Construct a triangle with sides 5 cm- 6 cm- and 7 cm and then another triangle whose sides are 7-5 of the corresponding sides of the first triangle- Give the justification of the construction

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Construction of a Triangle with SSS Criterion

Construct a t...

Question

Construct a triangle with sides $5 cm, 6 cm, and 7 cm$ and then another triangle whose sides are $\frac{7}{5}$ of the corresponding sides of the first triangle. Give the justification of the construction

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Solution

Step 1. Draw a line segment with the length $A B = 6 c m$
.

Step 2. Formed the triangle:
Using $A$ and $B$ as the centers, draw arcs with radiuses of $7 c m$ cm and $5 c m$ , respectively. These arcs will cross at point $C$ , $A B C$ is the requisite triangle, with sides of $5 cm, 6 cm, and 7 cm$ , respectively.
Step 3. Divide the side in the given ratio.
Draw a ray $A X$ that intersects the line segment $A B$ on the other side of vertex $C$ at an acute angle. On line $A X$ , find the $7$ points

$A_{1}, A_{2}, A_{3}, A_{4}, A_{5}, A_{6}, A_{7}$ , are mark such that $A A_{1} = A_{1} A_{2} = A_{2} A_{3} = A_{3} A_{4} = A_{4} A_{5} = A_{5} A_{6} = A_{6} A_{7}$ is formed.
Draw a line from point $A_{7}$ to point $B A_{5}$ that is parallel to the line $B A_{5}$ where it crosses the extended line segment $A B$ at point $B'$ . And draw a line from $B'$ to $C'$ that is parallel to the line $B C$ and intersects to form a triangle.
As a result, the needed triangle is $A B' C'$ .
Hence, the required graph is shown below:
Step 4. Make a justification.
Since the scale factor is $\frac{7}{3}$ . So, prove that $\frac{A B'}{A B} = \frac{B' C'}{B C} = \frac{A C'}{A C} = \frac{7}{5}$ .
From the construction, we get $B' C' ∥ B C$ .
So, $∠ A B' C' = ∠ A B C \dots (1)$ (Corresponding angles)
In $∆ A B' C'$ and $∆ A B C$ ,
$∠ A B' C' = ∠ A B C [from (1)]$
$∠ A = ∠ A (Common)$
$∆ A B' C' ~ ∆ A B C$ (From AA similarity criterion)
Therefore, $\frac{A B'}{A B} = \frac{B' C'}{B C} = \frac{A C'}{A C} \dots (2)$ .
From the construction, $\frac{A B'}{A B} = \frac{A A_{5}}{A A_{7}} = \frac{7}{5} \dots (3)$ .
Therefore, form $(2)$ and $(3)$
$\frac{A B'}{A B} = \frac{B' C'}{B C} = \frac{A C'}{A C} = \frac{7}{5}$
Hence, the proof is justified.

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