For what value of $k$ , the equation $(2 k - 1) x^{3} - 2 k x + 1 = 0$ will have equal roots?

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Solution

The equation $a x^{3} + b x^{2} + c x + d = 0$ has equal roots if the discriminant $= 0$
Discriminant $△ = 18 a b c d - 4 b^{3} d + b^{2} c^{2} - 4 a c^{3} - 27 a^{2} d^{2} = 0$
where $a = 2 k - 1, b = 0, c = - 2 k$ and $d = 1$
$△ = 18 (2 k - 1) \times 0 \times - 2 k \times 1 - 4 \times 0 \times 1 + 0 - 4 (2 k - 1) {(- 2 k)}^{3} - 27 (2 k - 1) 1 = 0$
$\Rightarrow △ = - 4 (2 k - 1) {(- 2 k)}^{3} - 27 {(2 k - 1)}^{2} 1 = 0$
$\Rightarrow 32 k^{3} (2 k - 1) - 27 (4 k^{2} + 1 - 4 k) = 0$
$\Rightarrow (2 k - 1) (32 k^{3} - 27 (2 k - 1)) = 0$
$\Rightarrow 2 k - 1 = 0$ and $32 k^{3} - 54 k + 27 = 0$
$\Rightarrow k = \frac{1}{2}$ and $32 k^{3} - 54 k + 27 = 0$
The value of $k = \frac{1}{2}$

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