf.
where f is the frequency. We can plug in the value of f in the above equation to get:w = 2π × 5.77 ≈ 36.24 rad/s. Now, let's plug in the values of r and w in the formula to get the tangential speed: v = rw = 37.9 × 36.24 ≈ 1374.08 cm/s = 13.74 m/s. Therefore, the tangential speed of a wad of chewing gum stuck to the rim of the wheel is approximately 13.74 m/s. Now let's find the rotation frequency that is required to achieve a radial acceleration of 26.9 m/s² with a beam of length 5.69 m. The radial acceleration is given by: a = w²rwhere w is the angular velocity and r is the radius. In this case, the radius is equal to the length of the beam, so:cr = 5.69 mWe want the radial acceleration to be 26.9 m/s², so we can plug in these values in the above formula to get:26.9 = w² × 5.69Now, let's solve for w:w² = 26.9/5.69 ≈ 4.72w ≈ 2.17 rad/s, The rotation frequency is equal to the angular velocity divided by 2π, so we can find it as follows: f = w/2π = 2.17/2π ≈ 0.345 Hz.n Therefore, the rotation frequency required to achieve a radial acceleration of 26.9 m/s² with a beam of length 5.69 m is approximately 0.345 Hz. Let's find the number of revolutions the electric model train performs per second. The speed of the train is v = 0.317 m/s, and the radius of the circular track is r = 1.79 m. The frequency is defined as the number of cycles per second, and in this case, each cycle is one full rotation around the circular track. Therefore, the frequency is equal to the number of rotations per second. The tangential speed is given by:v = rwwhere w is the angular velocity. We can rearrange this equation to get:w = v/rNow, let's plug in the values of v and r to get:w = 0.317/1.79 ≈ 0.177 rad/sThe frequency is given by:f = w/2π = 0.177/2π ≈ 0.0281 HzThe number of revolutions per second is equal to the frequency, so the train performs approximately 0.0281 revolutions per second. Finally, let's find the tack's tangential speed and centripetal acceleration. The distance between the tack and the axis of rotation is d = 0.351 m. The tangential speed is equal to the linear speed of a point on the tire at the distance d from the axis of rotation. We can find it as follows:v = rwwhere r is the radius and w is the angular velocity. The radius is equal to the distance between the tack and the axis of rotation, so:r = dNow, let's find the angular velocity. One rotation is equal to one circumference, which is equal to 2π times the radius of the tire. Therefore, the angular velocity is:w = 2πfwhere f is the frequency. We can find the frequency as follows:f = 2.17 rotations/secondThe angular velocity is:w = 2π × 2.17 ≈ 13.65 rad/sNow, let's plug in the values of r and w in the formula to get the tangential speed:v = rw = 0.351 × 13.65 ≈ 4.79 m/sTherefore, the tack's tangential speed is approximately 4.79 m/s. The centripetal acceleration is given by:a = v²/rwhere v is the tangential speed and r is the radius.We can plug in the values of v and r to get:a = v²/r = (4.79)²/0.351 ≈ 65.2 m/s². Therefore, the tack's centripetal acceleration is approximately 65.2 m/s².
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