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Question

Question 8
In figure, if PA and PB are tangents to the circle with centre O such that APB=50, then OAB is equal to

(A) 25°
(B) 30°
(C) 40°
(D) 50°

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Solution

Given. PA and PB are tangent lines.
PA = PB
[ Since , the length of tangents drawn from an external point to a circle is equal ]
PBA=PAB=θ [say]InΔPAB,P+A+B=180[Since, sum of angles of a triangle=180]50+θ+θ=1802θ=18050=130θ=65Also, OAPA
[Since , tangents at any point of a circle is perpendicular to the radius through the point of contact]
PAO=90PAB+BAO=9065+BAO=90BAO=9065=25


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