1. | \(\dfrac{q^2\phi}{2m}\) | 2. | \(\dfrac{q^2\phi}{2\pi m}\) |
3. | \(\dfrac{q^2\phi}{m}\) | 4. | \(\dfrac{q^2\phi}{\pi m}\) |
1. | \(\dfrac{5}{\sqrt3r}\) | 2. | \(\dfrac{5}{\sqrt3\pi r}\) |
3. | \(\dfrac{5}{r}\) | 4. | \(\dfrac{5}{\pi r}\) |
1. | \(25~\Omega\) in series | a resistance of
2. | \(\dfrac1{25}~\Omega\) in series | a resistance of
3. | \(25~\Omega\) in parallel | a resistance of
4. | \(\dfrac1{25}~\Omega\) in parallel | a resistance of
1. | \(q\Phi\) | 2. | \(\dfrac{q\Phi}{2\pi}\) |
3. | \(\pi q\Phi\) | 4. | \(\dfrac{q\Phi}{\pi}\) |
(I) | \(A,B\) | at two adjacent vertices
(II) | \(A,C\) at the ends of a diagonal. | at two points
1. | \(2\) | 2. | \(\dfrac12\) |
3. | \(\dfrac{1}{\sqrt2}\) | 4. | \(1\) |
1. | \(\dfrac{q^2B}{2\pi m}\) | 2. | \(\dfrac{qB^2}{m}\) |
3. | \(\dfrac{2\pi m}{q^2B}\) | 4. | \(\dfrac{qB}{m^2}\) |
1. | \(2\) | 2. | \(\dfrac43\) |
3. | \(\dfrac32\) | 4. | \(4\) |
Statement I: | A charged particle moving in a magnetic field experiences a force which is zero only when it moves in the direction of the field or against it. |
Statement II: | Whenever a charged particle moves in a uniform magnetic field, its trajectory may be a circle, a straight line or a helix. |
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. |