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In Delta ABC if r1=2r2=3r3 and D is the ...

In `Delta ABC` if `r_1=2r_2=3r_3` and `D` is the mid point of `BC` then `cos/_ADC=`

A

`(7)/(25)`

B

`-(7)/(25)`

C

`(24)/(25)`

D

`-(24)/(25)`

Text Solution

Verified by Experts

The correct Answer is:
D
`r_(1)=2r_(1)=3r_(3)`
`rArr (Delta)/(s-a)=(2Delta)/(s-b)=(3Delta)/(s-c)=(Delta)/(k)` (say)
`rArr s-a=k, s-b=2k, s-c=3k`
`rArr 3s-(a+b+c)=6k rArr s=6k`
`rArr (a)/(5)=(b)/(4)=(c )/(3)=k`
So, `a^(2)=b^(2)+c^(2)`
`Delta ABC` is right angled `Delta, angle A =90^(@)` and D is midpoint of BC,
AD = DC (radius of circumicrcle)
`rArr angle DAC = C rArr angle ADC = 180^(@)-2C`
`rArr cos angle ADC`
`=cos(180^(@)-2C)`
`=-cos 2C`
`-(2cos^(2)C-1)`
`=1-2cos^(2)C`
`=1-2xx(16)/(25)=(-7)/(25)`
`["from " Delta ABC, cos C=(b)/(a)=(4)/(5)]`
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