已知cosθ=-根号2/3,θ∈(π/2,π),求2/sin2θ-cosθ/sinθ
来源:学生作业帮助网 编辑:六六作业网 时间:2024/11/17 03:28:45
已知cosθ=-根号2/3,θ∈(π/2,π),求2/sin2θ-cosθ/sinθ已知cosθ=-根号2/3,θ∈(π/2,π),求2/sin2θ-cosθ/sinθ已知cosθ=-根号2/3,θ∈
已知cosθ=-根号2/3,θ∈(π/2,π),求2/sin2θ-cosθ/sinθ
已知cosθ=-根号2/3,θ∈(π/2,π),求2/sin2θ-cosθ/sinθ
已知cosθ=-根号2/3,θ∈(π/2,π),求2/sin2θ-cosθ/sinθ
cosθ=-根号2/3,θ∈(π/2,π),
所以
sinθ=根号【1-cos²θ】=根号5/3
所以
2/sin2θ-cosθ/sinθ
=1/sinθcosθ-cosθ/sinθ
=[1-cos²θ]/sinθcosθ
=sinθ/cosθ
=-根号5/根号2
=-根号10/2