Answer
$3\sqrt 3$
Work Step by Step
$r_{1}=3sin\theta$ and $r_{2}=2-sin\theta$
$r_{1}^{2}-r_{2}^{2}=(3sin\theta)^{2}-(2-sin\theta)^{2}=4(sin\theta-cos(2\theta))$
$A=\frac{1}{2}\int_{\pi/6}^{5\pi/6}(4(sin\theta-cos(2\theta)))d \theta$
$=2[-cos\theta-\frac{1}{2}sin(2\theta)]_{\pi/6}^{5\pi/6}$
$=3\sqrt 3$
