show that the diagonals of quadrilateral bisect each other at right angles then it is rhombus
Answers
ANSWER:
Let ABCD be a quadrilateral whose diagonals bisect each other at right angles.
Given,
OA = OC, OB = OD and ∠AOB = ∠BOC = ∠OCD = ∠ODA = 90°
To show,
ABCD is parallelogram and AB = BC = CD = AD
Proof,
In ΔAOB and ΔCOB,
OA = OC (Given)
∠AOB = ∠COB (Opposite sides of a parallelogram are equal)
OB = OB (Common)
Therefore, ΔAOB ≅ ΔCOB by SAS congruence condition.
Thus, AB = BC (by CPCT)
Similarly we can prove,
AB = BC = CD = AD
Opposites sides of a quadrilateral are equal hence ABCD is a parallelogram.
Thus, ABCD is rhombus as it is a parallelogram whose diagonals intersect at right angle.
Step-by-step explanation:
Take quadrilateral ABCD , AC and BD are diagonals which intersect at O.
In △AOB and △AOD
DO=OB ∣ O is the midpoint
AO=AO ∣ Common side
∠AOB=∠AOD ∣ Right angle
So, △AOB≅△AOD
So, AB=AD
Similarly, AB=BC=CD=AD can be proved which means that ABCD is a rhombus.
