若tan^2θ-tanθ-2=0,(θ∈(0,π))求sin^2θ+3sinθcosθ-2cos^2θ的值

来源:学生作业帮助网 编辑:作业帮 时间:2024/05/11 21:32:42
若tan^2θ-tanθ-2=0,(θ∈(0,π))求sin^2θ+3sinθcosθ-2cos^2θ的值

若tan^2θ-tanθ-2=0,(θ∈(0,π))求sin^2θ+3sinθcosθ-2cos^2θ的值
若tan^2θ-tanθ-2=0,(θ∈(0,π))求sin^2θ+3sinθcosθ-2cos^2θ的值

若tan^2θ-tanθ-2=0,(θ∈(0,π))求sin^2θ+3sinθcosθ-2cos^2θ的值
用A代替那个角
解之得:tanA=2或tanA=-1
sin^2A+3sinAcosA-2cos^2A=cos^2A(tan^2A-2+3tanA)=4tanAcos^2A
当tanA=2时,cos^2A=1/5
此时原式=8/5
当tanA=-1时,cos^2A=1/2
此时原式=-2

θ∈(0,π)
tan²θ - tanθ - 2 = 0
tanθ = -1 或 tanθ = 2
sinθ = √2/2 , cosθ = -√2/2 或 sinθ = 2√5/5 , cosθ = √5/5
(1) sinθ = √2/2 , cosθ = -√2/2
sin²θ + 3sinθcosθ - 2cos²θ =...

全部展开

θ∈(0,π)
tan²θ - tanθ - 2 = 0
tanθ = -1 或 tanθ = 2
sinθ = √2/2 , cosθ = -√2/2 或 sinθ = 2√5/5 , cosθ = √5/5
(1) sinθ = √2/2 , cosθ = -√2/2
sin²θ + 3sinθcosθ - 2cos²θ = -2
(2) sinθ = 2√5/5 , cosθ = √5/5
sin²θ + 3sinθcosθ - 2cos²θ = 8/5

收起

将sin^2x+cos^x=1代入,则原式变化为3(sin^x+sinxcosx)-2,然后变成3(sin^2x+sinxcosx)/(sin^2x+cos^2x)-2,然后约去cos^2x,变成3(tan^2x+tanx)/(1+tan^2x)-2,变成只剩tanx的式子就好办了,(因为θ不好打,我改成x了)

求证(1)1+tanθ/1-tanθ=tan(π/4+θ) (2)1-tanθ/1+tanθ=tan(π/4-θ) 证明:tanθ-(1/tanθ)=-2/tan2θ 证明:tanθ/2-1/(tanθ/2)=-2/tanθ tan(θ/2)-1/tan(θ/2)=-2/tanθ, tanθ/(tan^2θ+1)=60/169 求tan 1,若θ=15度,则tan(θ/2)+tan(θ/2)*tan(5θ/2)+tan(5θ/2)=? 若√3/3是二次方程x^2-(tanθ+1/tanθ)x+1=0的一个根,tanθ 已知cos[α+θ)=1求证:tan(2α+θ)+tanθ=0 已知cos[α+θ)=1求证:tan(2α+θ)+tanθ=0 (1-tan^4θ)cos^2θ+tan^2θ 三角比 1/tanθ-cos^2θ/tanθ tanΘ/2-1/(tanΘ/2)化简 (tanθ)2(1+(tanθ)2)的不定积分(tanθ)2为tanθ的平方 求证:(1)1+tanθ/1-tanθ=tan(π/4+θ)(2)1-tanθ/1+tanθ=tan(π/4-θ) 已知(1-tanθ)/2+tanθ=1,求证tan2θ=-4tan(θ+π/4) 已知(1-tanθ)/(2+tanθ)=1,求证tan2θ=-4tan(θ+π/4) 证明..!tanθ/2-1/(tanθ/2)=-2/tanθ如题..详解..谢谢谢谢谢谢..~~! 化简:1+TANθ/TANθ-1=3+2√2,TANθ的值