Let $a x^{2} + b x + 6 = 0$ does not have distinct real roots. If the least value of $3 a + b$ is $k$ , then the value of $| k |$ is

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Solution

Let $f (x) = a x^{2} + b x + 6$
As $a x^{2} + b x + 6 = 0$ does not have distinct real roots, so
$D \leq 0$
Putting $x = 0$
$f (0) = 6 > 0$
So,
$f (x) \geq 0, \forall x \in R$

Now,
$f (3) \geq 0 9 a + 3 b + 6 \geq 0 \Rightarrow 3 a + b \geq - 2$

Therefore, the least value of $3 a + b$ is $- 2.$
Hence, $| k | = 2$

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