tanα=1/2,α∈(π,3/2π),则cos(π/2+α)=求解~~

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tanα=1/2,α∈(π,3/2π),则cos(π/2+α)=求解~~tanα=1/2,α∈(π,3/2π),则cos(π/2+α)=求解~~tanα=1/2,α∈(π,3/2π),则cos(π/2

tanα=1/2,α∈(π,3/2π),则cos(π/2+α)=求解~~
tanα=1/2,α∈(π,3/2π),则cos(π/2+α)=
求解~~

tanα=1/2,α∈(π,3/2π),则cos(π/2+α)=求解~~
=-sina
tana=sina/cosa=1/2
而sina平方+cosa平方=1
a在第三象限
sina=-根5/5
原式=根5/5