If cosalpha+cosbeta=0=sinalpha+sinbeta, ...

If `cosalpha+cosbeta=0=sinalpha+sinbeta,` then `cos2alpha+cos2beta` is equal to `-2"sin"(alpha+beta)` (b) `-2cos(alpha+beta)` `2"sin"(alpha+beta)` (d) `2"cos"(alpha+beta)`

A

`-2sin (alpha+beta)`

B

`-2cos(alpha+beta)`

C

`2sin(alpha+beta)`

D

`2cos(alpha+beta)`

Text Solution

Verified by Experts

The correct Answer is:

B

`(cos alpha+cos beta)^(2)-(sin alpha+sinbeta)^(2)=0`
or `(cos^(2)alpha+cos^(2)beta+2cos alpha cos beta)^(-)`
`(sin^(2)alpha+sin^(2)beta+2sin alpha sin beta)`
or `cos 2alpha+cos 2beta=-2(cos alpha cos beta-sin alpha sin beta)`
`=-2cos(alpha+beta)`.

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