已知函数f(x)=sin(x-π/6)+cos(x-π/3).g(x)=2sin²x/2 (1)若α是第一象限

1个回答

  • (1)

    f(x)=sin(x-π/6)+cos(x-π/3),g(x)=2sin²x/2

    f(x)=sinxcosπ/6-cosxsinπ/6+cosxcosπ/3+sinxsinπ/3

    =√3sinx

    ∴f(α)=√3sinα=3√3/5

    ∴sinα=3/5

    ∵α是第一象限角

    ∴cosα=4/5

    ∴sin²α/2=(1-cosα)/2=1/5

    ∴g(α)=2sin²α/2=2/5

    (2)

    f(x)≥g(x)即√3sinx≥2sin²x/2

    即√3sinx≥1-cosx

    ∴√sinx+cosx≥1

    两边同时除以2

    √3/2sinx+1/2cosx≥1/2

    即sin(x+π/6)≥1/2

    ∴2kπ+π/6≤x+π/6≤2kπ+5π/6

    ∴x集合为{x}2kπ≤x≤2kπ+2π/3,k∈Z}