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Question
In a trapezium ABCD, the diagonals AC and BD intersect at point ‘O’, AB || DC and AD = BC.
Prove that :
- ∠BAD = ∠ABC
- ∠ADC = ∠BCD
- AC = BD
- OA = OB and OC = OD
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Solution
Given:
ABCD is a trapezium with AB || DC.
AD = BC.
The diagonals AC and BD meet at O.
To Prove:
- ∠BAD = ∠ABC
- ∠ADC = ∠BCD
- AC = BD
- OA = OB and OC = OD
Proof [Step-wise]:
1. Show ∠BAD = ∠ABC.
Construction/idea: Produce AB to a point E and draw CE || AD so AE || DC.
Then ADCE is a parallelogram, so CE = AD.
Because CE = AD and BC = AD (given), we get CE = BC.
Hence, triangle CEB is isosceles and ∠EBC = ∠BEC.
Using the parallelism relations and angle sums one obtains ∠A = ∠B.
i.e., ∠BAD = ∠ABC.
2. Show ∠ADC = ∠BCD.
From (1) we have ∠A = ∠B.
In any quadrilateral, the sums of opposite angles are supplementary.
Using AB || DC co-interior angles, we get
∠A + ∠D = 180° and ∠B + ∠C = 180°
Since ∠A = ∠B.
Subtracting gives ∠D = ∠C.
i.e., ∠ADC = ∠BCD.
3. Show AC = BD.
From (1), we have ∠A = ∠B.
In triangles ABC and BAD:
AD = BC ...(Given)
∠A = ∠B ...(Proved)
AB = AB ...(Common)
So, ΔABC ≅ ΔBAD by ASA.
Hence, corresponding parts give AC = BD.
4. Show OA = OB and OC = OD.
Consider the intersection O of diagonals AC and BD.
Because AB || DC, triangles AOB and COD are similar AA:
Alternate interior angles and vertical angles.
Hence, `(AO)/(CO) = (BO)/(DO) = (AB)/(CD)`.
Also, with the same parallelism, triangles AOD and COB are similar AA.
From that similarity, we get
`(AO)/(BO) = (AD)/(BC)` and `(DO)/(CO) = (AD)/(BC)`
Since AD = BC ...(Given)
`(AO)/(BO) = 1` and `(DO)/(CO) = 1`
Therefore, AO = BO and DO = CO.
i.e., OA = OB and OC = OD.
