化简cos(90°-α)/sin(270°-α)*sin(360°-α)*sin(180°-α)

来源:学生作业帮助网 编辑:作业帮 时间:2024/11/30 01:13:55
化简cos(90°-α)/sin(270°-α)*sin(360°-α)*sin(180°-α)
x){3{:, m=N<9\D "bl.bhI*ҧv64p# ۨ 4FM- ]5K/.H̳zi

化简cos(90°-α)/sin(270°-α)*sin(360°-α)*sin(180°-α)
化简cos(90°-α)/sin(270°-α)*sin(360°-α)*sin(180°-α)

化简cos(90°-α)/sin(270°-α)*sin(360°-α)*sin(180°-α)
cos(90°-α)/sin(270°-α)*sin(360°-α)*sin(180°-α)
=sinα/(-cosα)*(-sinα)*sinα=1/sinacosa

sin(∧3)α/cosα

cos(90°-α)=cos90°cosα+sin90°sinα=sinα
sin(270°-α)=sin270°cosα-cos270°sinα=-cosα
sin(360°-α)=sin360°cosα-cos360°sinα=-sinα
sin(180°-α)=sin180°cosα-cos180°sinα=sinα
结果自己算吧。

化简cos(90°-α)/sin(270°-α)*sin(360°-α)*sin(180°-α) 化简sin^4x-sin^2+cos^2化简(1)sin^4x-sin^2+cos^2(2)根号(1+cosα/1-cosα)+根号(1-cosα/1+cosα)(180°<α<270°) α、β、γ属于(0,90°),sinα+sinγ=sinβ,cosβ+cosγ=cosα,求β-α的值 化简:1+sin(α—360°)cos(α—270°)—2(cosα)^2 (sinα+cosα)^2化简 请问sinαcos(90°-α)+cosαsin(90°-α)化简之后为什么等于sinα·sinα+cosα·cos?后天考试啦. 化简(1-sinα+cosα/1-sinα-cosα )+(1-sinα-cosα/1-sinα+cosα) 化简:cos(90°-a)/sin(270°+a)·sin(180°-a)·cos(360°-a)= 化简(sinα/2+cosα/2)²+2sin²(90°-α/2) 帮帮忙吧 sin(α+β)-2sinαcosβ/2sinαsinβ+cos(α+β)化简 化简sin(α+β)-2sinαcosβ 除以 2sinαsinβ+cos(α+β) 若sin(180°+α)=根号10/10,则【sin(-α)+sin(-90º-α)】/【cos (540º-α)+若sin(180°+α)=根号10/10,则【sin(-α)+sin(-90º-α)】/【cos (540º-α)+cos(-270º-α)】=? 求值:(tan10°-√3)×cos10°/sin50° 求证:[sin(2α+β)]/sinα- 2cos(α+β)=sinβ/cosα 化简cosθ+cos(θ+2π/3)+cos(θ+4π/3) 证明:sin(α+β)sin(α-β)=sin^2α-sin^2β 化简sin(60°+α)+cos120°sinα/cosα ①sin(α+180°)cos(-α)sin(-α-180°)和②sin³(-α)cos(2π+α)tan(-α-π)化简 为什么sin(90°+α)=cosα ,cos(90°+α)=-sinα 化简(sinα+cosα)²+(sinα-cosα)² 化简:(sinα+cosα)平方-(sinα-cosα)平方