Areas and ratio of angle bisectors of two similar triangles are given. Match the correct ratio in each case.

9 : 7

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7 : 9

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1 : 2

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2 : 1

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Solution

The ratio of the areas of two similar triangles is equal to the square of the ratio of their corresponding sides.

Consider $△ A B C$ and $△ D E F$ with AP DQ as angular bisectors of $∠ A$ and $∠ D$ resp.

$\frac{a r (△ A B C)}{a r (△ D E F}) = \frac{A B^{2}}{D E^{2}} . . . . (i)$

$∠ A = ∠ D$ $(∵ △ A B C \sim △ D E F)$

$\frac{1}{2} ∠ A = \frac{1}{2} ∠ D$
$∠ B A P = ∠ E D Q$

In $△ A B P$ and $△ D E Q$ ,
$∠ A B P = ∠ D E Q$
$∠ B A P = ∠ E D Q$
$\Rightarrow$ $△ A B P \sim △ D E Q$
(By AA similarity)

$∴$ $\frac{A B}{D E} = \frac{A P}{D Q}$
$\Rightarrow$ $\frac{A B^{2}}{D E^{2}} = \frac{A P^{2}}{D Q^{2}}$

So we can say that
$\frac{a r (△ A B C)}{a r (△ D E F}) = \frac{A P^{2}}{D Q^{2}}$ [From (i)]

$∴$ The ratio of the areas of two similar triangles is equal to the square of the ratio of their corresponding angle bisectors.

Now $\frac{A P^{2}}{D Q^{2}} = \frac{a r (△ A B C)}{a r (△ D E F)}$

1. $\frac{a r (△ A B C)}{a r (△ D E F)}$ = $\frac{81 c m^{2}}{49 c m^{2}}$
$\Rightarrow$ $\frac{A P^{2}}{D Q^{2}} = \sqrt{\frac{81}{40}} = \frac{9}{7}$

2. $\frac{a r (△ A B C)}{a r (△ D E F)}$ = $\frac{49 c m^{2}}{81 c m^{2}}$
$\Rightarrow$ $\frac{A P^{2}}{D Q^{2}} = \sqrt{\frac{49}{81}} = \frac{7}{9}$

3. $\frac{a r (△ A B C)}{a r (△ D E F)}$ = $\frac{x c m^{2}}{2 x c m^{2}}$
$\Rightarrow$ $\frac{A P^{2}}{D Q^{2}} = \sqrt{\frac{x}{2 x}} = \frac{1}{\sqrt{2}}$

4. $\frac{a r (△ A B C)}{a r (△ D E F)}$ = $\frac{2 x c m^{2}}{x c m^{2}}$
$\Rightarrow$ $\frac{A P^{2}}{D Q^{2}} = \sqrt{\frac{2 x}{x}} = \frac{\sqrt{2}}{1}$

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