if the non- parallel sides of a trapezium are equal than prove that it is a cyclic
Answers
The same can be proved by proving that in the following figure, sum of one pair of opposite angles is 180. You will understand better by the attachment....
Hello mate =_=
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Solution:
It is given that ABCD is a trapezium with AB∥CD and AD=BC
We need to prove that ABCD is a cyclic quadrilateral.
Construction: Draw AM⊥CD and BN⊥CD
In ∆AMD and ∆BNC, we have
AD=BC (Given)
∠AMD=∠BNC (Each equal to 90°)
AM=BN (Distance between two parallel lines is constant.)
Therefore, by RHS congruence rule, we have ∆AMD≅∆BNC
⇒∠D=∠C (Corresponding parts of congruent triangles are equal) ........ (1)
We also have ∠A+∠D=180′ (Co-interior angles, AB∥CD) ......... (2)
From (1) and (2), we can say that ∠A+∠C=180°
⇒ ABCD is a cyclic quadrilateral.
(If the sum of a pair of opposite angles of a quadrilateral is 180°, the quadrilateral is cyclic.)
I hope, this will help you.
Thank you______❤
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