AP EAMCET · Maths · Pair of Lines
If the pair of lines \(a x^2-7 x y-3 y^2=0\) and \(2 x^2+x y-6 y^2=0\) have exactly one line in common and ' \(a\) ' is an integer, then the equation of the pair of bisectors of the angles between the lines \(a x^2-7 x y-3 y^2=0\) is
- A \(7 x^2+18 x y-7 y^2=0\)
- B \(x^2-16 x y-y^2=0\)
- C \(7 x^2-9 x y-7 y^2=0\)
- D \(x^2-8 x y-y^2=0\)
Answer & Solution
Correct Answer
(A) \(7 x^2+18 x y-7 y^2=0\)
Step-by-step Solution
Detailed explanation
The lines forming \\(2 x^2+x y-6 y^2=0\\) are \\((2x-3y)(x+2y)=0\\), so \\(y = \frac{2}{3}x\\) or \\(y = -\frac{1}{2}x\\). For a common line, substitute \\(y=mx\\) into \\(a x^2-7 x y-3 y^2=0\\): \\(a - 7m - 3m^2 = 0\\). If \\(m = \frac{2}{3}\\): \…
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