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प्रश्न
Construct ΔABC, in which BC = 3.2 cm, ∠ACB = 45° and perimeter of ΔABC is 10 cm.
उत्तर
Rough figure:
Explanation:
Perimeter of Δ ABC = 10 cm
⇒ AB + BC + AC = 10 cm
⇒ AB + 3.2 + AC = 10 cm
⇒ AB + AC = 6.8 cm
Now, In ∆ABC
BC = 3.2 cm, ∠ACB = 45° and AB + AC = 6.8 cm ...(i)
As shown in the rough figure draw seg BC = 3.2 cm
Draw a ray CT making an angle of 45° with CB
Take a point D on ray CT, such that
CD = 6.8 cm
Now, CA + AD = CD ...[C-A-D]
∴ CA + AD = 6.8 cm ...(ii)
Also, AB + AC = 6.8 cm ...(iii) [From (i)]
∴ CA + AD = AB + AC ...[From (ii) and (iii)]
∴ AD = AB
∴ Point A is on the perpendicular bisector of seg DB.
∴ The point of intersection of ray CT and perpendicular bisector of seg DB is point A.
Steps of construction:
- Draw seg BC of length 3.2 cm.
- Draw ray CT, such that ∠BCT = 45°.
- Mark point D on ray CT such l(CD) = 6.8 cm.
- Join points D and B.
- Draw perpendicular bisector of seg DB intersecting ray CT. Name the point as A.
- Join the points A and B.
Therefore, ∆ABC is the required triangle.
