Math, asked by austint0412, 6 months ago

Help me solve this equation 3sin(x) = 1 - √(3cos²x - 2)

Answers

Answered by krish4711

1

Answer:

3cos2x−3sin2x−3–√2sinxcosx=0

3(cos2x−sin2x)−3–√(2sinxcosx)=0

[Trigonometric identities]

∵cos2x−sin2x=cos2x

2sinxcosx=sin2x

3(cos2x)−3–√(sin2x)=0

3(cos2x)=3–√sin2x

33–√=sin2xcos2x

3–√=tan2x

tan−1(3–√)=2x

(According to the property of inverse trigonometric functions)

tan−1(tanπ3)=2x

π3=2x

π6=x

HOPE THIS HELPS U

PLZ MARK AS BRAINLYEST

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