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प्रश्न
In the given figure, A, B, C are 3 points on the circumference of a circle with centre O. Arc AB = 2 arc BC and ∠AOB = 108°.
Calculate:
- ∠BOC
- ∠OAB
- ∠OAC
- ∠BAC
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उत्तर
Given:
- Points A, B, C lie on the circumference of a circle with center O.
- Arc AB = 2 × arc BC.
- ∠AOB = 108°.
Stepwise calculation:
i. Calculate ∠BOC:
Since arc AB = 2 × arc BC, the angle at the center subtending arc AB is twice the angle subtending arc BC.
Let ∠BOC = x.
Then ∠AOB = 2x.
Given ∠AOB = 108°
So, 2x = 108°
x = `108^circ/2`
x = 54°
Therefore, ∠BOC = 54°.
ii. Calculate ∠OAB:
OA = OB are radii, so triangle OAB is isosceles.
Sum of angles in triangle OAB = 180°.
∠AOB = 108°, so remaining two angles are equal.
Each of ∠OAB and ∠OBA equals:
`(180^circ - 108^circ)/2`
= `72^circ/2`
= 36°
Therefore, ∠OAB = 36°.
iii. Calculate ∠OAC:
First find ∠AOC.
Since ∠AOB = 108° and ∠BOC = 54°
Then ∠AOC = ∠AOB + ∠BOC
= 108° + 54°
= 162°
OA = OC are radii, so triangle OAC is isosceles.
Sum of angles in triangle OAC = 180°.
∠AOC = 162°, so each of ∠OAC and ∠OCA equals:
`(180^circ - 162^circ)/2`
= `18^circ/2`
= 9°
Therefore, ∠OAC = 9°.
iv. Calculate ∠BAC:
∠BAC = ∠OAB – ∠OAC
= 36° – 9°
= 27°
