作业帮((1+cos2α)/(3sin2α))*((2sin^2(α))/cos2α)的化简
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((1+cos2α)/(3sin2α))*((2sin^2(α))/cos2α)的化简
((1+cos2α)/(3sin2α))*((2sin^2(α))/cos2α)的化简
((1+cos2α)/(3sin2α))*((2sin^2(α))/cos2α)的化简
((1+cos2α)/(3sin2α))*((2sin^2(α))/cos2α)
=(1+2cos²a-1)/(3sin2a)×2sin²a/cos2a
=4sin²acos²a/3sin2acos2a
=sin²2a/3sin2acos2a
=tan2a/3
sin2α+sin2α÷3sin2α+cos2α
sin2α+sin2β-sin2αsin2β+cos2αcos2β=1 证明
中分析法例3中 (1-sin2α/cos2α)/(1+sin2α/cos2α)=(1-sin2β/cos2β)/[2(1+sin2β/cos2到cos2α-sin2α=1/2(cos2β-sin2β)的演算过程,麻烦帮忙提供三角函数中的数字“2”都为平方,提问中不完整,最后一个为cos2β
证明:cos2α+sin2α=1
求证:Sin2α+sin2β-Sin2α×sin2β+cos2α× cos2β=1
((1+cos2α)/(3sin2α))*((2sin^2(α))/cos2α)的化简
((1+cos2α)/(3sin2α))*((2sin^2(α))/cos2α)的化简 急
((1+cos2α)/(3sin2α))*((2sin^2(α))/cos2α)的化简
化简:(sin2α+cos2α-1)(sin2α-cos2α+1)/sin4α
(sin2α-cos2α+1)/(1+tanα)=2sin2αcos2α 为什么
sin2α+cos2α等于
化简sin2α+cos2α
sin2αcos2α=
sin2α+cos2β=?
已知tanα=-2,则sin2α-3cos2α/cos2α-sin2α=___________ 1/4sin2α+2/5cos2α= ______具体过程
已知tanα=-2,则sin2α-3cos2α/cos2α-sin2α=___________ 1/4sin2α+2/5cos2α= ______具体过程
求证:2(SIN2α+1)/(1+SIN2α+COS2α)=TANα+1分子是:2(SIN2α+1)分母是:1+SIN2α+COS2α
(sinα+sin2α)/(1+cosα+cos2α)