已知:sin(π/4+α)xsin(π/4-α)=1/6,且α∈(π/2,π),求sin2α
问题描述:
已知:sin(π/4+α)xsin(π/4-α)=1/6,且α∈(π/2,π),求sin2α
2sin(π/4+α)cos(π/4+α)=sin[2(π/4+α)]=2*1/6 (这步不是sin2α=2sinαcosα吗?为什么还有接下来几步?)
sin(π/2+2α)=1/3
cos2α=1/3
答
sin(π/4-α)=cos[π/2-(π/4-α)]=cos(π/4+α)
所以sin(π/4+α)*cos(π/4+α)=1/6
2sin(π/4+α)cos(π/4+α)=sin[2(π/4+α)]=2*1/6
sin(π/2+2α)=1/3
cos2α=1/3
α∈(π/2,π)
所以2α∈(π,2π)
所以sin2α因为sin(2α)^2+(cos2α)^2=1
所以sin2α=-2√2/3
sin[2(π/4+α)]=sin(π/2+2α)
由诱导公式
sin(π/2+x)=cosx
所以sin(π/2+2α)=cos2α