In a triangle ABC, the perpendicular AD from point A, to the side BC meets BC at point D. If BD = 8 cm, DC = 2 cm and AD = 4 cm. Then angle BAC is ________

$60^{\circ}$

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$90^{\circ}$

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$30^{\circ}$

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$45^{\circ}$

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Solution

The correct option is B
$90^{\circ}$

In right angled triangle ACD

$A C^{2} = C D^{2} + A D^{2}$
$\Rightarrow A C^{2} = 2^{2} + 4^{2} = 20$

In right angled triangle ADB

$A B^{2} = A D^{2} + D B^{2}$
$\Rightarrow A B^{2} = 4^{2} + 8^{2} = 80$

$N o w B C = B D + D C = 8 + 2 = 10 c m$
$We can observe that B C^{2} = 10^{2} = 100$
$and A B^{2} + A C^{2} = 80 + 20 = 100$
$Hence B C^{2} = A C^{2} + A B^{2}$
$Hence, from converse of Pythagoras theoren we have$
$∠ B A C = 90^{\circ}$

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