If ABC is an equilateral triangle inscribed in a circle and P be any point on the minor arc BC which does not coincide with B or C, then prove that PA is angle bisector of $∠ B P C$ .

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Solution

Given
$Δ$ ABC is an equilateral triangle inscribed in a circle and P be any point on the minor arc BC which does not coincide with B or C.
To Prove that PA is an angle bisector $∠ B P C$
Construction : Join PB and PC

Proof
Given, $Δ$ ABC is an equilateral triangle
$∠ 3 = ∠ 4 = 60^{\circ} . . . (i)$

Now, $∠ 1 = ∠ 4 = 60^{\circ} . . . (i i)$
[angles in the same segment AB]

$∠ 2 = ∠ 3 = 60^{\circ} . . . (i i i)$
[angles in the same segment AC]

From (i), (ii) and (iii) we get,
$∠ 1 = ∠ 2 = 60^{\circ}$

Hence, PA is the bisector of $∠ B P C$

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