作业帮1+cos2θ+2sin²θ=2 1-cos2θ/1+cos2θ=tan²θ
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1+cos2θ+2sin²θ=2 1-cos2θ/1+cos2θ=tan²θ
1+cos2θ+2sin²θ=2 1-cos2θ/1+cos2θ=tan²θ
1+cos2θ+2sin²θ=2 1-cos2θ/1+cos2θ=tan²θ
1+cos2θ+2sin²θ=1+cos2θ+1-(1-2sin²θ)=2+cos2θ-cos2θ=2
(1-cos2θ)/(1+cos2θ)=(1-(1-2sin²θ))/(1+(2cos²θ-1))=2sin²θ/(2cos²θ)=tan²θ
①
1+cos2θ+2sin²θ=1+cos2θ+1-(1-2sin²θ)=2+cos2θ-cos2θ=2
②1-cos2θ/1+cos2θ=tan²θ
tan²θ(1+cos2θ)=1-cos2θ.
:∵等式左边=tan²θ(1+cos2θ)
= ﹙sin²θ/cos²θ﹚(1+2co...
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①
1+cos2θ+2sin²θ=1+cos2θ+1-(1-2sin²θ)=2+cos2θ-cos2θ=2
②1-cos2θ/1+cos2θ=tan²θ
tan²θ(1+cos2θ)=1-cos2θ.
:∵等式左边=tan²θ(1+cos2θ)
= ﹙sin²θ/cos²θ﹚(1+2cos²θ-1)
= ﹙sin²θ/cos²θ﹚•2cos²θ
=2sin²θ,
等式右边=1-cos2θ=1-(1-2sin²θ)=2sin²θ,
∴左边=右边,
故原式成立.
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