If the maximum value of 3 cos θ+5 sin (θ-(π/6)) for any real value of θ is √k, than k =

Question

If the maximum value of 3 cos θ+5 sin (θ-(π/6)) for any real value of θ is √k, than k = (A)  (B)  (C)  (D)

Tardigrade Admin · Accepted Answer

Let, the functions is, f (θ)=3 cos θ+5 sin θ⋅ cos (π/6)-5 sin (π/6) cos θ =3 cos θ+5× (√3/2) sin θ -5×(1/2) cos θ =(3-(5/2))cos θ+5×(√3/2) sin θ =(1/2) cos θ +(5√3/2) sin θ =(1/2) cos θ+(5√3/2) sin θ max f (θ)=√(1/4)+(25/4)×3=√(76/4)=√19

Q. If the maximum value of 3cosθ+5sin(θ−6π​) for any real value of θ is k​, than k =

Let, the functions is, f(θ)=3cosθ+5sinθ⋅cos6π​−5sin6π​cosθ =3cosθ+5×23​​sinθ−5×21​cosθ =(3−25​)cosθ+5×23​​sinθ =21​cosθ+253​​sinθ =21​cosθ+253​​sinθ max f(θ)=41​+425​×3​=476​​=19​

Q. If the maximum value of $3 cos θ + 5 s in (θ - \frac{π}{6})$ for any real value of $θ$ is $k$ , than $k$ =