Q. If a disc rolls without slipping on a flat surface, what is the relationship between its linear velocity v and angular velocity ω?
A.
v = rω
B.
v = 2rω
C.
v = 1/2 rω
D.
v = 3rω
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Solution
For rolling without slipping, the linear velocity v is equal to the radius r times the angular velocity ω, hence v = rω.
Correct Answer: A — v = rω
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Q. If a drop of liquid is placed on a flat surface, what shape will it take due to surface tension?
A.
Square
B.
Flat
C.
Sphere
D.
Cylinder
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Solution
Due to surface tension, a drop of liquid will take the shape of a sphere, as this shape has the minimum surface area for a given volume.
Correct Answer: C — Sphere
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Q. If a fluid has a viscosity of 0.5 Pa·s, what does this indicate about its flow characteristics?
A.
It flows easily
B.
It is very thick
C.
It is a gas
D.
It is a low-density fluid
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Solution
A viscosity of 0.5 Pa·s indicates that the fluid is relatively thick and flows less easily compared to fluids with lower viscosity.
Correct Answer: B — It is very thick
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Q. If a force of 10 N is applied to move an object 5 m in the direction of the force, what is the work done?
A.
50 J
B.
30 J
C.
20 J
D.
10 J
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Solution
Work Done (W) = Force * Distance = 10 N * 5 m = 50 J
Correct Answer: A — 50 J
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Q. If a force of 10 N is applied to move an object 5 m, what is the work done?
A.
50 J
B.
25 J
C.
10 J
D.
5 J
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Solution
Work Done (W) = Force * Distance = 10 N * 5 m = 50 J
Correct Answer: A — 50 J
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Q. If a force of 12 N is applied at an angle of 30 degrees to a lever arm of 1 m, what is the torque about the pivot?
A.
6 Nm
B.
10 Nm
C.
12 Nm
D.
15 Nm
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Solution
Torque = Force × Distance × sin(θ) = 12 N × 1 m × sin(30°) = 12 N × 1 m × 0.5 = 6 Nm.
Correct Answer: A — 6 Nm
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Q. If a force of 12 N is applied at an angle of 30 degrees to the horizontal while moving an object 3 m, what is the work done by the force?
A.
18 J
B.
24 J
C.
30 J
D.
36 J
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Solution
Work done = F × d × cos(θ) = 12 N × 3 m × cos(30°) = 12 N × 3 m × (√3/2) = 18 J.
Correct Answer: B — 24 J
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Q. If a force of 12 N is applied to a 4 kg object, what is the resulting acceleration?
A.
2 m/s²
B.
3 m/s²
C.
4 m/s²
D.
5 m/s²
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Solution
Using F = ma, we find a = F/m = 12 N / 4 kg = 3 m/s².
Correct Answer: B — 3 m/s²
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Q. If a force of 15 N acts on an object and moves it 4 m in the direction of the force, what is the work done?
A.
30 J
B.
60 J
C.
75 J
D.
90 J
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Solution
Work done = Force × Distance = 15 N × 4 m = 60 J.
Correct Answer: B — 60 J
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Q. If a force of 15 N is applied at a distance of 0.4 m from the pivot, what is the torque?
A.
6 Nm
B.
12 Nm
C.
15 Nm
D.
20 Nm
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Solution
Torque = Force × Distance = 15 N × 0.4 m = 6 Nm.
Correct Answer: B — 12 Nm
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Q. If a force of 15 N is applied at an angle of 30 degrees to the lever arm of length 1.5 m, what is the torque about the pivot?
A.
3.75 Nm
B.
7.5 Nm
C.
11.25 Nm
D.
12.99 Nm
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Solution
Torque (τ) = F × r × sin(θ) = 15 N × 1.5 m × sin(30°) = 15 × 1.5 × 0.5 = 11.25 Nm.
Correct Answer: B — 7.5 Nm
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Q. If a force of 15 N is applied at an angle of 30 degrees to the lever arm of length 1 m, what is the torque about the pivot?
A.
7.5 Nm
B.
15 Nm
C.
12.99 Nm
D.
10 Nm
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Solution
Torque (τ) = F × r × sin(θ) = 15 N × 1 m × sin(30°) = 15 N × 1 m × 0.5 = 7.5 Nm.
Correct Answer: C — 12.99 Nm
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Q. If a force of 15 N is applied at an angle of 60 degrees to the horizontal while moving an object 4 m, what is the work done by the force?
A.
30 J
B.
60 J
C.
120 J
D.
180 J
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Solution
Work done = F × d × cos(θ) = 15 N × 4 m × cos(60°) = 15 N × 4 m × 0.5 = 30 J.
Correct Answer: C — 120 J
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Q. If a force of 15 N is applied at an angle of 60° to the horizontal while moving an object 4 m, what is the work done by the force?
A.
30 J
B.
60 J
C.
120 J
D.
180 J
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Solution
Work done = F × d × cos(θ) = 15 N × 4 m × cos(60°) = 15 N × 4 m × 0.5 = 30 J.
Correct Answer: C — 120 J
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Q. If a force of 15 N is applied to a mass of 3 kg, what is the net force acting on the mass if there is a frictional force of 5 N opposing the motion?
A.
10 N
B.
15 N
C.
20 N
D.
5 N
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Solution
Net force = applied force - frictional force = 15 N - 5 N = 10 N.
