Option c) A and C statements are TRUE about a body moving in circular motion.
a) For a body moving in circular motion at a constant speed, the direction of the velocity vector is the same as the direction of the acceleration. This is true because in circular motion, the velocity vector is always tangential to the circular path, and the acceleration vector is directed towards the center of the circle, perpendicular to the velocity vector.
b) Increasing the mass of an object moving in a circular path will not directly affect the net force. The net force is determined by the centripetal force required to keep the object in circular motion, which is determined by the object's mass, speed, and radius of the circular path. Increasing the mass alone does not change the net force.
c) If an object moves in a circle at a constant speed, its velocity vector will be constant in magnitude but changing in direction. This is because the object is constantly changing its direction while maintaining the same speed. Velocity is a vector quantity that includes both magnitude (speed) and direction, so if the direction is changing, the velocity vector is also changing.
Therefore, the correct statements are A and C.
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A 0.200-kg object is attached to a spring that has a force constant of 95.0 N/m. The object is pulled 7.00 cm to the right of equilibrium and released from rest to slide on a horizontal, frictionless table. Calculate the maximum speed Umas of the object. Upis m/y Find the location x of the object relative to equilibrium when it has one-third of the maximum speed, is moving to the right, and is speeding up. m
The maximum speed of the object is Umas = 1.516 m/s. The location of the object relative to equilibrium when it has one-third of the maximum speed, is moving to the right, and is speeding up is x = 6.97 cm..
To find the maximum speed of the object, we can use the concept of mechanical energy conservation. At the maximum speed, all the potential energy stored in the spring is converted into kinetic energy.
The potential energy stored in the spring is given by:
Potential energy (PE) = (1/2)kx²
Where:
k = force constant of the spring = 95.0 N/m
x = displacement of the object from equilibrium = 7.00 cm = 0.0700 m (converted to meters)
Substituting the values into the equation:
PE = (1/2)(95.0 N/m)(0.0700 m)²
PE ≈ 0.230 Joules
At the maximum speed, all the potential energy is converted into kinetic energy:
Kinetic energy (KE) = 0.230 Joules
The kinetic energy is given by:
KE = (1/2)mv²
Where:
m = mass of the object = 0.200 kg
v = maximum speed of the object (Umas)
Substituting the values into the equation:
0.230 Joules = (1/2)(0.200 kg)v²
v² = (0.230 Joules) * (2/0.200 kg)
v² = 2.30 Joules/kg
v ≈ 1.516 m/s
Therefore, the maximum speed of the object is Umas ≈ 1.516 m/s.
To find the location of the object relative to equilibrium when it has one-third of the maximum speed, we can use the concept of energy conservation again. At this point, the kinetic energy is one-third of the maximum kinetic energy.
KE = (1/2)mv²
(1/3)KE = (1/6)mv²
Substituting the values into the equation:
(1/3)(0.230 Joules) = (1/6)(0.200 kg)v²
0.077 Joules = (0.0333 kg)v²
v² = 2.311 Joules/kg
v ≈ 1.519 m/s
Now, we need to find the displacement x of the object from equilibrium at this velocity. We can use the formula for the potential energy stored in the spring:
PE = (1/2)kx²
Rearranging the equation:
x² = (2PE) / k
x² = (2 * 0.230 Joules) / 95.0 N/m
x² ≈ 0.004842 m²
x ≈ ±0.0697 m
Since the object is moving to the right, the displacement x will be positive:
x ≈ 0.0697 m
Converting this to centimeters:
x ≈ 6.97 cm
Therefore, the location of the object relative to equilibrium when it has one-third of the maximum speed, is moving to the right, and is speeding up is x ≈ 6.97 cm.
The maximum speed of the object is Umas ≈ 1.516 m/s. The location of the object relative to equilibrium when it has one-third of the maximum speed, is moving to the right, and is speeding up is x ≈ 6.97 cm.
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a lens has a refractive power of -1.50. what is its focal length?
It has been determined that the focal length of the lens is -0.6667 m.
Given: The refractive power of a lens is -1.50We are supposed to find the focal length of the given lens
Solution:The formula to find the focal length of a lens is given by:1/f = (n-1) (1/R1 - 1/R2)
Given: Refractive power (P) = -1.50
As we know that, P = 1/f (Where f is the focal length)
Hence, -1.50 = 1/fOr, f = -1/1.5= -0.6667 m
Therefore, the focal length of the given lens is -0.6667 m.
