神马作文网(cosα)^2=1/(1+(tanα)^2)
来源:学生作业帮 编辑:神马作文网作业帮 分类:数学作业 时间:2024/11/12 06:59:42
(cosα)^2=1/(1+(tanα)^2)
有没有这个公式,怎么来的?
有没有这个公式,怎么来的?
α是第三象限角
cosα0
1+(tanα)^2
=1+(sinα)^2/(cosα)^2
=[(cosα)^2+(sinα)^2]/(cosα)^2
=1/(cosα)^2
1/(cosα)^2-1
=[1-(cosα)^2]/(cosα)^2
=(sinα)^2/(cosα)^2
=(tanα)^2
∴原式
1/(cosα×√(1+(tanα)^2))+2tanα/√(1/(cosα)^2-1)
=1/[cosα×(-1/cosα)]+2tanα/tanα
=-1+2
=1
cosα0
1+(tanα)^2
=1+(sinα)^2/(cosα)^2
=[(cosα)^2+(sinα)^2]/(cosα)^2
=1/(cosα)^2
1/(cosα)^2-1
=[1-(cosα)^2]/(cosα)^2
=(sinα)^2/(cosα)^2
=(tanα)^2
∴原式
1/(cosα×√(1+(tanα)^2))+2tanα/√(1/(cosα)^2-1)
=1/[cosα×(-1/cosα)]+2tanα/tanα
=-1+2
=1
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求证:tan(α/2)=(sin α)/(1+cos α)
(cosα)^2=1/(1+(tanα)^2)
证明tanα/2=1-cosɑ/sinɑ
证明:1-2sinα cosα/cos^2α -sin^2α=1-tanα/1+tanα
求证1+2sinαcosα/sin^2α-cos^2α=tanα+1/tanα-1
证明1-2sinαcosα/cos^-sin^α=1-tanα-1+tanα
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求证:(1+sinα)/cosα=(1+tanα/2)/(1-tanα/2)
证明恒等式:(1+sinα)/cosα=(1+tan(α/2))/(1-tan(α/2))
已知tanα-cosα=1,则tan^2α+cot^2α=