Question

From the top of a lighthouse, the angles of depression of two ships on the opposite sides of it are observed to be $\alpha$ and $\beta$. If the height of the lighthouse be h metres and the line joining the ships passes through the foot of the lighthouse, find the distance between the ships is metres.

• A. $\frac{h(cosec\alpha +tan\beta )}{tan\alpha tan\beta }$
• B. $\frac{h(sec\alpha +tan\beta )}{tan\alpha tan\beta }$
• C. $\frac{h(tan\alpha +cot\beta )}{tan\alpha tan\beta }$
• D. $\frac{h(tan\alpha +tan\beta )}{tan\alpha tan\beta }$

Answer 1

The correct option is D

$\frac{h(tan\alpha +tan\beta )}{tan\alpha tan\beta }$

Let AB be the lighthouse and C and D be the positions of the two ships. Then, AB = h metres.

Clearly, $\angle ACB=\alpha$ and $\angle ADB=\beta$



Let AC = x metres and

AD = y metres

From right $\Delta CAB$, we have

$\frac{AC}{AB}=cot\alpha \Rightarrow \frac{x}{h}=cot\alpha \Rightarrow x=hcot\alpha$ ........... (i)

From right $\Delta DAB$, we have

$\frac{AD}{AB}=cot\beta \Rightarrow \frac{y}{h}=cot\beta \Rightarrow y=hcot\beta$ ........... (ii)

Adding the corresponding sides of (i) and (ii), we get

$x+y=h(cot\alpha +cot\beta )=h(\frac{1}{tan\alpha }+\frac{1}{tan\beta })$

$\Rightarrow x+y=\frac{h(tan\alpha +tan\beta )}{tan\alpha tan\beta }$

Hence, the distance between the ships is $\frac{h(tan\alpha +tan\beta )}{tan\alpha tan\beta }m$