If $△ A B C$ is isosceles with AB = AC, prove that the tangent at A to the circumcircle of $△ A B C$ is parallel to BC. [2 MARKS]

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Solution

Concept: 1 Mark
Application: 1 Mark

As AB = AC

Let $∠ A B C = ∠ A C B = x$

$∴ ∠ A O B = 2 ∠ A C B = 2 x$

In $△ A O B$

$∠ O B A = ∠ O A B$

as OA = OB (radius)

Now

$∠ O B A + ∠ O A B + ∠ A O B = 180^{\circ}$ (By Angle Sum Property)

$∠ O A B + ∠ O A B + 2 x = 180^{\circ}$

$∠ O A B + x = 90^{\circ}$

$∠ O A B = 90^{\circ} - x$

Now

$∵$ , $∠ T A O = 90^{\circ}$

$\Rightarrow$ $∠ T A B = ∠ T A O - ∠ B A O$

$\Rightarrow$ $∠ T A B = 90^{\circ} - (90^{\circ} - x)$

$∠ T A B = x = ∠ A B C$

Therefore TA is parallel to BC

Hence proved.

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