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WorksheetsPHYSICS
Total questions: 50
Worksheet time: 26mins
Block 𝐴 is set on a rough horizontal table and is connected to a horizontal spring that is fixed to a wall, as shown. Block 𝐴 is then also connected to hanging block 𝐵 by a lightweight string that passes over an ideal pulley, as shown. The friction force exerted on block A by the table is not negligible. The blocks are initially held at rest so that the spring is not stretched. When the blocks are released, hanging block 𝐵 moves downward and block 𝐴 on the table moves to the right until the system comes again to rest. Let 𝐸1 be the mechanical energy of the blocks-spring system, and let 𝐸2 be the mechanical energy of the blocks-spring-Earth system. How do these two energies change from when the blocks are held at rest to when the blocks come to rest again?
A
B
C
D
An elevator carrying a person of mass m is moving upward and slowing down. How does the magnitude F of the force exerted on the person by the elevator floor compare with the magnitude mg of the gravitational force?
F < mg
F = mg
F > mg
F can be greater than or less than mg, depending on the speed of the elevator.
The diagram shows the forces exerted on a block that starts from rest and speeds up as it moves down a rough incline near Earth’s surface. Which of the following statements are true? Select two answers.
The momentum of Earth remains constant as the block slides down the incline.
The total mechanical energy of the block-Earth system decreases as the block slides down the incline.
The momentum of the block increases as the block slides down the incline.
The total mechanical energy of the block-Earth system remains constant as the block slides down the incline.
A student is asked to move a box from ground level to the top of a loading dock platform, as shown in the figures above. In Figure 1, the student pushes the box up an incline with negligible friction. In Figure 2, the student lifts the box straight up from ground level to the loading dock platform. In which case does the student do more work on the box, and why?
Lifting the box straight up, because it requires a larger applied force to lift it straight up
Pushing the box up the incline, because the force is applied for a longer distance
Lifting the box straight up, because the incline acts as a simple machine and reduces the force required
Neither method, because the work is the same in both cases, since using the ramp decreases the force by the same factor that it increases the distance
Steel sphere A of mass M is moving along a horizontal surface with constant speed v. Identical steel sphere B is at rest and hangs on a string of length R attached to a support at point P, as shown in the figure above. The spheres collide, and as a result sphere A stops and sphere B swings a vertical height h before coming momentarily to rest. Knowing values for which of the following will allow determination of the angular impulse on sphere B with respect to P due to the collision?
M and v only
M, v, and h
R and h
D
R, M, and v
Block A of mass 2.0 kg is released from rest at the top of a 3.6 m long plane inclined at an angle of 30º, as shown in the figure above. After sliding on the horizontal surface, block A hits and sticks to block B, which is at rest and has mass 3.0 kg. Assume friction is negligible. The speed of the blocks after the collision is most nearly
Responses
2.4 m/s
3.2 m/s
3.8 m/s
6.0 m/s
A student sets an object attached to a spring into oscillatory motion and uses a position sensor to record the displacement of the object from equilibrium as a function of time. A portion of the recorded data is shown in the figure above.
The speed of the object at time t = 0.65 s is most nearly equal to which of the following?
The value of the graph at 0.65 s
The slope of the line connecting the origin and the point on the graph at 0.65 s
The slope of the line connecting the point where the graph crosses the time axis near 0.57 s and the point on the graph at 0.65 s
The slope of the tangent to a best-fit sinusoidal curve at 0.65 s
A student sets an object attached to a spring into oscillatory motion and uses a position sensor to record the displacement of the object from equilibrium as a function of time. A portion of the recorded data is shown in the figure above.
The total distance traveled by the object between 0.35 s and 0.40 s is most nearly
0cm
2cm
4cm
6cm
A student sets an object attached to a spring into oscillatory motion and uses a position sensor to record the displacement of the object from equilibrium as a function of time. A portion of the recorded data is shown in the figure above.
The frequency of oscillation is most nearly
Responses
0.5hz
0.7hz
1.4hz
2.0hz
A 1.0 kg block is attached to an unstretched spring of spring constant 50 N/m and released from rest from the position shown in Figure 1 above. The block oscillates for a while and eventually stops moving 0.20 m below its starting point, as shown in Figure 2. What is the change in potential energy of the block-spring-Earth system between Figure 1 and Figure 2 ?
