If \(l_1, m_1, n_1\) and \(l_2, m_2, n_2\) are direction cosines of \(\mathbf{O A}\) and \(O B\) such that…
- \(\frac{I_1+I_2}{2 \sin \frac{\theta}{2}}, \frac{m_1+m_2}{2 \sin \frac{\theta}{2}}, \frac{n_1+n_2}{2 \sin \frac{\theta}{2}}\)
- \(\frac{l_1-l_2}{2 \cos \frac{\theta}{2}}, \frac{m_1-m_2}{2 \cos \frac{\theta}{2}}, \frac{n_1-n_2}{2 \cos \frac{\theta}{2}}\)
- \(\frac{l_1-l_2}{2 \sin \frac{\theta}{2}}, \frac{m_1-m_2}{2 \sin \frac{\theta}{2}}, \frac{n_1-n_2}{2 \sin \frac{\theta}{2}}\)
- \(\frac{l_1+I_2}{2 \cos \frac{\theta}{2}}, \frac{m_1+m_2}{2 \cos \frac{\theta}{2}}, \frac{n_1+n_2}{2 \cos \frac{\theta}{2}}\)
Solution

Then, the coordinates of \(P, Q\) and \(R\) are \(\left(l_1 r, m_1 r, n_1 r\right),\left(l_2 r, m_2 r, n_2 r\right)\) and \(\left(-l_2 r,-m_2 r,-n_2 r\right)\) respectively. If \(A, B\) be the mid-points of \(P Q\) and \(P R\), then \(O A\) and \(O B\) are along the bisectors of the lines direction ratios of \(O A\) are \(l_1+l_2, m_1+m_{2,}, n_1+n_2\) \(D R\) 's of \(O B\) are \(l_1-l_2, m_1-m_2, n_1-n_2\) Now, \(\quad \Sigma\left(l_1+l_2\right)^2=\mathbf{l}+\mathbf{l}+2 \cos \theta\) \(=2(1+\cos \theta)=4 \cos ^2 \frac{\theta}{2}\) \(\therefore D C\) 's of internal bisector are \(\frac{l_1+l_2}{2 \cos \frac{\theta}{2}}, \frac{m_1+m_2}{2 \cos \frac{\theta}{2}}, \frac{n_1+n_2}{2 \cos \frac{\theta}{2}}\)
Asked in: AP EAMCET 2019 (22 Apr Shift 1)
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