Consider the following statements.
| (a) | angular momentum \(l_1\) of particle \(1\) about \(A\) is \(l_1=mv(d_1)\) ⊙ |
| (b) | angular momentum \(l_1\) of particle \(2\) about \(A\) is \(l_1=mv(r_2)\) ⊙ |
| (c) | total angular momentum of the system about \(A\) is \(l=mv(r_1+r_2)\) ⊙ |
| (d) | total angular momentum of the system about \(A\) is \(l=mv(d_2-d_1)\) ⊗ |
Choose the correct option from the given ones:
| 1. | (a), (c) only |
| 2. | (a), (d) only |
| 3. | (b), (d) only |
| 4. | (b), (c) only |
Step 1: Find the angular momentum of the particle \(1.\)
The angular momentum \(L\) of a particle with to origin is to \(L =r \times p\) where \(r\) is the position vector of the particle and \(p\) is the linear momentum. The direction of \(L\) is perpendicular to \(dr\) and \(p\) by the right-hand rule.For particle \(1,\)
Step 2: Find the angular momentum of the system.
Similarly \(L_2=r_2×m(-v)\) is into the plane of perpendicular to \(r_2\)
\(L = L_1 +L_{2} = r_{1} \times mv + \left(\right. - r_{2} \times mv \left.\right) \\ \left|\right. L \left|\right. = \left(mvd\right)_{1} - \left(mvd\right)_{2} \)
\((d_{2} > d_{1}) \text{total angular momentum will be inward}\)
\(L = mv \left(\right. d_{2} - d_{1} \left.\right) \bigotimes\)
Hence, option (2) is the correct answer.
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