Responses
-1.0J
0 J
1.0 J
3.0 J
Carts 1 and 2 are initially moving toward each other, as shown in the top figure. The carts collide and afterward are both moving to the right, as shown in the bottom figure. If the positive direction is to the right, which of the following best represents the force exerted on each cart by the other during the collision as a function of time?
Responses
A
B
C
D
A soft foam block of mass m slides without friction in the positive x-direction with speed v. At time t = 0 , a student briefly pushes the block with a force probe in the positive x-direction. The graph above shows the force probe’s measurements as a function of time during the push. Which of the following statements is true about the block’s momentum between t = 0 and t = t1?
The momentum of the block has decreased to zero at time t1.
The momentum of the block has increased by approximately 1/2 F0t1
C
The momentum of the block has decreased by approximately 1/2 F0t1
The change in momentum cannot be determined without knowing the distance by which the force probe compressed the block.
The graph above shows the force exerted by a spring as a function of the length of the spring. A block on a frictionless table is pushed against the spring that is fastened to a wall. The spring is compressed until its length is 20 cm. The block is then released. Which of the following values is closest to the kinetic energy with which the block leaves the spring?
Responses
3J
12J
6J
15J
A 12 kg box sliding on a horizontal floor has an initial speed of 4.0 m/s. The coefficient of friction between the box and the floor is 0.20. The box moves a distance of 4.0 m in 2.0 s. The magnitude of the change in momentum of the box during this time is most nearly
12 kg⋅m/s
48 kg⋅m/s
60 kg⋅m/s
96 kg⋅m/s
A bicycle wheel of known rotational inertia is free to rotate about its central axis. With the wheel initially at rest, a student wraps a string around the wheel and pulls the string with a spring scale, causing the wheel to rotate. The student records the tension in the string and the time for which the string was pulled. Without measuring the wheel’s final angular speed, can the student find the magnitude of the wheel’s final angular momentum, and what is a correct explanation?
Yes. The student has sufficient information already.
Yes. The student also needs to measure the wheel’s radius to calculate the torque exerted on the wheel.
No. Angular momentum can only be found by measuring rotational inertia and angular speed.
No. Angular momentum can only be found by measuring rotational inertia and angular speed.
A block of mass 𝑚 is at rest on a rough incline, as shown in the figure above. Which of the following forces must have a magnitude equal to 𝑚𝑔 ? Select two answers.
The total force exerted on the block by the incline
he normal force exerted on the block by the incline
The force of friction exerted on the block by the incline
The gravitational force exerted on Earth by the block
The wheel on a vehicle has a rotational inertia of 2.0 kg⋅m2. At the instant the wheel has a counterclockwise angular velocity of 6.0 rad/s, an average counterclockwise torque of 5.0 N⋅m is applied, and continues for 4.0 s. What is the change in angular momentum of the wheel?
12 kg⋅m2/s
16 kg⋅m2/s
20 kg⋅m2/s
32 kg⋅m2/s
wo identical blocks A and B are connected by a lightweight rope. Block A is pulled to the right by a constant force 𝐹0. The blocks are moving to the right across a rough surface and approach point P, where the rough surface transitions to a surface with negligible friction. How does the tension, 𝑇, in the rope connecting the blocks change, if at all, as block A passes point P?
𝑇 decreases.
𝑇 decreases.
T remains constant.
The change in 𝑇 cannot be determined without knowing the coefficient of friction and the mass of the blocks
The angular momentum of a rigid body rotating around a fixed point as a function of time is shown in the graph. Which of the following statements are true? Select two answers.
The angular speed of the object is constant.
The angular acceleration of the object is constant.
The angular position of the object is constant.
The net torque applied to the object is constant.
An object is subject to multiple forces that result in the object having horizontal and vertical velocity components 𝑣𝑥 and 𝑣𝑦, respectively as a function of time, as shown. Which of the following free-body diagrams could represent the forces exerted on the object?
A
B
C
D
Two objects, A and B, move toward one another. Object A has twice the mass and half the speed of object B. Which of the following describes the forces the objects exert on each other when they collide and provides the best explanation?
