答案:B
在 $\Delta OBC$ 中,
在 $\Delta OBC$ 中,
$\begin{array}{ll}
OB=OC & \text{(半徑)} \\
\angle OCB = \angle OBC & \text{(等腰 $\Delta$ 的底角)} \\
\angle OCB = \angle 50^\circ & \\
\therefore \angle ACB = 30^\circ
\end{array}$
由此,可得
$\begin{array}{ll}
\angle BOA = 2 \times \angle ACB & \text{(圓心角兩倍於圓周角)} \\
\angle BOA = 2 \times 30^\circ \\
\angle BOA = 60^\circ
\end{array}$
