JEE Main On 8 April 2017 Question 9
Question: The tangent at the point (2,-2) to the curve $ x^{2}y^{2}-2x=4(1-y) $ does not pass through the point: [JEE Online 08-04-2017]
Options:
A) (-2,-7)
B) (8, 5)
C) (-4,-9)
D) $ ( 4,\frac{1}{3} ) $
Show Answer
Answer:
Correct Answer: A
Solution:
- $ x^{2}y^{2}-2x=4-4y $ $ 2xy^{2}+2y.x^{2}.\frac{dy}{dx}-2=-4.\frac{dy}{dx} $ $ \frac{dy}{dx}(2y.x^{2}+4)=2-2x.y^{2} $ $ {{. \frac{dy}{dx} |} _{2,-2}}=\frac{2-2\times 2\times 4}{2(-2)\times 4+4}=\frac{+14}{+12}=\frac{7}{6} $ $ (y+2)=\frac{7}{6}(x-2)\Rightarrow 7x-6y=26 $
(−2,−7) does not satisfy above eq.