The force exerted by A on B will be twice as great as the force exerted by B on A, because A has twice the mass of B.
The force exerted by A on B will be half as great as the force exerted by B on A, because A has half the speed of B.
The forces exerted by each object on the other are the same, because the product of mass and speed is the same for both objects.
The forces exerted by each object on the other are the same, because interacting objects cannot exert forces of different magnitude on each other.
A solid disk whose plane is parallel to the ground spins with an initial angular speed 𝜔0. Three identical blocks are dropped onto the disk at locations A, B, and C, one at a time, not necessarily in that order. Each block instantaneously sticks to the surface of the disk, slowing the disk’s rotation. A graph of the angular speed of the disk as a function of time is shown.
Based on the data presented in the graph, which of the following lists the points in the order in which the blocks are dropped onto the disk?
A B C
B C A
C A B
B A C
A solid disk whose plane is parallel to the ground spins with an initial angular speed 𝜔0. Three identical blocks are dropped onto the disk at locations A, B, and C, one at a time, not necessarily in that order. Each block instantaneously sticks to the surface of the disk, slowing the disk’s rotation. A graph of the angular speed of the disk as a function of time is shown.
w2<w1
w2=w1
w2>w1
The final angular speed cannot be compared without knowing the distances from the disk’s center to points A, B, and C.
Blocks A and B, of masses mA and mB, are at rest on a frictionless surface, as shown above, with block A fixed to the table. Block C of mass mC is suspended by a string that is tied to block B over an ideal pulley. Which of the following gives the magnitude of the force exerted by block A on block B ?
mBg
mCg
mA*mC/mA+mB
mB*mC/mA+mB
Three spheres, with masses indicated above, are initially far away from each other, and the gravitational potential energy of the three-sphere system is zero. The spheres are then brought together until each sphere is a distance r from the other two, as shown above. What is the new gravitational potential energy of the three-sphere system?
Responses
-Gm^2/r
-2Gm^2/r
-4Gm^2/r
-5Gm^2/r
A box experiences a varying net force that changes its velocity. The graph shows the velocity of the box as a function of time.
Which of the following correctly describes the net work, 𝑊net, done on the box for the given intervals of time?
A
B
C
D
The motion of an object is shown in the velocity-time graph. Which best describes the motion of the object?
The object is either speeding up or slowing down the entire time.
The object starts and finishes at the same position.
The object travels in the same direction for the entire time.
The object undergoes positive acceleration the entire time.
Four rods, each of mass 𝑀, are pinned at the left end to the horizontal surface of a table and are shown from above in the following figures. Each rod is free to rotate about a pivot at its left end with negligible friction. In each case, forces are exerted on the rod with different magnitudes and in different directions as shown. The rotational inertia of a rod of mass 𝑀 and length 𝐿 about the end of the rod is (1/3)𝑀𝐿2. In which cases do the rods experience equal initial angular accelerations? Select two answers.
response - incorrect
Responses
A
B
C
D
An object is moving to the west at a constant speed. Three forces are exerted on the object. One force is 10 N directed due north, and another is 10 N directed due west. What is the magnitude and direction of the third force if the object is to continue moving to the west at a constant speed?
10√3 N , directed northwest
10√3 N , directed southeast
10√2 N , directed northwest
10√2 N , directed southeast
In trial 1 of an experiment, a cart moves with speed v0 on a frictionless, horizontal track and collides elastically with another cart that is initially at rest. In trial 2, the setup is identical except that the carts stick together during the collision. How does the speed of the two-cart system’s center of mass change, if at all, during the collision in each trial?
A
B
C
D
An object is initially at rest. A varying force is applied to the object as shown in the graph. Which of the following correctly explains the momentum of the object at time 𝑡=7s?
The final momentum of the object is negative because the slope of the graph is negative the entire time from 𝑡=0s to 𝑡=7s.
The final momentum of the object is positive because the maximum magnitude of the force in the positive direction is twice the maximum magnitude of the force in the negative direction.
The final momentum of the object is negative because the magnitude of the area bounded by the graph and the horizontal axis is less from 𝑡=0s to 𝑡=2s than from 𝑡=2s to 𝑡=7s.
