已知0<β<π/4<α<3π/4,cos(π/4-α)=3/5
已知0<β<π/4<α<3π/4,cos(π/4-α)=3/5sin(3π/4+β)=5/13,求sin(α+β)的值...
已知0<β<π/4<α<3π/4,cos(π/4-α)=3/5 sin(3π/4+β)=5/13,
求sin(α+β)的值 展开
求sin(α+β)的值 展开
2个回答
展开全部
cos[(π/4-a)-(3π/4+β)]
=cos(-π/2-a-β)
=cos(π/2+a+β)
=sin(a+β)
sin(a+β)=(3/5)(12/13)+(5/13)(4/5)
=56/65
2.
cos(π/4-α)=3/5
π/4<α<3π/4 -3π/4<-α<-π/4
则-π/2<π/4-α<0
sin(π/4-α)<0
sin(π/4-α)=-√(1-(cos(π/4-α))^2)=-4/5
sin(3π/4+β)=5/13
0<β<π/4 3π/4<3π/4+β<π
cos(3π/4+β)<0
cos(3π/4+β)=-√(1-(sin(3π/4+β))^2)=-12/13
sin(α+β)=-cos(α+β+π/2)=-cos((3π/4+β)-(π/4-α))
=-[cos(3π/4+β)cos(π/4-α)+sin(3π/4+β)sin(π/4-α)]
=-[(-12/13)*3/5+5/13*(-4/5)]
=56/65
=cos(-π/2-a-β)
=cos(π/2+a+β)
=sin(a+β)
sin(a+β)=(3/5)(12/13)+(5/13)(4/5)
=56/65
2.
cos(π/4-α)=3/5
π/4<α<3π/4 -3π/4<-α<-π/4
则-π/2<π/4-α<0
sin(π/4-α)<0
sin(π/4-α)=-√(1-(cos(π/4-α))^2)=-4/5
sin(3π/4+β)=5/13
0<β<π/4 3π/4<3π/4+β<π
cos(3π/4+β)<0
cos(3π/4+β)=-√(1-(sin(3π/4+β))^2)=-12/13
sin(α+β)=-cos(α+β+π/2)=-cos((3π/4+β)-(π/4-α))
=-[cos(3π/4+β)cos(π/4-α)+sin(3π/4+β)sin(π/4-α)]
=-[(-12/13)*3/5+5/13*(-4/5)]
=56/65
展开全部
cos〔3π/4+β-(π/4-α)〕=cos(π/2+α+β)=-sin(α+β)
=cos(3π/4+β)cos(π/4-α)+sin(3π/4+β)sin(π/4-α)
0<β<π/4<α<3π/4
所以3π/4<β+3π/4<2π,-π/2<α<0
sin(3π/4+β)=5/13>0所以3π/4<β+3π/4<π,
cos(3π/4+β)<0 sin(π/4-α)<0
=-12/13 =-4/5
cos(3π/4+β)cos(π/4-α)+sin(3π/4+β)sin(π/4-α)
=-36/65-20/65=-56/65=-sin(α+β)
所以sin(α+β)=56/65
=cos(3π/4+β)cos(π/4-α)+sin(3π/4+β)sin(π/4-α)
0<β<π/4<α<3π/4
所以3π/4<β+3π/4<2π,-π/2<α<0
sin(3π/4+β)=5/13>0所以3π/4<β+3π/4<π,
cos(3π/4+β)<0 sin(π/4-α)<0
=-12/13 =-4/5
cos(3π/4+β)cos(π/4-α)+sin(3π/4+β)sin(π/4-α)
=-36/65-20/65=-56/65=-sin(α+β)
所以sin(α+β)=56/65
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