JEE Main & Advanced
JEE Main Paper (Held on 10-4-2019 Morning)
question_answer
ABC is a triangular park with AB = AC = 100 metres. A vertical tower is situated at the mid-point of BC. If the angles of elevation of the top of the tower at A and B are \[{{\cot }^{-1}}\left( 3\sqrt{2} \right)\] and \[\cos e{{c}^{-1}}\left( 2\sqrt{2} \right)\] respectively, then the height of the tower (in metres) is : [JEE Main 10-4-2019 Morning]
A)\[10\sqrt{5}\]
B)\[\frac{100}{3\sqrt{3}}\]
C)\[20\]
D)\[25\]
Correct Answer:
C
Solution :
\[\cot \alpha =3\sqrt{2}\]\[\And cosec\beta =2\sqrt{2}\] So,\[\frac{x}{h}=3\sqrt{2}\] ...(i) And \[\frac{h}{\sqrt{{{10}^{4}}-{{x}^{2}}}}=\frac{1}{\sqrt{7}}\] ?(ii) So, from (i) & (ii) \[\Rightarrow \frac{h}{\sqrt{{{10}^{4}}-18{{h}^{2}}}}=\frac{1}{\sqrt{7}}\]\[\Rightarrow 25{{h}^{2}}=100\times 100\] \[\Rightarrow h=20.\]