1 Answer

Le Khiem · Answer 1 · 2017-12-26T19:07:23+0000

First, use the double angle formula for tangent:

$tan(2\theta) = \frac{2tan(\theta)}{1-{(tan(\theta))}^2}$
and then plug it in:

$\frac{2tan(\theta)}{1-{(tan(\theta))}^2} + tan(\theta) = 0$
Multiply by
$1-{(tan(\theta))}^2$ on both sides to get:

$2tan(\theta) + tan(\theta) - {(tan(\theta))}^3 = 0$

$3tan(\theta) - {(tan(\theta))}^3 = 0$

$3 - {(tan(\theta))}^2 = 0$

${(tan(\theta))}^2 = 3$

$tan(\theta) = √(3)$

This means one solution is
$(\pi)/(3)$ . To get the other solutions just add integer multiples of
$\pi$ (because the period of tangent is pi so answers will repeat every pi).

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