已知sin(α+π)=-3/5,α∈(π/2,π),求Cos2α,tan2α

问题描述:

已知sin(α+π)=-3/5,α∈(π/2,π),求Cos2α,tan2α

sin(α+π)=-sinα=-3/5,所以sinα=3/5
α∈(π/2,π),则cosα=-4/5
所以,cos2α=(cosα)^2-(sinα)^2=7/25
sin2α=2sinαcosα=-24/25
tan2α=sin2α/cos2α=-24/7

sin(α+π)=-3/5 -sinα=-3/5
sinα=3/5 α∈(π/2,π)
cosα=-4/5
cos2α=1-2sin^2α=7/25
sin2α=2sinαcosα=-24/25
tan2α=sin2α/cos2α=-24/7
(其中/为分数线,sin^2α为sinα的平方)