f(x)=2cos(x/4+π/6)
f(4α+4π/3)=-30/17,那么
f(4α+4π/3)=2cos[(4α+4π/3)/4+π/6]
=2cos(α+π/2)=-2sinα=-30/17
∴sinα=15/17
∵α∈[0,π/2],
∴cosα=√(1-sin²α)=8/17
f(4β-2π/3)=8/5
那么
2cos[(4β-2π/3)/4+π/6]=2cosβ=8/5
∴cosβ=4/5
∵β∈[0,π/2]
∴sinβ=√(1-cos²β)=3/5
∴cos(α+β)
=cosαcosβ-sinαsinβ
=8/17*4/5-15/17*3/5
=-13/85