Advertisements
Advertisements
प्रश्न
Construct ∆PQR such that m∠P = 80°, m∠Q = 70°, l(QR) = 5.7 cm.
उत्तर
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.
संबंधित प्रश्न
In ΔABC, l(AB) = 5.5 cm, l(BC) = 4.2 cm, l(AC) = 3.5 cm
Draw an equilateral triangle with side 6.5 cm.
Choose the lengths of the sides yourself and draw one equilateral, one isosceles and one scalene triangle.
Draw triangle with the measures given below.
In ∆FUN, l(FU) = 5 cm, l(UN) = 4.6 cm, m∠U = 110°
Construct a triangle of the measures given below.
In the right-angled ∆STU, hypotenuse SU = 5 cm and l(ST) = 4 cm.
Construct ∆EFG from the given measures. l(FG) = 5 cm, m∠EFG = 90°, l(EG) = 7 cm.
Construct an equilateral triangle using the given data: Altitude PM = 3.6 cm
Construct an equilateral triangle using the given data: Altitude OM = 5.8 cm
Construct a triangle using the following data: PQ + PR = 10.6 cm, QR = 4.8 cm and ∠R = 45°
Construct a triangle using the given data: PQ - PR = 1.5 cm, QR = 6.0 and ∠Q = 45°
