设f(x)=【2sin^3θ+sin^2(2π-θ)+sin(π/2+θ)-3】/【2+2sin^2(π/2+θ)-si
来源:学生作业帮 编辑:神马作文网作业帮 分类:数学作业 时间:2024/11/12 21:19:17
设f(x)=【2sin^3θ+sin^2(2π-θ)+sin(π/2+θ)-3】/【2+2sin^2(π/2+θ)-sin(3π/2-θ)】,求f(π/3)的值
快啊,坐等,急!要步骤的.
快啊,坐等,急!要步骤的.
sin(π/2+θ)=sinπ/2cosθ+cosπ/2sinθ=cosθ
sin(3π/2-θ)=cos(π-θ)=-cosθ
sinπ/3=√3/2 sin²π/3=3/4 sin³π/3=3√3/8
cosπ/3=1/2 cos²π/3=1/4
f(θ)
=[2sin³θ+sin²(2π-θ)+sin(π/2+θ)-3]/[2+2sin²(π/2+θ)-sin(3π/2-θ)]
=[2sin³θ+sin²θ+cosθ-3]/[2+2cos²θ+cosθ]
f(π/3)
=[2*(3√3/8)+3/4+1/2-3]/[2+2*(1/4)+1/2]
=(3√3/4-7/4)/3
=√3/4-7/12
sin(3π/2-θ)=cos(π-θ)=-cosθ
sinπ/3=√3/2 sin²π/3=3/4 sin³π/3=3√3/8
cosπ/3=1/2 cos²π/3=1/4
f(θ)
=[2sin³θ+sin²(2π-θ)+sin(π/2+θ)-3]/[2+2sin²(π/2+θ)-sin(3π/2-θ)]
=[2sin³θ+sin²θ+cosθ-3]/[2+2cos²θ+cosθ]
f(π/3)
=[2*(3√3/8)+3/4+1/2-3]/[2+2*(1/4)+1/2]
=(3√3/4-7/4)/3
=√3/4-7/12
设函数f(x)=sin(3x)+|sin(3x)|,函数的最小正周期为什么是2π?
设f(x)=2cosx.sin(x+π/3)-根号3 sin平方x+sinx.cosx
设函数f(x)=sin(2x+φ)(-π
设函数 f(x)=sin(2x+y),(-π
设函数f x=SIN(2X+φ)(-π
设函数f(x)=sin(2x+ φ)(-π
高中数学:已知函数f(x)=2sin(x+π/2).sin(x+7π/3)-
已知函数f(x)=2√3sin²x-sin(2x-π/3)
f(x)=2cos*sin(x+π/3)-^3sin^2x+sinx*cosx
已知函数f(x)=2根号3sin平方x-sin(2x-π/3)
设函数f(x)=sin(wx+t)(-π/2
(sinθ+cosθ)/(sinθ-cosθ)=2,则sin(θ-5π)*sin(3π/2-θ)=