Correct Answer: A — 10 N
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Q. If a force of 15 N is applied to a mass of 3 kg, what is the net force acting on the mass if it is also experiencing a frictional force of 5 N?
A.
10 N
B.
15 N
C.
20 N
D.
5 N
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Solution
Net force = applied force - frictional force = 15 N - 5 N = 10 N.
Correct Answer: A — 10 N
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Q. If a force of 15 N is applied to move an object 3 m in the direction of the force, what is the work done?
A.
45 J
B.
30 J
C.
15 J
D.
60 J
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Solution
Work done = Force × Distance = 15 N × 3 m = 45 J.
Correct Answer: A — 45 J
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Q. If a force of 15 N is applied to move an object 4 m in the direction of the force, what is the work done?
A.
30 J
B.
60 J
C.
45 J
D.
75 J
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Solution
Work done = Force × Distance = 15 N × 4 m = 60 J.
Correct Answer: B — 60 J
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Q. If a force of 30 N is applied to a mass of 10 kg, what is the net force acting on the mass if there is a frictional force of 10 N opposing the motion?
A.
20 N
B.
30 N
C.
40 N
D.
10 N
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Solution
Net force = applied force - frictional force = 30 N - 10 N = 20 N.
Correct Answer: A — 20 N
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Q. If a force of 5 N acts on an object and moves it 4 m in the direction of the force, what is the work done?
A.
10 J
B.
15 J
C.
20 J
D.
25 J
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Solution
Work done = Force × Distance = 5 N × 4 m = 20 J.
Correct Answer: C — 20 J
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Q. If a force of 5 N is applied at an angle of 60 degrees to the horizontal while moving an object 4 m, what is the work done by the force?
A.
10 J
B.
20 J
C.
5 J
D.
15 J
Show solution
Solution
Work done = Force × Distance × cos(θ) = 5 N × 4 m × cos(60°) = 5 N × 4 m × 0.5 = 10 J.
Correct Answer: A — 10 J
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Q. If a force of 5 N is applied at an angle of 60 degrees to the horizontal while moving an object 3 m, what is the work done by the force?
A.
7.5 J
B.
15 J
C.
12.99 J
D.
10 J
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Solution
Work done = Force × Distance × cos(θ) = 5 N × 3 m × cos(60°) = 5 N × 3 m × 0.5 = 7.5 J.
Correct Answer: C — 12.99 J
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Q. If a forced oscillator is driven at a frequency much lower than its natural frequency, what happens to the amplitude?
A.
Increases significantly
B.
Decreases
C.
Remains constant
D.
Fluctuates
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Solution
At frequencies much lower than the natural frequency, the amplitude of the forced oscillator increases significantly.
Correct Answer: B — Decreases
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Q. If a galvanometer shows a deflection when connected to a potentiometer, what does it indicate?
A.
The circuit is open.
B.
The potential difference is zero.
C.
The potential difference is equal to the reference voltage.
D.
The current is flowing through the galvanometer.
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Solution
A deflection in the galvanometer indicates that the potential difference across the galvanometer is equal to the reference voltage.
Correct Answer: C — The potential difference is equal to the reference voltage.
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Q. If a gas expands against a constant external pressure, the work done by the gas is given by:
A.
W = P_ext * ΔV
B.
W = ΔU + Q
C.
W = Q - ΔU
D.
W = P_ext / ΔV
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Solution
The work done by the gas during expansion against a constant external pressure is given by W = P_ext * ΔV.
Correct Answer: A — W = P_ext * ΔV
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Q. If a gas expands and does 150 J of work while absorbing 100 J of heat, what is the change in internal energy?
A.
-50 J
B.
50 J
C.
250 J
D.
100 J
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Solution
Using the first law of thermodynamics, ΔU = Q - W = 100 J - 150 J = -50 J.
Correct Answer: A — -50 J
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Q. If a gas expands and does 50 J of work while absorbing 30 J of heat, what is the change in internal energy?
A.
-20 J
B.
20 J
C.
80 J
D.
30 J
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Solution
Using the First Law of Thermodynamics, ΔU = Q - W. Here, ΔU = 30 J - 50 J = -20 J.
Correct Answer: B — 20 J
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Q. If a gas occupies 10 L at 1 atm, what will be its volume at 2 atm if the temperature remains constant?
A.
5 L
B.
10 L
C.
20 L
D.
15 L
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Solution
Using Boyle's Law (P1V1 = P2V2), if P1 = 1 atm, V1 = 10 L, and P2 = 2 atm, then V2 = (P1V1)/P2 = (1 atm * 10 L) / 2 atm = 5 L.
Correct Answer: A — 5 L
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Q. If a gas occupies a volume of 10 L at 1 atm, what will be its volume at 2 atm if the temperature remains constant?
A.
5 L
B.
10 L
C.
20 L
D.
15 L
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Solution
Using Boyle's Law (P1V1 = P2V2), if the pressure doubles from 1 atm to 2 atm, the volume will halve from 10 L to 5 L.
Correct Answer: A — 5 L
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Q. If a hollow cylinder and a solid cylinder of the same mass and radius roll down the same incline, which one reaches the bottom first?
A.
Hollow cylinder
B.
Solid cylinder
C.
Both reach at the same time
D.
Depends on the angle of incline
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Solution
The solid cylinder reaches the bottom first because it has a smaller moment of inertia compared to the hollow cylinder.
Correct Answer: B — Solid cylinder
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