In the given figure, PA and PB are two tangents drawn from an external point P. If ∠APB=40∘, then ∠AOB=
A
110∘
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B
140∘
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C
290∘
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Solution
The correct option is B140∘ By Theorem- Tangents drawn at any point on the circle is perpendicular to the radius through the point of contact. ∴OA⊥PA and OB⊥PB ⇒∠OAP=∠OBP=90∘
By Theorem- Sum of all four angles of quadrilateral = 360∘ ∴∠OAP+∠APB+∠OBP+∠AOB=360∘ ⇒90∘+40∘+90∘+∠AOB=360∘ ⇒∠AOB=360∘−90∘−40∘−90∘ ∴∠AOB=140∘