The mass of a hydrogen molecule is \(3.32 \times 10^{-27}~\text{kg}.\) If \(10^{23}\) hydrogen molecules strike, per second, a fixed wall of area \(2~\text{cm}^2\) at an angle of \(45^\circ\) to the normal, and rebound elastically with a speed of \(10^3~\text{m/s},\) then the pressure on the wall is nearly:
1. \( 2.35 \times 10^3 ~\text{N/m}^2 \)
2. \(4.70 \times 10^3 ~\text{N/m}^2 \)
3. \(2.35 \times 10^2 ~\text{N/m}^2 \)
4. \(4.70 \times 10^2 ~\text{N/m}^2 \)

Subtopic:  Newton's Laws |
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A small ball of mass \(m\) is thrown upward with velocity \(u\) from the ground. The ball experiences a resistive force \(mkv^2\) where \(v\) is its speed. The maximum height attained by the ball is:
1. \( \frac{1}{2 k} \ln \left(1+\frac{k u^2}{g}\right) \)
2. \( \frac{1}{2 k} \tan ^{-1} \frac{k u^2}{g} \)
3. \( \frac{1}{k} \ln \left(1+\frac{k u^2}{2 g}\right) \)
4. \( \frac{1}{k} \tan ^{-1} \frac{k u^2}{2 g}\)

Subtopic:  Newton's Laws |
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A spaceship in space sweeps stationary interplanetary dust. As a result, its mass increases at a rate \(\frac{d M(t)}{d t}=b v^2(t)\), where \(v(t)\) is its instantaneous velocity. The instantaneous acceleration of the satellite is:
1. \( -\frac{2 b v^3}{M(t)} \)
2. \( -\frac{b v^3}{2 M(t)} \)
3. \( -b v^3(\mathrm{t}) \)
4. \( -\frac{b v^3}{M(t)}\)

Subtopic:  Newton's Laws |
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A particle is projected with velocity \(v_0\) along \(x\)-axis. A damping force is acting on the particle which is proportional to the square of the distance from the origin i.e, \(ma=-\alpha x^2\). The distance at which the particle stops:
1. \( \left(\frac{3m v_0^2}{2 \alpha}\right)^{\frac{1}{2}} \)
2. \( \left(\frac{2mv_0}{3 \alpha}\right)^{\frac{1}{3}} \)
3. \( \left(\frac{2m v_0^2}{3 \alpha}\right)^{\frac{1}{2}}\)
4. \( \left(\frac{3 mv_0^2}{2 \alpha}\right)^{\frac{1}{3}} \)

Subtopic:  Newton's Laws |
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Two billiard balls of mass 0.05 kg each moving in opposite directions with 10 ms-1 collide and rebound with same speed. If the time duration of contact is t=0.005 s, then what is the force exerted on the ball due to each other? 
1. 100 N 
2. 200 N 
3. 300 N 
4. 400 N 
Subtopic:  Newton's Laws |
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Three masses M = 100 kg, m1 = 10 kg and m2=20 kg are arranged in a system as shown in figure. All the surfaces are frictionless and strings are inextensible and weightless. The pulleys are also weightless and frictionless. A force F is applied on the system so that the mass m2 moves upward with an acceleration of 2 ms-2. The value of F is : (Take g = 10 ms-2)
     
1. 3360 N
2. 3380 N
3. 3120 N
4. 3240 N
Subtopic:  Newton's Laws |
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A ball of mass 0.15 Kg hits the wall with its initial speed of 12 ms-1 and bounces back without changing its initial speed. If the force applied by the wall on the ball during the contact is 100 N. calculate the time duration of the contact of ball with the wall.
1. 0.018 s
2. 0.036 s
3. 0.009 s
4. 0.072 s
Subtopic:  Newton's Laws |
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A block of mass M slides down on a rough inclined plane with constant velocity. The angle made by the incline plane with horizontal is \(\theta\). The magnitude of the contact force will be :
1. Mg 
2. \(M g \cos \theta \)
3. \(\sqrt{\mathrm{Mg} \sin \theta+\mathrm{Mg} \cos \theta} \)
4. \(M g \sin \theta \sqrt{1+\mu}\)
Subtopic:  Newton's Laws |
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A balloon has a mass of 10 g in the air. The air escapes from the balloon at a uniform rate with a velocity of 4.5 cm/s. If the balloon shrinks in 5 s completely. Then, the average force acting on that balloon will be (in dyne).
1. 3
2. 9
3. 12
4.18
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If the momentum of a body is increased by 20%, then its kinetic energy increases by:
1. 36%
2. 40%
3. 44%
4. 48%
Subtopic:  Newton's Laws |
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