The figure shows a circle with centre O, in which the diameter AB bisects the chord CD at point E. If CE = ED = 8 cm and EB = 4 cm. Find the radius of the circle.

10 cm

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15 cm

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20 cm

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25 cm

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Solution

The correct option is A
10 cm

Join OD. Let radius of the circle be ' $r$ ' cm.

OB = OD = $r$ cm

EB = 4 cm (given)

$∴$ OE = ( $r$ - 4) cm

In $△ O E D$ , $∠ O E D = 90^{o}$

Using Pythagoras' theorem in $△ O E D$ , we get

$O D^{2} = O E^{2} + E D^{2}$

$\Rightarrow$ $r^{2} = (r - 4)^{2} + 8^{2}$

$\Rightarrow$ $r^{2} = (r^{2} - 8 r + 16) + 64$

$\Rightarrow$ $r = 10$ cm

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The figure shows a circle with centre O, in which the diameter AB bisects the chord CD at point E. If CE = ED = 8 cm and EB = 4 cm. Find the radius of the circle.

The correct option is A 10 cm Join OD. Let radius of the circle be 'r' cm. OB = OD = r cm EB = 4 cm (given) ∴ OE = (r - 4) cm In △OED, ∠OED=90o Using Pythagoras' theorem in △OED, we get OD2 = OE2+ED2 ⇒ r2=(r−4)2+82 ⇒ r2=(r2−8r+16)+64 ⇒ r=10 cm