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Question
In ΔPQR, ∠Q = 70°, ∠QPR = 50° and PR = RS. Prove that PQ < PS.
Theorem
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Solution
Given:
In ΔPQR, ∠Q = 70°, ∠QPR = 50°
PR = RS (point S lies on the extension of QR such that PR = RS)
To Prove: PQ < PS
In ΔPQR, ∠Q = 70°, ∠QPR = 50° and PR = RS.
∠P + ∠Q + ∠R = 180°
50° + 70° + ∠R = 180°
∠R = 60° ...[180° – (∠P + ∠Q) = 180° – (50° + 70°)]
So, ∠PRS = 180° – ∠R (60°) ...(Linear pair)
∠PRS = 120° ...[180° – 60°]
Then, ∠PRS + ∠RPS + ∠PSR = 180° ...[Defined through angle sum property]
∠RPS = ∠PSR ...[Property of isosceles triangle]
Then, 120° + ∠RPS + ∠PSR = 180°
∠RPS + ∠PSR = 60° ...(∠RPS = ∠PSR)
2 × ∠PSR = 60°
∠PSR = 30°
Therefore, ∠QPS = ∠QPR + ∠RPS = 50° + 30° = 80°
Angle Q = 70°
Angle S = 30°
Therefore, ∠Q < ∠S
So, PQ < PS
Hence, proved.
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