化简sin^2α+sin^2β+2sinαsinβcos(α+β)
来源:学生作业帮助网 编辑:作业帮 时间:2024/07/06 13:16:41
![化简sin^2α+sin^2β+2sinαsinβcos(α+β)](/uploads/image/z/1729885-13-5.jpg?t=%E5%8C%96%E7%AE%80sin%5E2%CE%B1%2Bsin%5E2%CE%B2%2B2sin%CE%B1sin%CE%B2cos%28%CE%B1%2B%CE%B2%29)
化简sin^2α+sin^2β+2sinαsinβcos(α+β)
化简sin^2α+sin^2β+2sinαsinβcos(α+β)
化简sin^2α+sin^2β+2sinαsinβcos(α+β)
sin^2α+sin^2β+2sinαsinβcos(α+β)
=1/2(1-cos2α)+1/2(1-cos2β)+
2sinαsinβ(cosαcosβ-sinαsinβ)
=1/2(1-cos2α)+1/2(1-cos2β)+
2sinαcosαsinβcosβ-2sinαsinβsinαsinβ=1/2(1-cos2α)+1/2(1-cos2β)+
1/2sin2αsin2β-2sin^2αsin^2β=1-1/2cos2α-1/2cos2β+1/2sin2αsin2β-1/2(1-cos2α)(1-cos2β)=1-1/2cos2α-1/2cos2β+1/2sin2αsin2β-1/2+1/2cos2α+1/2cos2β-1/2cos2αcos2β=1/2-1/2(cos2αcos2β-sin2αsin2β)=1/2-1/2cos(2α+2β)
化简sin^2α+sin^2β+2sinαsinβcos(α+β)
化简sin(α+β)+sin(α-β)+2sinαsin(3π/2-β)=
化简sin(α+β)-2sinαsinβ/2sinαsinβ+cos(α+β)
sin(α+β)-2sinαcosβ/2sinαsinβ+cos(α+β)
求证:sin(2α+β)/sinα-2cos(α+β)=sinβ/sinα
求证sin(2α+β)/sinα-2cos(α+β)=sinβ/sinα
求证sin(2α+β)/sinα-2cos(α+β)=sinβ/sinα
求证sin(2α+β)/sinα-2cos(α+β)=sinβ/sinα
证明:sin(2α+β)/sinα - 2cos(α+β)=sinβ/sinα
sin(α+β)sin(α-β)=sin^2α-sin^2β的推导过程
若sin^2β-sin^2α=m,则sin(α+β)sin(α-β)
sin(α+β)-2sinαcosβ/2sinαsinβ+cos(α+β)化简
化简:sin(α+β)-2sinαcosβ/2sinαsinβ+cos(α+β)
化简sin(α+β)-2sinαcosβ 除以 2sinαsinβ+cos(α+β)
化简 sin(α+β)-2sinαcosβ/1sinαsinβ+cos(α+β)
化简:(sinα)^2+(sinβ)^2-(sinα)^2(sinβ)^2+cos2αcos2β
化简sin^2α+sin^2β-sin^2αsin^2β+cos^2cos^2β
化简sin^2α+sin^2β-sin^2cos^2β-cos^2αsin^2β