sin(π/2)*sin(π/3)+2cos(-π/2)-√3*tan(π/3)
=sin(π/3)+0-√3*tan(π/3)
=√3-√3*√3
=√3-3
求值sin(π/2)*sin(π/3)+2cos(-π/2)-根号3*tan(π/3)
1个回答
相关问题
-
求值:2cosπ/2-tanπ/4+3/4tan²π/6-sinπ/6+cos²π/6+sin3π/
-
tan(3π-α)/sin(π-α)sin(3/2π-α)+sin(2π-α)cos(α-7/2π)/sin(3/2π+
-
sin-3π/4= cos11π/6= tan13π/4= sin7π/2= cos-3π/2= sin10π/3=
-
(1)计算:2cos[π/2]+tan[π/4]+3sin0+cos2[π/3]+sin[3π/2];
-
sin2π/3· cos3π/2· tanπ/4=
-
化简sin(a+3π/2)sin(3π/2-a)tan^2(2π-a)tan(π-a)/cos(π/2-a)cos(π/
-
..sin^2(π+α)*cos(π+α)*cos(-α-2π)/tan(π+α)*sin^3(π/2+α)*sin(-
-
已知tan(π-a)=3,求2sin(π/2-α)-3sin(π+α)/4cos(-α)+sin(2π-α)的值
-
sin^2π/3+cos^43π/2+tan^2π/3=
-
已知tan(π+α)=3 求2cos(π-α)-3sin(π+α)/4cos(-α)+sin(2π-α)的值