JEE Main On 8 April 2017 Question 22

Question: If a point P has co-ordinates (0,-2) and Q is any point on the circle, $ x^{2}+y^{2}-5x-y+5=0, $ then the maximum value of $ {{(PQ)}^{2}} $ is: [JEE Online 08-04-2017]

Options:

A) $ 8+5\sqrt{3} $

B) $ \frac{47+10\sqrt{6}}{2} $

C) $ 14+5\sqrt{3} $

D) $ \frac{25+\sqrt{6}}{2} $

Show Answer

Answer:

Correct Answer: C

Solution:

  • $ {{(x-5/2)}^{2}}\frac{-25}{4}+{{(y-1/2)}^{2}}-1/4+5=0 $ $ ={{(x-5/2)}^{2}}+{{(y-1/2)}^{2}}=3/2 $ on circle $ Q=5/2+\sqrt{3/2}\cos Q,\frac{1}{2}+\sqrt{3/2}\sin Q $ $ PQ^{2}={{( \frac{5}{2}+\sqrt{3/2}\cos Q )}^{2}}+{{( \frac{5}{2}+\sqrt{3/2}\sin Q )}^{2}} $ $ PQ^{2}=\frac{25}{2}+\frac{3}{2}+5\sqrt{3/2}(cos,Q+tan,Q) $ $ =14+5\sqrt{3/2}(cos,Q+tan,Q) $ $ ma{n^{mr}}=14+5\sqrt{3/2}(\sqrt{2}) $ $ =14+5\sqrt{3} $