Two circles intersect in A and B. Quadrilaterals PCBA and ABDE are inscribed in these circles such that PAE and CBD are line segments. If $∠ P = 95^{\circ} a n d ∠ C = 40^{\circ}$ . Find the value of $∠ D E A$ .

65^{\circ}

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105^{\circ}

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95^{\circ}

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85^{\circ}

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Solution

The correct option is D $85^{\circ}$

In $Δ A B C,$
$∠ P + ∠ C B A = 180^{\circ}$ [Opposite angles of a quadrilateral add upto 180 $^{\circ}$ ]
$\Rightarrow ∠ C B A = 180^{\circ} - 95^{\circ} = 85^{\circ}$
$∠ C B D = 180^{\circ}$ [Angle of a straight line]
$\Rightarrow ∠ A B D = 180^{\circ} - ∠ C B D = 180^{\circ} - 85^{\circ} = 95^{\circ}$ [ $∠ A B D$ and $∠ C B D$ are supplementary to each other]
In $A B D E, ∠ B + ∠ E = 180^{\circ}$ [Opposite angles of a quadrilateral add upto 180 $^{\circ}$ ]
Let $∠ E = z^{\circ} = 180^{\circ} - ∠ A B D = 180^{\circ} - 95^{\circ}$ $= 85^{\circ}$

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Similar questions

Q. Two circles intersect in A and B. Quadrilaterals PCBA and ABDE are inscribed in these circles such that PAE and CBD are line segments. If

∠ P = 95^{\circ} a n d ∠ C = 40^{\circ}

. Find the value of

∠ D E A

$T w o c i r c l e s i n t e r s e c t i n A a n d B . Q u a d r i l a t e r a l s P C B A a n d A B D E a r e i n s c r i b e d i n t h e s e c i r c l e s s u c h t h a t P A E a n d C B D a r e l i n e s e g m e n t s . ∠ P = 95^{0} a n d ∠ C = 40^{0} . F i n d t h e v a l u e o f Z .$