If tan θ ⋅ tan (120°-θ) tan (120°+θ)=(1/√3) then θ is equal to

Question

If tan θ ⋅ tan (120°-θ) tan (120°+θ)=(1/√3) then θ is equal to (A) (n π/3)+(π/18), n ∈ Z (B) (n π/3)+(π/12), n ∈ Z (C) (n π/12)+(π/12), n ∈ Z (D) (n π/3)+(π/6), n ∈ Z

Tardigrade Admin · Accepted Answer

Given that, tan θ ⋅ tan (120°-θ) tan (120°+θ)=(1/√3) ∵ tan θ tan (120°-θ) tan (120°+θ) = tan 3 θ ∴ tan 3 θ=(1/√3) ⇒ tan 3 θ= tan (π/6) ⇒ 3 θ=n π+(π/6) ⇒ θ=(n π/3)+(π/18), n ∈ Z

Q. If $tan θ \cdot tan (12 0^{\circ} - θ) tan (12 0^{\circ} + θ) = \frac{1}{3}$ then $θ$ is equal to

$\frac{nπ}{3} + \frac{π}{18}, n \in Z$

$\frac{nπ}{3} + \frac{π}{12}, n \in Z$

$\frac{nπ}{12} + \frac{π}{12}, n \in Z$

$\frac{nπ}{3} + \frac{π}{6}, n \in Z$

Q. If tanθ⋅tan(120∘−θ)tan(120∘+θ)=3​1​ then θ is equal to

3nπ​+18π​,n∈Z

3nπ​+12π​,n∈Z

12nπ​+12π​,n∈Z

3nπ​+6π​,n∈Z

Given that, tanθ⋅tan(120∘−θ)tan(120∘+θ)=3​1​ ∵tanθtan(120∘−θ)tan(120∘+θ) =tan3θ ∴tan3θ=3​1​⇒tan3θ=tan6π​ ⇒3θ=nπ+6π​ ⇒θ=3nπ​+18π​,n∈Z

Q. If $tan θ \cdot tan (12 0^{\circ} - θ) tan (12 0^{\circ} + θ) = \frac{1}{3}$ then $θ$ is equal to

$\frac{nπ}{3} + \frac{π}{18}, n \in Z$

$\frac{nπ}{3} + \frac{π}{12}, n \in Z$

$\frac{nπ}{12} + \frac{π}{12}, n \in Z$

$\frac{nπ}{3} + \frac{π}{6}, n \in Z$