Question

The most general solution of $\sin \theta =-\frac{1}{2}$ and $\tan \theta =\frac{1}{\sqrt{3}}$ are

• A. $2n\pi +\frac{\pi }{6}$
• B. $2n\pi +\frac{11\pi }{6}$
• C. $2n\pi +\frac{7\pi }{6}$
• D. $2n\pi +\frac{\pi }{4}$

Answer 1

Answer: (C)

$\sin \theta =-\frac{1}{2}$ and $\tan \theta =\frac{1}{\sqrt{3}}$
$\therefore \theta$ lies in the IIIrd quadrant.
$\therefore \sin \theta =\sin \left(\pi +\frac{\pi }{6}\right)=\sin \frac{7\pi }{6}$
$\cos \theta =\cos \left(\pi +\frac{\pi }{6}\right)=\cos \frac{7\pi }{6}$
$\tan \theta =\tan \frac{7\pi }{6}\therefore \theta =2n\pi +\frac{7\pi }{6}$