已知函数f(x)=(√3sinωx+cosωx)cosωx+1/2(ω>0)的最小正周期为π,则函数f(x)的单调递增区间为?_数学解答

已知函数f(x)=(√3sinωx+cosωx)cosωx+1/2(ω>0)的最小正周期为π,则函数f(x)的单调递增区间为?

人气：307 ℃　时间：2020-03-25 10:18:58

解答

f(x）=根号3/2*sinwx +1/2*coswx +1
= sin(wx+π/6)+1
T=2π/w =π ,所以, w=2
f(x)= sin(2x+π/6)+1
-π/2 +2kπ<= 2x +π/6 <=π/2 +2kπ
解得, -π/3 +kπ <=x<=π/6 +kπ, k∈Z
递增区间为 [ -π/3 +kπ , π/6 +kπ], k∈Z