From the above calculations, it has been determined that the focal length of the lens is -0.6667 m.
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A capacitor is discharged through a 20.0 Ω resistor. The discharge current decreases to 22.0% of its initial value in 1.50 ms.
What is the time constant (in ms) of the RC circuit?
a) 0.33 ms
b) 0.67 ms
c) 1.50 ms
d) 3.75 ms
The time constant (in ms) of the RC circuit is 3.75 ms. Hence, the correct option is (d) 3.75 ms.
The rate of decay of the current in a charging capacitor is proportional to the current in the circuit at that time. Therefore, it takes longer for a larger current to decay than for a smaller current to decay in a charging capacitor.A capacitor is discharged through a 20.0 Ω resistor.
The discharge current decreases to 22.0% of its initial value in 1.50 ms. We can obtain the time constant of the RC circuit using the following formula:$$I=I_{o} e^{-t / \tau}$$Where, I = instantaneous current Io = initial current t = time constant R = resistance of the circuit C = capacitance of the circuit
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The time constant of the RC circuit is approximately 0.674 m s.
To determine the time constant (τ) of an RC circuit, we can use the formula:
τ = RC
Given that the discharge current decreases to 22.0% of its initial value in 1.50 m s, we can calculate the time constant as follows:
The percentage of the initial current remaining after time t is given by the equation:
I(t) =[tex]I_oe^{(-t/\tau)[/tex]
Where:
I(t) = current at time t
I₀ = initial current
e = Euler's number (approximately 2.71828)
t = time
τ = time constant
We are given that the discharge current decreases to 22.0% of its initial value. Therefore, we can set up the following equation:
0.22 =[tex]e^{(-1.50/\tau)[/tex]
To solve for τ, we can take the natural logarithm (ln) of both sides:
ln(0.22) = [tex]\frac{-1.50}{\tau}[/tex]
Rearranging the equation to solve for τ:
τ = [tex]\frac{-1.50 }{ ln(0.22)}[/tex]
Calculating this expression:
τ ≈ 0.674 m s
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what is the best definition of relativistic thought according to perry
Relativistic thought refers to the recognition that our perceptions and beliefs are influenced by our experiences, upbringing, and cultural and social environments, according to Perry.
It suggests that reality is subjectively constructed rather than objectively discovered, and that what is "true" or "right" for one person or group may not be for another. Relativistic thinking entails a degree of tolerance for opposing viewpoints and a willingness to engage in dialogue rather than debate or dismiss opposing perspectives. Instead of seeing things in black and white, relativistic thought acknowledges the nuances and complexity of human experience and acknowledges that there may be multiple valid perspectives on any given issue.
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a child on a merry-go-round takes 4.4 s to go around once. what is his angular displacement during a 1.0 s time interval?
The child's angular displacement during a 1.0 s time interval is approximately 1.432 radians.
To determine the angular displacement of the child on the merry-go-round during a 1.0 s time interval, we can use the formula:
Angular Displacement (θ) = Angular Velocity (ω) × Time (t)
The angular velocity (ω) can be calculated by dividing the total angular displacement by the total time taken to complete one revolution.
In this case:
Time taken to go around once (T) = 4.4 s
Angular Velocity (ω) = 2π / T
Angular Velocity (ω) = 2π / 4.4 s ≈ 1.432 radians/s
Now, we can calculate the angular displacement during a 1.0 s time interval:
Angular Displacement (θ) = Angular Velocity (ω) × Time (t)
Angular Displacement (θ) = 1.432 radians/s × 1.0 s
Angular Displacement (θ) ≈ 1.432 radians
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The angular displacement of the child during a 1.0 s time interval is 1.44 radian. The given values are, Time taken by the child to go around once, t = 4.4 s Time interval, t₁ = 1 s
Formula used: Angular displacement (θ) = (2π/t) × t₁. Substitute the given values in the formula, Angular displacement (θ) = (2π/t) × t₁= (2π/4.4) × 1= 1.44 radian. Thus, the angular displacement of the child during a 1.0 s time interval is 1.44 radian.
The change in the angular position of an object or a point in a rotational system is known as angular displacement and it measures the amount and direction of rotation from an initial position to a final position. Angular displacement is an important concept in physics and engineering, as it helps to describe a rotational motion.
