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Q2:
In each of the following, give the justification of the construction also:
Construct a triangle of sides 4 cm, 5 cm and 6 cm and then a triangle similar to it whose sides are $\frac{2}{3}$ of the corresponding sides of the first triangle.
Solution :
Given: A triangle with side lengths $a = 4$ cm, $b = 5$ cm, and $c = 6$ cm. We are required to construct a similar triangle whose sides are $\frac{2}{3}$ of the corresponding sides of the original triangle.
To Find: The construction steps and the geometric justification for the similarity of the two triangles.
Step 1: Construction of Triangle ABC
1. Draw a line segment $BC = 6$ cm using a ruler.
2. With $B$ as the center and radius $4$ cm, draw an arc.
3. With $C$ as the center and radius $5$ cm, draw another arc intersecting the previous arc at point $A$.
4. Join $AB$ and $AC$. Thus, $\triangle ABC$ is constructed.
Step 2: Construction of the Similar Triangle
1. Draw a ray $BX$ making an acute angle with $BC$ at $B$.
2. Locate 3 points (since the denominator of $\frac{2}{3}$ is 3) $B_1, B_2, B_3$ on $BX$ such that $BB_1 = B_1B_2 = B_2B_3$.
3. Join $B_3$ to $C$.
4. Draw a line through $B_2$ parallel to $B_3C$ intersecting $BC$ at $C'$.
5. Draw a line through $C'$ parallel to $AC$ intersecting $AB$ at $A'$.
6. $\triangle A'BC'$ is the required triangle.
Step 3: Justification
To prove $\triangle A'BC' \sim \triangle ABC$, we observe the following:
1. By construction, $B_2C' \parallel B_3C$. In $\triangle BB_3C$, by the Basic Proportionality Theorem (Thales Theorem):
$\frac{BC'}{C'C} = \frac{BB_2}{B_2B_3} = \frac{2}{1}$
Therefore, $\frac{BC'}{BC} = \frac{BB_2}{BB_3} = \frac{2}{3}$ [Since $BB_2 = 2$ units and $BB_3 = 3$ units].
2. Since $A'C' \parallel AC$, in $\triangle ABC$, $\triangle A'BC' \sim \triangle ABC$ by AA (Angle-Angle) similarity criterion, because:
$\angle B = \angle B$ (Common angle)
$\angle BA'C' = \angle BAC$ (Corresponding angles as $A'C' \parallel AC$)
3. Since the triangles are similar, the ratio of their corresponding sides is equal to the ratio of the segments on the ray $BX$:
$\frac{A'B}{AB} = \frac{BC'}{BC} = \frac{A'C'}{AC} = \frac{BB_2}{BB_3} = \frac{2}{3}$
Final Answer: The constructed triangle $\triangle A'BC'$ has sides exactly $\frac{2}{3}$ of the corresponding sides of $\triangle ABC$, satisfying the similarity condition.
More Questions from Class 10 Mathematics Constructions EXERCISE 11.1
- Q1: In each of the following, give the justification of the construction also: Draw a line segment of length 7.6 cm and divide it in the ratio 5 : 8. Measure the two parts.
- Q3: In each of the following, give the justification of the construction also: 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.
- Q4: In each of the following, give the justification of the construction also: Construct an isosceles triangle whose base is 8 cm and altitude 4 cm and then another triangle whose sides are $1\frac{1}{2}$ times the corresponding sides of the isosceles triangle.
- Q5: In each of the following, give the justification of the construction also: Draw a triangle ABC with side $BC = 6$ cm, $AB = 5$ cm and $\angle ABC = 60^{\circ}$. Then construct a triangle whose sides are $\frac{3}{4}$ of the corresponding sides of the triangle ABC.
- Q6: In each of the following, give the justification of the construction also: Draw a triangle ABC with side $BC = 7$ cm, $\angle B = 45^{\circ}$, $\angle A = 105^{\circ}$. Then, construct a triangle whose sides are $\frac{4}{3}$ times the corresponding sides of $\triangle ABC$.
- Q7: In each of the following, give the justification of the construction also: Draw a right triangle in which the sides (other than hypotenuse) are of lengths 4 cm and 3 cm. Then construct another triangle whose sides are $\frac{5}{3}$ times the corresponding sides of the given triangle.
