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Question

In a circle, O is the centre and COD is right angle. AC = BD and CD is the tangent at P. Which of the following are true, if the radius of the circle is 1 m?


A

BD = 41.42 cm

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B

OD = 141.42 cm

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C

PD = 100 cm

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D

AC + CP = 141.42 cm

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Solution

The correct option is D

AC + CP = 141.42 cm



Given that AC = BD.

OA = OB (radius)

Adding the above equations,

AC + OA = BD + OB

OC = OD

ODC=OCD (Property of isosceles triangles)

Given COD=90

Therefore, ODC=OCD=45 (Base angles are equal)

Join OP.

Since a tangent at any point of a circle is perpendicular to the radius at the point of contact, we have OP CD.

Consider right angled triangle ODP,
tan ODP=OPPD

Tan45=100PD (OP=1m=100cm)

1=100PD

PD=100 cm
Similarly we can show that PC = 100 cm

Now, sinODP=OPOD

sin45=0.7071=100OD

i.e., OD=1000.7071

OD=141.42 cm

But, BD=ODOB

BD=141.42100=41.42 cm

AC+CP=BD+100 (since AC = BD and PC= 100 cm)
=41.42+100=141.42cm


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