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In a triangle ABC, cos3A+cos3B+cos3C=1, ...

In a triangle ABC, `cos3A+cos3B+cos3C=1`, then find any one angle.

A

`30^(@)`

B

`60^(@)`

C

`90^(@)`

D

`120^(@)`

Text Solution

Verified by Experts

The correct Answer is:
D
We have,
`cos3A+cos3B+cos3C=1`
`implies2cos3((A+B)/(2))cos3((A-3)/(2))-cos3(A+B)=1" "[becauseC=pi-(A+B)]`
`implies2cos2((A+3)/(2))cos3((A-B)/(2))-cos^(2)3((A+B)/(2))=0`
`implies2cos3((A+B)/(2)){cos3((A-B)/(2))-cos3((A+B)/(2))}=0`
`impliescos3((A+B)/(2))=0or,orcos3((A-B)/(2))=cos3((A+B)/(2))`
Now, `cos3((A+B)/(2))=0impliesA+B=(pi)/(3)impliesC=(2pi)/(3)`
and, `cos3((A-B)/(2))=cos3((A+B)/(2))impliesB=0,` which is not possible.
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