问题
解答题
(1)若
(2)已知sin(3π+θ)=
|
答案
(1)若
=3,则有 sinα+cosα sinα-cosα
=3,解得 tanα=2.tanα+1 tanα-1
又tan(α-β)=2,∴tan(β-α)=-2,
∴tan(β-2α)=tan[(β-α)-α]=
=tan(β-α)-tanα 1+tan(β-α)tanα
=-2-2 1+(-2)×2
.4 3
(2)∵已知sin(3π+θ)=
=-sinθ,∴sinθ=-1 3
.1 3
∴
+cos(π+θ) cosθ[cos(π-θ)-1]
=cos(θ-2π) sin(θ-
)cos(θ-π)-sin(3π 2
+θ)3π 2
+-cosθ cosθ•(-cosθ-1) cosθ -sin(
-θ)cos(π-θ)+cosθ3π 2
=
+1 1+cosθ
=cosθ -cos2θ+cosθ
+1 1+cosθ
=1 1-cosθ
=2 1-cos2θ
=18.2 sin2θ