作业帮设α为锐角,若cos(α+π/6)=4/5,则sin(2α+π/12)=?
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设α为锐角,若cos(α+π/6)=4/5,则sin(2α+π/12)=?
设α为锐角,若cos(α+π/6)=4/5,则sin(2α+π/12)=?
设α为锐角,若cos(α+π/6)=4/5,则sin(2α+π/12)=?
α∈(0,π/2)
α+π/6∈(π/6,2π/3)
cos(α+π/6)=4/5>0
∴α+π/6∈(π/6,π/2)
∴2α+π/3∈(π/3,π)
cos(2α+π/3)
=2cos²(α+π/6)-1
=2*(4/5)²-1
=32/25-1
=7/25>0
∴2α+π/3∈(π/3,π/2)
sin(2α+π/3)=24/25
sin(2α+π/12)
=sin(2α+π/3-π/4)
=sin(2α+π/3)cosπ/4-cos(2α+π/3)sinπ/4
=24/25*√2/2-7/25*√2/2
=24√2/50-7√2/50
=17√2/50
首先你先判断取值范围,α+π/6小于45°,那么2α+π/6也是锐角
sin(α+π/6)=1-(cos(α+π/6))^(1/2)=3/5
cos(2α+π/3)=2cos(α+π/6)^2-1=7/25
sin(2α+π/3)=2sin(α+π/6)cos(α+π/6)=2*3/5*4*5=24/25
∴sin(2α+π/12)
=sin[(2α+π/3...
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首先你先判断取值范围,α+π/6小于45°,那么2α+π/6也是锐角
sin(α+π/6)=1-(cos(α+π/6))^(1/2)=3/5
cos(2α+π/3)=2cos(α+π/6)^2-1=7/25
sin(2α+π/3)=2sin(α+π/6)cos(α+π/6)=2*3/5*4*5=24/25
∴sin(2α+π/12)
=sin[(2α+π/3)-π/4]
=sin(2α+π/3)cosπ/4-cos(2α+π/3)sinπ/4
=24/25*(1/2)^(0.5)-7/25*(1/2)^0.5
=50分之17倍根号2
收起
sinα咋求啊?
α∈(0,π/2)
α+π/6∈(π/6,2π/3)
cos(α+π/6)=4/5>0
∴α+π/6∈(π/6,π/2)
∴2α+π/3∈(π/3,π)
cos(2α+π/3)
=2cos²(α+π/6)-1
=2*(4/5)²-1
=32/25-1
=7/25>0
∴2α+π/3∈(π/3,π/2...
全部展开
α∈(0,π/2)
α+π/6∈(π/6,2π/3)
cos(α+π/6)=4/5>0
∴α+π/6∈(π/6,π/2)
∴2α+π/3∈(π/3,π)
cos(2α+π/3)
=2cos²(α+π/6)-1
=2*(4/5)²-1
=32/25-1
=7/25>0
∴2α+π/3∈(π/3,π/2)
sin(2α+π/3)=24/25
sin(2α+π/12)
=sin(2α+π/3-π/4)
=sin(2α+π/3)cosπ/4-cos(2α+π/3)sinπ/4
=24/25*√2/2-7/25*√2/2
=24√2/50-7√2/50
=17√2/50
收起