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Question
Construct ∆PQR such that m∠P = 80°, m∠Q = 70°, l(QR) = 5.7 cm.
Solution
In Δ PQR,
∠P + ∠Q + ∠R = 180∘ ...(Angle sum property)
⇒ 80∘ + 70∘ + ∠R = 180∘
⇒ 150∘ + ∠R = 180∘
⇒ ∠R = 180∘ − 150∘
= 30∘
Steps of construction:
(1) Draw seg QR of length 5.7 cm.
(2) Draw ray QA such that ∠RQA = 70°.
(3) Draw ray RB such that ∠QRB = 30°.
(4) Name the point of intersection of rays RB and QA as P.
Therefore, △PQR is the required triangle.
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