Question

This is on a practice assessment, not for a grade therefore I need help solving this because I completely forgot what to do

Answer 1

Since line DB is perpendicular to line AC, then arc AB = arc BC

Thus, 14x - 3 = 7x + 18

Collecting like terms,

14x - 7x = 18 + 3

7x = 21

Dividing both sides by 7, we have

`\begin{gathered} x=(21)/(7) \\ x=3 \end{gathered}`
`\begin{gathered} \angle AC=\angle AOB+\angle BOC \\ \angle AC=14x-3+7x+18 \\ \end{gathered}`

substituting x into the above equation,

`\begin{gathered} \angle AC=14(3)-3+7(3)+18 \\ \angle AC=42-3+21+18 \\ \angle AC=78^0 \end{gathered}`

Hence, angle the arc AC makes at the centre is 78 degrees.