In the figure (i) given below, O is the center of the circle. If ∠COD = 40° and ∠CBE = 100°, then find :

(i) ∠ADC

(ii) ∠DAC

(iii) ∠ODA

(iv) ∠OCA

(i) ABCD is a cyclic quadrilateral.

∵ exterior angle of a cyclic quadrilateral is equal to the opposite interior angle.

∠ADC = ∠CBE = 100°.

Hence, the value of ∠ADC = 100°

(ii) Arc DC subtends ∠DOC at center and ∠DAC at point A.

⇒ ∠DOC = 2∠DAC (∵ angle subtended on center by an arc is double the angle subtended on the remaining part of circle.)

⇒ 40° = 2∠DAC
⇒ ∠DAC = 20°

Hence, the value of ∠DAC = 20°.

(iii) In △COD, OC = OD = radius of the same circle.

∠CDO = ∠DCO = x

Since sum of angles of triangle = 180°

In △COD

⇒ ∠CDO + ∠DCO + ∠COD = 180°
⇒ x + x + 40° = 180°
⇒ 40° + 2x = 180°
⇒ 2x = 180° - 40°
⇒ 2x = 140°
⇒ x = 70°.

From figure,

⇒ ∠ADC = ∠ODA + ∠CDO
⇒ 100° = ∠ODA + 70°
⇒ ∠ODA = 100° - 70° = 30°.

Hence, the value of ∠ODA = 30°.

(iv) Since sum of angles of triangle = 180°

In △ADC

⇒ ∠ADC + ∠DAC + ∠ACD = 180°
⇒ 100° + 20° + ∠ACD = 180°
⇒ 120° + ∠ACD = 180°
⇒ ∠ACD = 180° - 120°
⇒ ∠ACD = 60°.

From figure,

∠OCA = ∠DCO - ∠ACD = 70° - 60° = 10°.

Hence, the value of ∠OCA = 10°.