Math, asked by parthchavan1777, 9 months ago

E
In the figure,
O is the centre
B
of the circle.
F
Prove
*O
angle AOC = angle AFC + angle AEC.
(HOTS)

Answers

Answered by priyaranjan16
0

Answer:

sorry I can't help vaise figure kaha hai

Answered by sanikadhapate125
3

Step-by-step explanation:

Given: In the given figure O is the centre of the circle.

To Prove: \angle AOC=\angle AFC+\angle AEC∠AOC=∠AFC+∠AEC

Proof: In ΔBEC using exterior angle theorem.

Exterior angle theorem property: Sum of two interior angle of triangle is equal to opposite exterior angle. So, we get

\angle ABC=\angle AEC+\angle BCD∠ABC=∠AEC+∠BCD    

Double the above equation both sides

2\angle ABC=2\angle AEC+2\angle BCD2∠ABC=2∠AEC+2∠BCD

Angle subtended on circle is half angle subtended at centre.  

2\angle ABC=\angle AOC2∠ABC=∠AOC  

\angle AOC=\angle AEC+\angle BCD+\angle AEC+\angle BCD∠AOC=∠AEC+∠BCD+∠AEC+∠BCD

\angle AOC=\angle AEC+\angle BCD+\angle ABC∠AOC=∠AEC+∠BCD+∠ABC

\text{But } \angle ABC=\angle ADCBut ∠ABC=∠ADC  (∴ Angles subtended on same arc are equal)

\angle AOC=\angle AEC+\angle BCD+\angle ADC∠AOC=∠AEC+∠BCD+∠ADC

In ΔFDC using exterior angle theorem.

\angle AFC=\angle BCD+\angle ADC∠AFC=∠BCD+∠ADC

\therefore \angle AOC=\angle AEC+\angle AFC∴∠AOC=∠AEC+∠AFC

\text{Hence proved, } \angle AOC=\angle AFC+\angle AECHence proved, ∠AOC=∠AFC+∠AEC

#Hope it is helpful, please mark as brainliest.

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