tan6 (π/9) - 33 tan4 (π/9) +27 tan2 (π/9) =

Question

tan6 (π/9) - 33 tan4 (π/9) +27 tan2 (π/9) =  (A) 9 (B) 0 (C) √3 (D) 3

Tardigrade Admin · Accepted Answer

We know that tan 3A = (3 tan A - tan3 A/1-3 tan2 A) Substituting A = (π /9) and squaring, we get (√3)2 = (3 tan (π/9) - tan3 (π/9)/1-3 tan2 (π)9) 2 ⇒ 3 -18 tan2 (π/9) + 27 tan4 (π/9) = 9 tan2 (π/9) + tan6 (π/9) - 6 tan4 (π/9)

Q. $tan^{6} \frac{π}{9} - 33 tan^{4} \frac{π}{9} + 27 tan^{2} \frac{π}{9} =$

9

0

$3$

3

Q. tan69π​−33tan49π​+27tan29π​=

9

0

3​

3

We know that tan3A=1−3tan2A3tanA−tan3A​ Substituting A=9π​ and squaring, we get (3​)2={1−3tan29π​3tan9π​−tan39π​​}2 ⇒3−18tan29π​+27tan49π​ =9tan29π​+tan69π​−6tan49π​

Q. $tan^{6} \frac{π}{9} - 33 tan^{4} \frac{π}{9} + 27 tan^{2} \frac{π}{9} =$

$3$