In the given figure, PA and PB are tangents to a circle with centre O and ΔABC has been inscribed in the circle such that AB = AC. If ∠BAC = 72°, calculate

(i) ∠AOB

(ii) ∠APB.

(i) AB = AC [ABC is a isosceles triangle]

∠BAC = 72°

∠ABC = ∠ACB [Angles opposite to equal sides in a triangle are equal]

Sum of angles of a triangle :

⇒ ∠ABC + ∠ACB + ∠BAC = 180°

⇒ 2∠ABC + 72° = 180°

⇒ 2∠ABC = 108°

⇒ ∠ABC = 54°

⇒ ∠ABC = ∠ACB = 54°.

Arc AB subtends ∠AOB at center and ∠ACB on the remaining part of the circle.

⇒ ∠AOB = 2∠ACB = 2(54°) = 108°.

Hence, ∠AOB = 108°.

(ii) ∠A = ∠B = 90° [∵The tangent at any point of a circle is perpendicular to the radius through the point of contact.]

⇒ ∠AOB + ∠OAP + ∠OBP + ∠APB = 360° [Angle Sum Property of a Quadrilateral]

⇒ 108° + 90° + 90° + ∠APB = 360°

⇒ 288° + ∠APB = 360°

⇒ ∠APB = 360° - 288°

⇒ ∠APB = 72°.

Hence, ∠APB = 72°.