
| 1. | \(\begin{aligned} &\sqrt{{{GM}\over{4R}}} \\& \end{aligned}\) | 2. | \(\begin{aligned} &\sqrt{{{GM}\over{2R}}} \\& \end{aligned}\) |
| 3. | \(\begin{aligned} &\sqrt{{{GM}\over{8R}}} \\& \end{aligned}\) | 4. | \(\begin{aligned} &\sqrt{{{GM}\over{R}}} \\& \end{aligned}\) |
| 1. | \( \dfrac{2}{9}{F} \) | 2. | \(\dfrac{16}{9} F\) |
| 3. | \(\dfrac{8}{9} F\) | 4. | \(F\) |
| Statement I: | The law of gravitation holds good for any pair of bodies in the universe. |
| Statement II: | The weight of any person becomes zero when the person is at the centre of the earth. |
| 1. | Statement I is incorrect and Statement II is correct. |
| 2. | Both Statement I and Statement II are correct. |
| 3. | Both Statement I and Statement II are incorrect. |
| 4. | Statement I is correct and Statement II is incorrect. |
A solid sphere of radius \(R\) gravitationally attracts a particle placed at \(3R\) form its centre with a force \(F_1\). Now a spherical cavity of radius \(\frac{R}{2}\) is made in the sphere (as shown in figure) and the force becomes \(F_2\). The value of \(F_1:F_2\) is:
1. \(25:36\)
2. \(36:25\)
3. \(50:41\)
4. \(41:50\)