Circles are drawn on chords of the rectangular hyperbola $x y = 4$ parallel to the line $y = x$ as diameters. All such circles pass through two fixed points whose coordinates are

(2, 2)

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(2, - 2)

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(- 2, 2)

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(- 2, - 2)

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Solution

The correct option is D $(- 2, - 2)$
Circle with points $P (2 t_{1}, \frac{2}{t_{1}})$ and $Q (2 t_{2}, \frac{2}{t_{2}})$ as diameter is given by

$(x - 2 t_{1}) (x - 2 t_{2}) + (y - \frac{2}{t_{1}}) (y - \frac{2}{t_{2}}) = 0 \dots (1)$

Also, slope of $P Q$ is given by

$- \frac{1}{t_{1} t_{2}} = 1 \Rightarrow t_{1} t_{2} = - 1$

Hence, from $(1)$ ,circle is

$(x^{2} + y^{2} - 8) - 2 (t_{1} + t_{2}) (x - y) = 0$

which is of the form $S + λ L = 0$

Hence, circles pass through the points of intersection of the circle $x^{2} + y^{2} - 8 = 0$ and the line $x = y$

The points of intersection are $(2, 2)$ and $(- 2, - 2)$

Suggest Corrections

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