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JEE Advanced 2021 Paper 1

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Consider the lines

L_{1}

and

L_{2}

defined by

L_{1}: x\sqrt{2}+y-1=0

and

L_{2}: x\sqrt{2}-y+1=0

For a fixed constant

\lambda

, let

C

be the locus of a point

P

such that the product of the distance of

P

from

L_{1}

and the distance of

P

from

L_{2}

is

\lambda_{2}

. The line

y=2x+1

meets

C

at two points

R

and

S

, where the distance between

R

and

S

is

\sqrt{270}

.

Let the perpendicular bisector of

RS

meet

C

at two distinct points

R'

and

S'

. Let

D

be the square of the distance between R' and S'.

Section: Mathematics

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Question : 47 of 57

Marks: +1, -0

The value of

\lambda^{2}

[JEE Adv 2021 P1]

Your Answer:

Solution:

Let locus point

P(x, y)

.

\therefore

According to question,

\left| \frac{\sqrt{2}x + y - 1}{\sqrt{3}} \; \middle| \; \frac{\sqrt{2}x - y + 1}{\sqrt{3}} \right| = \lambda^{2}

\Rightarrow \left| \; \frac{2x^{2} - (y-1)^{2}}{3} \right| = \lambda^{2}

So,

C: \left| 2x^{2} - (y-1)^{2} \right| = 3\lambda^{2}

Let the line

y = 2x + 1

meets

C

at two points

R(x_{1}, y_{1})

and

S(x_{2}, y_{2})

\Rightarrow y_{1} = 2x_{1} + 1

and

y_{2} = 2x_{2} + 1

\Rightarrow (y_{1} - y_{2}) = 2(x_{1} - x_{2})

\therefore \; \; R S = \sqrt{(x_{1} - x_{2})^{2} + (y_{1} - y_{2})^{2}}

R S = \sqrt{5(x_{1} - x_{2})^{2}} = \sqrt{5} \left| x_{1} - x_{2} \right|

On solving equations curve

C

and line

y = 2x + 1

, we get

\left| 2x^{2} - (2x)^{2} \right| = 3\lambda^{2} \; \; \Rightarrow x^{2} = \; \frac{3\lambda^{2}}{2}

\therefore \; R S = \sqrt{5} \left| \; \frac{2\sqrt{3}\lambda}{\sqrt{2}} \right| = \sqrt{30} \lambda = \sqrt{270}

\Rightarrow 30 \lambda^{2} = 270 \Rightarrow \lambda^{2} = 9

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