已知π/2<β<α<3π/4,cos(α-β)=12/13,sin(α+β)=-3/5 求sin2α的值
问题描述:
已知π/2<β<α<3π/4,cos(α-β)=12/13,sin(α+β)=-3/5 求sin2α的值
答
因为π/2<β<α<3π/4,cos(α-β)=12/13,sin(α+β)=-3/5所以,sin(α-β)=5/13,cos(α+β)=-4/5那么sin2α=sin(α+β+α-β)=sin(α+β)*cos(α-β)+sin(α-β)*cos(α+β)=-3/5*12/13+5/13*(-4/5)=-56/65...