Answer to Question #165350 in Trigonometry for Arianne Orfila

Given equation is -

"y=-3cos2(x+\\dfrac{\\pi}{5})"

Putting y=0 in the above equation we get,

"\\Rightarrow 0=-3cos(2x+\\dfrac{2\\pi}{5})"

"\\Rightarrow 2x+\\dfrac{2\\pi}{5}=cos^{-1}0"

"\\Rightarrow 2x=1-\\dfrac{2\\pi}{5}"

"\\Rightarrow x=\\dfrac{5-5\\pi}{10}"

Also putting x=0 in eqs.(1) we get-

"y=-3cos\\dfrac{2\\pi}{5}"

"=-3(0.3090)=-0.92"

The Graph of the given equation is-