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प्रश्न
In the following figure, two tangents TP and TQ are drawn to circle with centre O from an external point T. Prove that ∠PTQ = 2∠OPQ.
प्रमेय
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उत्तर
Let ∠OPQ be θ, then ∠TPQ = 90° – θ
Since, TP = TQ
∴ ∠TQP = 90° – θ ...(Opposite angles of equal sides)
Now, ∠TPQ + ∠TQP + ∠PTQ = 180° ...(Angle sum property of a Triangle)
⇒ 90° – θ + 90° – θ + ∠PTQ = 180°
⇒ ∠PTQ = 180° – 180° + 2θ
⇒ ∠PTQ = 2θ
Hence, ∠PTQ = 2∠OPQ
Hence Proved.
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