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In A B C , the median A D divides /B A ...

In ` A B C ,` the median `A D` divides `/_B A C` such that `/_B A D :/_C A D=2:1` . Then `cos(A/3)` is equal to `(sinB)/(2sinC)` (b) `(sinC)/(2sinB)` `(2sinB)/(sinC)` (d) `non eoft h e s e`

A

`(sin B)/(2 sin C)`

B

`(sin C)/(2 sin B)`

C

`(2 sin B)/(sin C)`

D

none of these

Text Solution

Verified by Experts

The correct Answer is:
A

Let `(A)/(3) = angleCAD = theta`
Now, by m -n theorem,
`(1+1) cot alpha = 1 cot 2 theta - 1 cot theta`
or `2cot (B + 2 theta) = cot 2 theta - cot theta`
or `cot (B + 2 theta) + cot theta = cot 2 theta - cot (B + 2theta)`
or `(sin (B + 3 theta))/(sin (B + 2 theta) sin theta) = (sin B)/(sin (B + 2 theta) sin 2 theta)`
or `(sin (B+A))/(sin theta) = (sin B)/(sin 2 theta)`
`rArr sin C = (sin B)/(2 cos theta)`
`rArr cos.(A)/(3) = (sin B)/(2 sin C)`
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