已知cos(π/4-α)=3/5,sin(5π/4+β)=-12/13,且β∈(0,π/4),α∈(π/4,3π/4),求sin(α+β)因为α∈(π/4,3π/4),β∈(0,π/4),所以(π/4-α)∈(-π/2,0),(5π/4+β)∈(5π/4,3π/2)因此,由cos(π/4-α)=3/5,sin(5π/4+
来源:学生作业帮助网 编辑:六六作业网 时间:2024/11/27 06:38:25
已知cos(π/4-α)=3/5,sin(5π/4+β)=-12/13,且β∈(0,π/4),α∈(π/4,3π/4),求sin(α+β)因为α∈(π/4,3π/4),β∈(0,π/4),所以(π/4-α)∈(-π/2,0),(5π/4+β)∈(5π/4,3π/2)因此,由cos(π/4-α)=3/5,sin(5π/4+
已知cos(π/4-α)=3/5,sin(5π/4+β)=-12/13,且β∈(0,π/4),α∈(π/4,3π/4),求sin(α+β)
因为α∈(π/4,3π/4),β∈(0,π/4),所以
(π/4-α)∈(-π/2,0),(5π/4+β)∈(
5π/4,3π/2)
因此,由cos(π/4-α)=3/5,sin(5π/4+β)=-12/13便可以得出sin(π/4-α)=-4/5,cos5π/4+β)=-5/13
所以sin(α+β)=-sin(α+β+π)=-sin((5π/4+β)-(π/4-α))
=-[sin(5π/4+β)cos(π/4-α)-cos(5π/4+β)sin(π/4-α)]=-[-12/13*3/5-(-5/13)*(-4/5)]=56/65
我不明白的是sin(α+β)=-sin(α+β+π)这一步 教教我
已知cos(π/4-α)=3/5,sin(5π/4+β)=-12/13,且β∈(0,π/4),α∈(π/4,3π/4),求sin(α+β)因为α∈(π/4,3π/4),β∈(0,π/4),所以(π/4-α)∈(-π/2,0),(5π/4+β)∈(5π/4,3π/2)因此,由cos(π/4-α)=3/5,sin(5π/4+
很简单啊,你把α+β看做θ
根据一全正,二正弦,三正切,四余弦的口诀,你把θ看做第一象限角,π+θ看做θ的第三象限角,就是sin(π+θ)=-sinθ,等效为sin(α+β)=-sin(α+β+π)了