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Question
In ΔPQR, PQ = PR. QR is extended to a point S. Prove that PS > PQ.
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Solution
Given:
- In ΔPQR, PQ = PR.
- QR is extended to a point S.
To Prove: PS > PQ
In ΔPQR:
Since PQ = PR, the angles opposite these equal sides are also equal.
Therefore, ∠PRQ = ∠PQR.
Consider ΔPQS:
In ΔPQS, ∠PQR is the exterior angle to the triangle PSR.
By the exterior angle theorem, the exterior angle of a triangle is greater than either of the opposite interior angles.
Therefore, ∠PQR (or PQS) > PSR.
Combine statements 3 and 4:
Since ∠PQR > ∠PSR and ∠PRQ = ∠PQR, we can conclude that ∠PRQ > ∠PSR.
In ΔPSR:
The side opposite to ∠PRQ is PS and the side opposite to ∠PSR is PR.
In any triangle, the side opposite the greater angle is greater.
Since ∠PRQ > ∠PSR, we have PS > PR.
Final step:
Given that PQ = PR, we can substitute PQ for PR in the inequality.
Therefore, PS > PQ.
