∵0=2sin(ω×(11π/12)+12+φ)为什么等于(11/12)ωπ+6/π=2π

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∵0=2sin(ω×(11π/12)+12+φ)为什么等于(11/12)ωπ+6/π=2π
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∵0=2sin(ω×(11π/12)+12+φ)为什么等于(11/12)ωπ+6/π=2π
∵0=2sin(ω×(11π/12)+12+φ)为什么等于(11/12)ωπ+6/π=2π

∵0=2sin(ω×(11π/12)+12+φ)为什么等于(11/12)ωπ+6/π=2π
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sin0=0 sin(1/6π)=1/2sin(1/3π)=√3/2sin(1/2π)=1sin(2/3π)=√3/2sin(5/6π)=1/2sin(π)=0sin(-π)=0sin(-5/6π)=-1/2sin(-2/3π)=-√3/2sin(-1/2π)=-1sin(-1/3π)=-√3/2sin(-1/6π)=-1/2sin(7/6π)=-1/2sin(4/3π)=-√3/2sin(5/3π)=-√3/2sin(11/6π)=-1/ ①利用公式sin(π-θ)=sinθ和sin(∏+θ)=-sinθ证明:sin(-θ)=-sinθ②证明tanθsinθ∕tanθ-sinθ=1+cosθ∕sinθ③已知sinα-2cosα+1=0,α≠kπ+π∕2,k∈z求:tan(3π-α)和1∕sin2α-sinαcosα+1的值‍ sin²0+sin²1+sin²2+……+sin²180= 已知6sin²α+sinαcosα-2cos²α=0,α∈(π/2,π),求值1).(sinα-3cosα)/(sinα-cosα);2).sinαcosα-sin²α;3).sin²α-3cosαsinα-2 sin(α+π/3)+sinα=负5分之4根号3 α∈(-π/2,0)求cosα怎样从9/4*sin²α=9/4(1-cos²α)=3/4*cos²a+12/5*cosx+48/25化为cos²α+4/5*cosα-11/100=0呀sin(α+π/3)+sinα=-4√3/5sinαcosπ/3+cosαsinπ/3+sinα=-4√3/53/2*si 已知sin(x+π/6)=1/4,求sin(5π/6-x)+sin^2(11π/6-x)如题, 傅里叶级数作图f(x)=2sin[x] - sin[2x] + 2/3sin[3x] - 1/2sin[4x]我用mathematica输入程序Plot[{2sin[x],-2sin[x],2sin[x] - sin[2x],-2sin[x] + sin[2x],2sin[x] - sin[2x] + 2/3sin[3x],-2sin[x] + sin[2x] - 2/3sin[3x],2sin[x] - sin[2x] + 2/3si 2sin²α-5sinα+2=0 怎么变成(2sin-1)(sinαα-2)=0?后面应该是(2sin-1)(sinα-2)=0多打了一个 1.已知tanα=2,α∈(π,3π/2) 求(1)sin(π+α)+2sin(3π/2+α) /cos(3π-α)+1(2)sin(-π/4-α)2.函数f(x)=sin(ωx+ψ)(ω>0)│ω│<π/2)在他的某一个周期内的单调减区间是[5π/12,11π/12].(1).求f(x)的解析式 若2sin(π/4+a)=sinθ+cosθ,2sin^2β=sin2θ,求证sin2a+(1/2)cos2β=0 sin^2 (π/12) -(1/2)= 已知α∈(0,π|2),2tanα+3sinβ=7,且tanα-6sinβ=1,求sinα的值 sin^ 2 π/12-1/3=? 已知-π/2<x<0,sin x+cos x=1/5求sin 2x+2 sin 在△ABC中,求证;sin^(A/2)+sin^(B/2)+sin^(C/2)=1-2sin(A/2)sin(B/2)sin(C/2) 设α,β,γ∈(0,π/2)且(sinα)^2+(sinβ)^2+(sinγ)^2=1求函数y=(sinα)^3/sinβ+(sinβ)^3/sinγ+(sinγ)^3/sinα 的最小值. 1-2sin²π/8=sinπ/4 2sin(α+π/3)=sinα+______