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Equation of a Chord with a Given Middle Point

The equation ...

Question

The equation of diameter which bisects the chord $3 x + y + 5 = 0$ of the circle $x^{2} + y^{2} = 16$ is

3 x + y = 0

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x + 3 y = 0

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3 x - y = 0

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x - 3 y = 0

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Solution

The correct option is D $x - 3 y = 0$
Given circle is $x^{2} + y^{2} = 16$
Chord is $3 x + y + 5 = 0$
The diameter which bisects the chord is perpendicular to the chord and passes through centre, so
$x - 3 y + λ = 0$
Putting the centre $(0, 0)$
$0 - 0 + λ = 0 \Rightarrow λ = 0$
So, the equation of diameter is
$x - 3 y = 0$

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