Sin(α+π)×Cos(π+α)×Cos(α+2π)/tan(π+α)×cos³(-α-π)

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Sin(α+π)×Cos(π+α)×Cos(α+2π)/tan(π+α)×cos³(-α-π)Sin(α+π)×Cos(π+α)×Cos(α+2π)/tan(π+α)×cos³(-

Sin(α+π)×Cos(π+α)×Cos(α+2π)/tan(π+α)×cos³(-α-π)
Sin(α+π)×Cos(π+α)×Cos(α+2π)/tan(π+α)×cos³(-α-π)

Sin(α+π)×Cos(π+α)×Cos(α+2π)/tan(π+α)×cos³(-α-π)
等于-sina×(-cosa)×cosa/tana×(-cosa)×(-cosa)×(-cosa)=-1

为什么cos(β-α)=cos(α-β),已知sin(α- β)cosα-cos ( β- α )sin α =3/5,β是第三象限角,则sin ( β+5π/4)=因为cosα是偶函数,所以cos(β-α)=cos(α-β),则原式=sin(α-β)cosα-cos(β-α)sinα=sin(α-β)co 求证coαt-tanα=(2cos^2α-1)/sinα*cosα α∈(0,π/2 ),比较 sin(cosα) 与cos(sinα)大小 sin(α-π)=2cos(α-2π)求cos平方α-sin平方αcosα 求证(1)sin四次方α+sin²αco²α+cos²α=1 (2)sin四次方α-cos四次方α=sin²α-cos²α 设α∈(0,π/2),则cosα,sin(cosα),cos(sinα)的大小关系为什么? 设角a=-35π/6,则2sin(π+α)cos(π-α)-cos(π+α)/ 1+sin^2α+sin(π-α)-cos^2(π+α)sina=sin(-35π/6)=sin(-6π+π/6)=1/2 cosα=根号3/22sin(π+α)cos(π-α)-cos(π+α)/ [1+sin^2α+sin(π-α)-cos^2(π+α)]=2(-sinα)(-cosα)+cosα/[1+sin² 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-β)sin(β-r)-cos(α-β)cos(r-β) 1.sin(α-β)sin(β-r)-cos(α-β)cos(r-β)2.( tan4分之5π+tan12分之5π)/(1-tan12分之5π)3.[ sin(α+β)-2sinαcosβ]/2sinαsinβ+cos(α+β) 化简[sin(π/2-α)cos(π/2-α)]/cos(π+α)-[sin(π-α)cos(π/2-α)]/sin(π+α) 【三角函数】已知sin(α-π)=2cos(2π-α),求[sin(π-α)+5cos(2π-α)]/[3cos(π-α)-sin(-α)] 已知α∈(π,2π) sinα+cosα=1/5 求sinα*cosα sinα-cosα 若sin(α-π)=2cos(2π-α),求(sinα+5cosα)/(sinα-3cosα)的值, 已知α=7/12π,那么cosα√(1-sinα)/(1+sinα)+sinα√(1-cosα)/(1-cosα)= 已知tan(3π+α)=2,求:1、(sinα+cosα)²;2、sinα-cosα/2sinα+cosα 已知tan(π-α)=2,求sin²α-2sinαcosα-cos²α/4cos²α-3sin²α+1 已知tan(π-α)=2,求sinα-2sinαcosα-cosα/4cosα-3sinα的值 若(sinα+cosα)/(sinα-cosα)=2 则sin(α-5π)·sin(3π/2-α)=?