The circumference of a circle with centre O is divided into three arcs APB, BQC and CRA such that

$\frac{a r c A P B}{2} = \frac{a r c B Q C}{3} = \frac{a r c C R A}{4}$ . Find $∠ B O A .$

$30^{\circ}$

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$45^{\circ}$

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$60^{\circ}$

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$80^{\circ}$

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Solution

The correct option is D
$80^{\circ}$

Let $\frac{a r c A P B}{2} = \frac{a r c B Q C}{3} = \frac{a r c C R A}{4} = k$ .

$\Rightarrow a r c A P B = 2 k, a r c B Q C = 3 k, C R A = 4 k$ .

$\Rightarrow a r c A P B : a r c B Q C : a r c C R A = 2 : 3 : 4$

$\Rightarrow ∠ A O B : ∠ B O C : ∠ C O A = 2 : 3 : 4$

as $∠ A O B = ∠ B O A$ ,

$∴ ∠ B O A = \frac{2}{9} \times 360^{o}$ (angle made by a circle is $360^{o}$ )

$\Rightarrow ∠ B O A = 80^{o}$

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