prove that the opposite side of a quadrilateral circumscribing a circle subtend supplementary angle at the centre of circle
Answers
To Prove : ∠AOB + ∠COD = 180°;∠BOC + ∠DOA = 180°
Given: ABCD is circumscribing the circle.
Proof:
Let ABCD be a quadrilateral circumscribing a circle centred at O such that it touches the circle at point P, Q, R, S.
join the vertices of the quadrilateral ABCD to the centre of the circle.
Consider ΔOAP and ΔOAS:
AP = AS (Tangents from the same point)
OP = OS (Radii of the same circle)
OA = OA (Common side)
ΔOAP ≅ ΔOAS (SSS congruence criterion)
And thus, ∠ POA = ∠ AOS
∠1 = ∠ 8 Similarly,
∠2 = ∠ 3
∠4 = ∠ 5
∠6 = ∠ 7
∠1 + ∠ 2 + ∠ 3 + ∠ 4 + ∠ 5 + ∠ 6 + ∠ 7 + ∠ 8 = 360°
(∠ 1 + ∠ 8) + (∠ 2 + ∠ 3) + (∠ 4 + ∠ 5) + (∠ 6 + ∠ 7) = 360°
2∠ 1 + 2∠ 2 + 2∠ 5 + 2∠ 6 = 360°
2(∠ 1 + ∠ 2) + 2(∠ 5 + ∠ 6) = 360°
(∠ 1 + ∠ 2) + (∠ 5 + ∠ 6) = 180°
∠ AOB + ∠ COD = 180°
Similarly, we can prove that ∠ BOC + ∠ DOA = 180°
Hence, opposite sides of a quadrilateral circumscribing a circle subtend supplementary angles at the centre of the circle.
[Proved] Q.E.D
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Your Answer :---
Let ABCD be a quadrilateral circumscribing a circle centered at O such that it touches the circle at point P, Q, R, S.
Let us join the vertices of the quadrilateral ABCD to the center of the circle.
[ plz see attached file also :) ]
Consider ∆OAP and ∆OAS,
AP = AS (Tangents from the same point)
OP = OS (Radii of the same circle)
OA = OA (Common side)
∆OAP ≅ ∆OAS (SSS congruence criterion)
Therefore, A ↔ A, P ↔ S, O ↔ O
And thus,
∠POA = ∠AOS ∠1 = ∠8 Similarly, ∠2 = ∠3 ∠4 = ∠5 ∠6 = ∠7
∠1 + ∠2 + ∠ 3 + ∠4 + ∠5 + ∠ 6 + ∠7 + ∠ 8 = 360º
( ∠ 1 + ∠ 8) + ( ∠ 2 + ∠ 3) + ( ∠4 + ∠ 5) + ( ∠6 + ∠ 7) = 360º
2 ∠1 + 2 ∠2 + 2∠ 5 + 2∠ 6 = 360º
2( ∠1 + ∠ 2) + 2( ∠5 + ∠ 6) = 360º
( ∠1 + ∠2 ) + ( ∠5 + ∠ 6) = 180º
∠AOB + ∠COD = 180º
Similarly, we can prove that
∠BOC + ∠DOA = 180º
Hence, opposite sides of a quadrilateral circumscribing a circle subtend supplementary angles at the centre of the circle.
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