00. Centre of Mass
Rotational Motion

149743 A loaded spring gun of mass \(M\) fires a bullet of mass \(m\) with a velocity \(v\) at an angle of elevation \(\theta\). The gun is initially at rest on a horizontal frictionless surface. After firing, the center of mass of the gun-bullet system

1 moves with a velocity \(\frac{\mathrm{v}(\mathrm{M}-\mathrm{m})}{\mathrm{M}+\mathrm{m}}\) in the horizontal direction
2 moves with velocity \(\frac{m v \cos \theta}{(M+m)}\)
3 moves with a velocity \(v\left(\frac{m}{M+m}\right)\)
4 moves with velocity \(\left(\frac{m v \sin \theta}{M+m}\right)\)
Rotational Motion

149744 A small disc of radius \(2 \mathrm{~cm}\) is cut from a disc of radius \(6 \mathrm{~cm}\). If the distance between their centers is \(3.2 \mathrm{~cm}\), what is the shift in the centre of mass of the disc?

1 \(0.4 \mathrm{~cm}\)
2 \(2.4 \mathrm{~cm}\)
3 \(1.8 \mathrm{~cm}\)
4 \(1.2 \mathrm{~cm}\)
Rotational Motion

149745 A circular plate of uniform thickness has a diameter of \(56 \mathrm{~cm}\). A circular portion of diameter \(42 \mathrm{~cm}\) is removed from one edge of the plate as shown in the figure below. The position of centre of mass of the remaining portion is

1 \(7 \mathrm{~cm}\) to the left of the centre of plate
2 \(8 \mathrm{~cm}\) to the left of the centre of plate
3 \(9 \mathrm{~cm}\) to the left of the centre of plate
4 \(10 \mathrm{~cm}\) to the left of the centre of plate
Rotational Motion

149746 A marble and a cube of equal mass are initially at rest. Now the marble rolls and cube slides down a frictionless ramp. When they arrive at the bottom, the ratio of speed of the cube with respect to the centre of mass and speed of the marble is

1 \(7: 5\)
2 \(\sqrt{7}: \sqrt{5}\)
3 \(5: 3\)
4 \(\sqrt{5}: \sqrt{3}\)
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Rotational Motion

149743 A loaded spring gun of mass \(M\) fires a bullet of mass \(m\) with a velocity \(v\) at an angle of elevation \(\theta\). The gun is initially at rest on a horizontal frictionless surface. After firing, the center of mass of the gun-bullet system

1 moves with a velocity \(\frac{\mathrm{v}(\mathrm{M}-\mathrm{m})}{\mathrm{M}+\mathrm{m}}\) in the horizontal direction
2 moves with velocity \(\frac{m v \cos \theta}{(M+m)}\)
3 moves with a velocity \(v\left(\frac{m}{M+m}\right)\)
4 moves with velocity \(\left(\frac{m v \sin \theta}{M+m}\right)\)
Rotational Motion

149744 A small disc of radius \(2 \mathrm{~cm}\) is cut from a disc of radius \(6 \mathrm{~cm}\). If the distance between their centers is \(3.2 \mathrm{~cm}\), what is the shift in the centre of mass of the disc?

1 \(0.4 \mathrm{~cm}\)
2 \(2.4 \mathrm{~cm}\)
3 \(1.8 \mathrm{~cm}\)
4 \(1.2 \mathrm{~cm}\)
Rotational Motion

149745 A circular plate of uniform thickness has a diameter of \(56 \mathrm{~cm}\). A circular portion of diameter \(42 \mathrm{~cm}\) is removed from one edge of the plate as shown in the figure below. The position of centre of mass of the remaining portion is

1 \(7 \mathrm{~cm}\) to the left of the centre of plate
2 \(8 \mathrm{~cm}\) to the left of the centre of plate
3 \(9 \mathrm{~cm}\) to the left of the centre of plate
4 \(10 \mathrm{~cm}\) to the left of the centre of plate
Rotational Motion

149746 A marble and a cube of equal mass are initially at rest. Now the marble rolls and cube slides down a frictionless ramp. When they arrive at the bottom, the ratio of speed of the cube with respect to the centre of mass and speed of the marble is

1 \(7: 5\)
2 \(\sqrt{7}: \sqrt{5}\)
3 \(5: 3\)
4 \(\sqrt{5}: \sqrt{3}\)
Rotational Motion

