If k and 2k are zeros of $f (x) = x^{3} + 4 x^{2} + 9 k x = 90$ , find k and all three zeros of f(x).

K = 1, roots = -3, -6, -5

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K = -3, roots = -3, -6, 5

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K = -3, roots = -3, 6, -5

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K = 3, roots = -3, -6, 5

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Solution

The correct option is B
K = -3, roots = -3, -6, 5

Since K and 2 K are zeros of f(x)
F(K) = 0
$\Rightarrow K^{3} + 4 K^{2} + 9 K^{2} - 90 = 0 \Rightarrow K^{3} + 13 K^{2} - 90 = 0 . . . . (i)$
And F(2K) = 0
$\Rightarrow 8 K^{3} + 16 K^{2} + 18 K^{2} - 90 = 0 \Rightarrow 8 K^{3} + 34 K^{2} - 90 = 0 \Rightarrow 4 K^{3} + 17 K^{2} - 45 = 0 . . . . (i i) (i i) - 4 \times (i) \Rightarrow - 35 K^{2} + 315 = 0 \Rightarrow K^{2} = 9 \Rightarrow K = \pm 3$
K = 3 does not satisfy the given
Polynomial.
$∴ k = - 3$
The two roots are – 3 and – 6
Sum of roots = - 4
$\Rightarrow - 3 - 6$ +third root =-4
$\Rightarrow$ third root =5

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