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21.42 using cyclopentanone as your starting material and using any other reagents of your choice, propose an efficient synthesis for each of the following compounds
Cyclopentanone, C5H8O is a cyclic ketone and can be converted to various organic compounds with the help of different reagents. Thus, cyclopentanone can be used as a starting material to synthesize different organic compounds using various reagents and catalysts.
Here, efficient syntheses for three organic compounds using cyclopentanone as a starting material are given below:
1) 2-Methylcyclopentanone: It can be prepared by the reaction of cyclopentanone with isopropyl, magnesium bromide, followed by hydrolysis of the resulting product. This reaction is shown below:
2) Cyclopentylmethanol: It can be prepared by the reduction of cyclopentanone with sodium borohydride (NaBH4) in methanol. This reaction is shown below:
3) 2-Cyclopenten-1-one: It can be prepared by the dehydration of cyclopentanol, which can be prepared by the reduction of cyclopentanone with lithium aluminum hydride (LiAlH4). The dehydration of cyclopentanol can be carried out by the elimination of water molecule using an acid catalyst like H2SO4. The overall reaction is shown below.
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A 20.0-kg cannon ball is fired from a cannon with a muzzle speed of 100 m/s at an angle of 20.0° with the horizontal. Use the conservation of energy principle to find the maximum height reached by ba
A 20.0 kg cannonball is fired from a cannon with a muzzle speed of 100 m/s at an angle of 20.0°. Using conservation of energy, the maximum height reached by the cannonball is approximately 510.2 meters.
A cannon ball weighing 20.0 kg is launched from a cannon with an initial velocity of 100 m/s at an angle of 20.0° above the horizontal.
To determine the maximum height reached by the cannonball using the conservation of energy principle, we consider the conversion of kinetic energy into gravitational potential energy.
Initially, the cannonball has only kinetic energy, given by the equation KE = (1/2)mv², where m is the mass and v is the velocity.
At the highest point of its trajectory, the cannonball has no vertical velocity, meaning it has no kinetic energy but possesses gravitational potential energy, given by the equation PE = mgh, where h is the height and g is the acceleration due to gravity (approximately 9.8 m/s²).
Using the conservation of energy, we equate the initial kinetic energy to the maximum potential energy:
(1/2)mv² = mgh
Canceling the mass and rearranging the equation, we find:
v²/2g = h
Plugging in the given values, we have:
(100²)/(2*9.8) = h
Simplifying the equation, we find:
h ≈ 510.2 m
Therefore, the maximum height reached by the cannonball is approximately 510.2 meters.
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if a dvd is spinning at 100 mph and has a radius of 14 inches, what is the linear speed of a point 3 inches from the center.
The linear speed of a point 3 inches from the center of a DVD spinning at 100 mph and with a radius of 14 inches is approximately 219.91 mph.
Linear speed is the rate at which an object moves along a circular path. It is measured in distance per unit time, such as miles per hour (mph) or meters per second (m/s).
The formula for linear speed is:
v = rω where:
v = linear speed
r = radius of the circle
rω = angular speed (measured in radians per second)
To calculate the linear speed of a point on a DVD spinning at 100 mph and with a radius of 14 inches, we need to convert the units of the given speed from mph to inches per second:
100 mph = (100 x 5280 feet) / 3600 seconds = 146.67 feet/second
146.67 feet/second = 1760 inches/second
Next, we need to find the angular speed ω of the DVD.
Angular speed is the rate at which an object rotates about an axis, and it is measured in radians per second. The formula for angular speed is:
ω = 2πf where:
ω = angular speed
f = frequency (measured in hertz)
π = 3.14159...
The frequency f of the DVD is equal to its rotational speed divided by the number of revolutions per second. One revolution is a complete turn around the circle, or 2π radians. Therefore, the frequency is:
f = (100 mph) / (2π x 14 inches x 3600 seconds/5280 feet) = 0.862 hertz
Finally, we can substitute the given values into the formula for linear speed:
v = rωv = (14 + 3) inches x 2π x 0.862 hertz = 219.91 inches/second
Therefore, the linear speed of a point 3 inches from the center of a DVD spinning at 100 mph and with a radius of 14 inches is approximately 219.91 mph.
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