149743 A loaded spring gun of mass \(M\) fires a bullet of mass \(m\) with a velocity \(v\) at an angle of elevation \(\theta\). The gun is initially at rest on a horizontal frictionless surface. After firing, the center of mass of the gun-bullet system

1 moves with a velocity \(\frac{\mathrm{v}(\mathrm{M}-\mathrm{m})}{\mathrm{M}+\mathrm{m}}\) in the horizontal direction
2 moves with velocity \(\frac{m v \cos \theta}{(M+m)}\)
3 moves with a velocity \(v\left(\frac{m}{M+m}\right)\)
4 moves with velocity \(\left(\frac{m v \sin \theta}{M+m}\right)\)
Rotational Motion

149744 A small disc of radius \(2 \mathrm{~cm}\) is cut from a disc of radius \(6 \mathrm{~cm}\). If the distance between their centers is \(3.2 \mathrm{~cm}\), what is the shift in the centre of mass of the disc?

1 \(0.4 \mathrm{~cm}\)
2 \(2.4 \mathrm{~cm}\)
3 \(1.8 \mathrm{~cm}\)
4 \(1.2 \mathrm{~cm}\)
Rotational Motion

149745 A circular plate of uniform thickness has a diameter of \(56 \mathrm{~cm}\). A circular portion of diameter \(42 \mathrm{~cm}\) is removed from one edge of the plate as shown in the figure below. The position of centre of mass of the remaining portion is

1 \(7 \mathrm{~cm}\) to the left of the centre of plate
2 \(8 \mathrm{~cm}\) to the left of the centre of plate
3 \(9 \mathrm{~cm}\) to the left of the centre of plate
4 \(10 \mathrm{~cm}\) to the left of the centre of plate
Rotational Motion

149746 A marble and a cube of equal mass are initially at rest. Now the marble rolls and cube slides down a frictionless ramp. When they arrive at the bottom, the ratio of speed of the cube with respect to the centre of mass and speed of the marble is

1 \(7: 5\)
2 \(\sqrt{7}: \sqrt{5}\)
3 \(5: 3\)
4 \(\sqrt{5}: \sqrt{3}\)
Rotational Motion

149743 A loaded spring gun of mass \(M\) fires a bullet of mass \(m\) with a velocity \(v\) at an angle of elevation \(\theta\). The gun is initially at rest on a horizontal frictionless surface. After firing, the center of mass of the gun-bullet system

1 moves with a velocity \(\frac{\mathrm{v}(\mathrm{M}-\mathrm{m})}{\mathrm{M}+\mathrm{m}}\) in the horizontal direction
2 moves with velocity \(\frac{m v \cos \theta}{(M+m)}\)
3 moves with a velocity \(v\left(\frac{m}{M+m}\right)\)
4 moves with velocity \(\left(\frac{m v \sin \theta}{M+m}\right)\)
Rotational Motion

149744 A small disc of radius \(2 \mathrm{~cm}\) is cut from a disc of radius \(6 \mathrm{~cm}\). If the distance between their centers is \(3.2 \mathrm{~cm}\), what is the shift in the centre of mass of the disc?

1 \(0.4 \mathrm{~cm}\)
2 \(2.4 \mathrm{~cm}\)
3 \(1.8 \mathrm{~cm}\)
4 \(1.2 \mathrm{~cm}\)
Rotational Motion

149745 A circular plate of uniform thickness has a diameter of \(56 \mathrm{~cm}\). A circular portion of diameter \(42 \mathrm{~cm}\) is removed from one edge of the plate as shown in the figure below. The position of centre of mass of the remaining portion is

1 \(7 \mathrm{~cm}\) to the left of the centre of plate
2 \(8 \mathrm{~cm}\) to the left of the centre of plate
3 \(9 \mathrm{~cm}\) to the left of the centre of plate
4 \(10 \mathrm{~cm}\) to the left of the centre of plate
Rotational Motion

149746 A marble and a cube of equal mass are initially at rest. Now the marble rolls and cube slides down a frictionless ramp. When they arrive at the bottom, the ratio of speed of the cube with respect to the centre of mass and speed of the marble is

1 \(7: 5\)
2 \(\sqrt{7}: \sqrt{5}\)
3 \(5: 3\)
4 \(\sqrt{5}: \sqrt{3}\)