The final momentum of the object is positive because the average magnitude of the force is higher from 𝑡=0s to 𝑡=2s than the average magnitude of the force from 𝑡=2s to 𝑡=7s.
A cart of mass m is moving with negligible friction along a track with known speed v1 to the right. It collides with and sticks to a cart of mass 4m moving with known speed v2 to the right. Which of the two principles, conservation of momentum and conservation of mechanical energy, must be applied to determine the final speed of the carts, and why?
Responses
Only conservation of momentum, because the momentum lost by one cart is gained by the other and there is only one unknown quantity
Both conservation of mechanical energy and conservation of momentum, because both principles apply in any collision.
Both conservation of mechanical energy and conservation of momentum, because neither cart changes direction.
Either conservation of momentum or conservation of mechanical energy, because only one equation is required to solve for the one unknown variable.
The figure shows three cases where two spheres are touching and attract each other with the gravitational force. The radii of the spheres in each case are shown. All of the spheres are made of material with the same density. Which of the following correctly ranks these cases based on the gravitational force between the spheres?
(A=B0<c
A>C>B
B<C<A
C>(A=B)
A vertical spring launcher is attached to the top of a block and a ball is placed in the launcher, as shown in the figure. While the block slides at constant speed to the right across a horizontal surface with negligible friction between the block and the surface, the ball is launched upward. When the ball reaches its maximum height, what will be the position of the ball relative to the spring launcher?
Above and to the right of the spring launcher
Directly above the spring launcher
Above and to the left of the spring launcher
The relative position of the ball depends on the horizontal speed of the block.
A rubber ball with mass 0.20 kg is dropped vertically from a height of 1.5 m above a floor. The ball bounces off of the floor, and during the bounce 0.60 J of energy is dissipated. What is the maximum height of the ball after the bounce?
0.30m
0.90m
1.5m
1.2m
A sled slides down a hill with friction between the sled and hill but negligible air resistance. Which of the following must be correct about the resulting change in energy of the sled-Earth system?
The sum of the kinetic energy and the gravitational potential energy changes by an amount equal to the energy dissipated by friction.
The gravitational potential energy decreases and the kinetic energy is constant.
The decrease in the gravitational potential energy is equal to the increase in kinetic energy.
The gravitational potential energy and the kinetic energy must both decrease.
Two satellites are in circular orbits around Earth. Satellite A has speed vA. Satellite B has an orbital radius nine times that of satellite A. What is the speed of satellite B?
vA/9
vA/3
3vA
9vA
The figure above shows a uniform meterstick that is set on a fulcrum at its center. A force of magnitude F toward the bottom of the page is exerted on the meterstick at the position shown. At which of the labeled positions must an upward force of magnitude 2F be exerted on the meterstick to keep the meterstick in equilibrium?
A
B
C
D
A student uses a spring scale to exert a horizontal force on a block, pulling the block over a smooth floor. The student repeats the procedure several times, each time pulling the block from rest through a distance of 1.0 m. For which of the following graphs of force as a function of distance will the block be moving the fastest at the end of the 1.0 m?
A
B
C
D
Two lab carts have the same mass and are free to move on a horizontal track. The carts’ wheels have negligible mass. Cart 1 travels to the right at 1.0 m/s and collides with cart 2, which is initially at rest, as shown at left above. Cart 2 has a compressed spring-loaded plunger with a nonnegligible amount of stored energy. During the collision, the spring-loaded plunger pops out, staying in contact with cart 1 for 0.10 s as the spring decompresses. Negligible mechanical energy dissipates during the collision. Taking rightward as positive, the carts’ velocities after the collision could be which of the following? Select two answers
CART 1 0 CART 2 1
CART 1 .5 CART 2 .5
CART 1 -.5 CART 1.5
CART 1 -1 CART 2 2
Two identical blocks are connected by a lightweight string that passes over a lightweight pulley that can rotate about its axle with negligible friction. The two-block system is released from rest and the blocks accelerate. Which of the following correctly relates the potential energy gained by the block 1-Earth system |∆𝑈1| to the potential energy lost by the block 2-Earth system |∆𝑈2| and provides correct evidence?
|∆𝑈1|=|∆𝑈2|, because both blocks travel the same distance.
