If 5 cos 2 θ+2 cos 2 (θ/2)+1-0, when (0

Question

If 5 cos 2 θ+2 cos 2 (θ/2)+1-0, when (0<θ<π), then the values of θ are (A) (π/3) ± π (B) (π/3), cos -1((3/5)) (C)  cos -1((3/5)) ± π (D) (π/3), π- cos -1((3/5))

Tardigrade Admin · Accepted Answer

Given equation is 5 cos 2 θ+2 cos 2 (θ/2)+1=0 ⇒ 5(2 cos 2 θ-1)+1+ cos θ+1=0 ⇒ 10 cos 2 θ+ cos θ-3=0 ⇒ (2 cos θ-1)(5 cos θ+3)=0 ⇒ cos θ=(1/2) or cos θ=-(3/5) ⇒ θ= (π/3) or θ = π - cos -1((3/5))

Q. If $5 cos 2 θ + 2 cos^{2} \frac{θ}{2} + 1 - 0$ , when $(0 < θ < π)$ , then the values of $θ$ are

$\frac{π}{3} \pm π$

$\frac{π}{3}, cos^{- 1} (\frac{3}{5})$

$cos^{- 1} (\frac{3}{5}) \pm π$

$\frac{π}{3}, π - cos^{- 1} (\frac{3}{5})$

Q. If 5cos2θ+2cos22θ​+1−0, when (0<θ<π), then the values of θ are

3π​±π

3π​,cos−1(53​)

cos−1(53​)±π

3π​,π−cos−1(53​)

Given equation is 5cos2θ+2cos22θ​+1=0 ⇒5(2cos2θ−1)+1+cosθ+1=0 ⇒10cos2θ+cosθ−3=0 ⇒(2cosθ−1)(5cosθ+3)=0 ⇒cosθ=21​ or cosθ=−53​ ⇒θ=3π​ or θ=π−cos−1(53​)

Q. If $5 cos 2 θ + 2 cos^{2} \frac{θ}{2} + 1 - 0$ , when $(0 < θ < π)$ , then the values of $θ$ are

$\frac{π}{3} \pm π$

$\frac{π}{3}, cos^{- 1} (\frac{3}{5})$

$cos^{- 1} (\frac{3}{5}) \pm π$

$\frac{π}{3}, π - cos^{- 1} (\frac{3}{5})$