设a属于(π,2π),若tan(a+π/6)=2,则cos(π/6-a)=

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设a属于(π,2π),若tan(a+π/6)=2,则cos(π/6-a)=设a属于(π,2π),若tan(a+π/6)=2,则cos(π/6-a)=设a属于(π,2π),若tan(a+π/6)=2,则

设a属于(π,2π),若tan(a+π/6)=2,则cos(π/6-a)=
设a属于(π,2π),若tan(a+π/6)=2,则cos(π/6-a)=

设a属于(π,2π),若tan(a+π/6)=2,则cos(π/6-a)=
问题是不是错了
a∈(π,2π),tan(a+π/6)=2,则cos(π/6-2a)=?
tan(a+π/6)=2

sin(2a+π/3)
=sin2(a+π/6)
=2sin(a+π/6)cos(a+π/6)
=2sin(a+π/6)cos(a+π/6)/[sin²(a+π/6)+cos²(a+π/6)]
=2tan(a+π/6)/[1+tan²(a+π/6)]
=2*2/(1+2²)
=4/5
∴ cos(π/6-2a)
= cos[π/2-(2a+π/3)]
=sin(2a+π/3)
=4/5