, because both blocks gain the same amount of kinetic energy.
|∆𝑈1|<|∆𝑈2|, because the two-block system gains kinetic energy
|∆𝑈1|<|∆𝑈2|, because the tension exerted on block 1 by the string is less than the tension exerted on block 2 by the string.
In a classroom at time t = 0 , a sphere is thrown upward at a 45° angle to the horizontal. At time t1, while the sphere is still rising, it bounces off the ceiling elastically and with no friction. Which of the following pairs of graphs could represent the sphere’s horizontal velocity and vertical velocity as functions of time t?
Responses
A
B
C
D
A cart is moving on a level track in the positive x-direction. A force acting parallel to the x-axis is exerted on the cart. The graph above shows the net force exerted on the cart as a function of displacement. As the cart travels from x = 0 m to x = 4 m , what is the net change in the kinetic energy of the cart?
An increase of 20 J
An increase of 10 J
A decrease of 20 J
A decrease of 10 J
A block of mass 2.0 kg, starting from rest, is pushed with a constant force across a horizontal track. The position of the block as a function of time is recorded, and the data are shown in the table. What is the magnitude of the change in momentum of the block between zero and 4.0 seconds?
0.8
1.2
1.6
3.2
Two astronauts are connected by a taut cable and are initially at rest with respect to a nearby space station. Astronaut X throws a large container to Astronaut Y. Figure 1 above shows the astronauts immediately after the container is thrown by Astronaut X, and Figure 2 shows the astronauts immediately after the container is caught by Astronaut Y. Which of the following describes the motion of Astronaut Y in Figures 1 and 2 ?
A
B
C
FIGURE 1 MOVES TO THE LEFT FIGURE 2 DOES NOT MOVE
The figures show a cart moving over the top of a hill (Case 1), moving at the bottom of a dip (Case 2), and moving at the top of a vertical loop (Case 3). In each case, the normal force acting on the car is 𝐹𝑛 and the weight of the car is 𝐹𝑔. In which case is it always true that 𝐹𝑛>𝐹𝑔, and in which case is it always true that 𝐹𝑛<𝐹𝑔?
CASE 2 CASE 1
A
D
C
On Earth, when a box slides across a horizontal board, the board exerts a frictional force of magnitude 𝐹0 on the box. The board and the box are moved to a planet with twice the radius but one-third the mass of Earth. When the box slides across the board, the frictional force exerted by the board on the box is now
1/2
1/6
2/3
F
A force 𝐹0 is applied continuously to a box initially at rest on a horizontal surface. The box slides with negligible friction for equal distances 𝑑1 and 𝑑2, as shown. How does the kinetic energy gained by the block over distance interval 𝑑2, ∆𝐾2, compare to the kinetic energy gained over distance interval 𝑑1, ∆𝐾1, and why?
∆𝐾2=∆𝐾1, because the velocity increases by the same amount over intervals 𝑑1 and 𝑑2.
∆𝐾2=∆𝐾1, because the applied force does the same work on the block over intervals 𝑑1 and 𝑑2.
C
∆𝐾2>∆𝐾1, because the block is moving faster on average over interval 𝑑2.
.
∆𝐾2>∆𝐾1, because the rate of change of kinetic energy is greater over interval 𝑑2.
A blue sphere and a red sphere with the same diameter are released from rest at the top of a ramp. The red sphere takes a longer time to reach the bottom of the ramp. The spheres are then rolled off a horizontal table at the same time with the same speed and fall freely to the floor. Which sphere reaches the floor first?
The red sphere
The blue sphere
The sphere with the greater mass
Neither; the spheres reach the floor at the same time.
A projectile fired into the air explodes and splits into two halves of equal mass that hit the ground at the same time. If the projectile had not exploded, it would have landed at point X, which is a distance R to the right of the launch point. After the explosion, one of the halves lands at point Y, which is a distance 2R to the right of the launch point. If air resistance is negligible, where did the other half land?
To the left of the launch point
At the launch point
Between the launch point and point X
Between points X and Y
