数学题,求解答,求详细过程,谢谢!
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(1) sin(5π/6)=sin(π-π/6)
=sin(π/6)
=1/2
cos(5π/6)=cos(π-π/6)
=-cos(π/6)
=-√3/2
tan(5π/6)=tan(π-π/6)
=-tan(π/6)
=-√3/3
(2) sin240°=sin(180°+60°)
=-sin60°
=-√3/2
cos240°=cos(180°+60°)
=-cos60°
=-1/2
tan240°=tan(180°+60°)
=tan60°
=√3
(3) sin(-π/6)=-sin(π/6)
=-1/2
cos(-π/6)=cos(π/6)
=√3/2
tan(-π/6)=-tan(π/6)
=-√3/3
=sin(π/6)
=1/2
cos(5π/6)=cos(π-π/6)
=-cos(π/6)
=-√3/2
tan(5π/6)=tan(π-π/6)
=-tan(π/6)
=-√3/3
(2) sin240°=sin(180°+60°)
=-sin60°
=-√3/2
cos240°=cos(180°+60°)
=-cos60°
=-1/2
tan240°=tan(180°+60°)
=tan60°
=√3
(3) sin(-π/6)=-sin(π/6)
=-1/2
cos(-π/6)=cos(π/6)
=√3/2
tan(-π/6)=-tan(π/6)
=-√3/3
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