已知α,β是锐角,α+β≠π/2,且满足3sinβ=sin(2α+β)

1个回答

  • tan(α+β)=5tanα?

    这个好象打错了吧!

    (1)证明:∵3sinβ=sin(2α+β),∴3sin(α+β-α)=sin(α+β+α),

    ∴3[sin(α+β)cosα-cos (α+β) sinα]

    = sin(α+β)cosα+ cos (α+β) sinα

    ∴2 sin(α+β)cosα

    =4 cos (α+β) sinα

    ∴tan(α+β)=2tanα

    α与β是锐角,α+β不等于90°

    tan(α+β)=2tanα

    (tanα+tanβ)/(1-tanα*tanβ)=2tanα

    tanβ=tanα/(1+2tan^2α)

    tanβ≤√2/4

    tanα/(1+2tan^2α)≤√2/4

    2√2*[tanα-(√2/2)]^2≥0

    设tanα=√2/2,则sinα=1/√3,cos=√(2/3)

    tanβ=tanα/(1+2tan^2α)=(√2/2)/[1+2(√2/2)^2]=√2/4

    3sinβ=sin(2α+β)

    3sinβ=sin(2α)*cosβ+cos(2α)*sinβ

    3tanβ=2sinα*cosα+(1-2sin^α)*tanβ

    tanβ=sinα*cosα/(1+sin^2α)=(1/√3)*√(2/3)/[1+(1/√3)^2]=√2/4

    故tanα=√2/2,tanβ=√2/4

    不懂的欢迎追问,