求证[tanθ·(1-sinθ)]/1+cosθ=[cotθ·(1-cosθ)]/1+sinθ
来源:学生作业帮助网 编辑:六六作业网 时间:2024/11/17 06:56:09
求证[tanθ·(1-sinθ)]/1+cosθ=[cotθ·(1-cosθ)]/1+sinθ求证[tanθ·(1-sinθ)]/1+cosθ=[cotθ·(1-cosθ)]/1+sinθ求证[tan
求证[tanθ·(1-sinθ)]/1+cosθ=[cotθ·(1-cosθ)]/1+sinθ
求证[tanθ·(1-sinθ)]/1+cosθ=[cotθ·(1-cosθ)]/1+sinθ
求证[tanθ·(1-sinθ)]/1+cosθ=[cotθ·(1-cosθ)]/1+sinθ
证明:因为:[tanθ·(1-sinθ)]/(1+cosθ) - [cotθ·(1-cosθ)]/(1+sinθ)
={[tanθ·(1-sinθ)]·(1+sinθ) - [cotθ·(1-cosθ)]·(1+cosθ)}/[(1+cosθ)(1+sinθ)]
={[tanθ·(1-sin²θ)] - [cotθ·(1-cos²θ)]}/[(1+cosθ)(1+sinθ)]
=(tanθ·cos²θ - cotθ·sin²θ)/[(1+cosθ)(1+sinθ)]
=(sinθ·cosθ - cosθ·sinθ)/[(1+cosθ)(1+sinθ)]
=0
所以:[tanθ·(1-sinθ)]/(1+cosθ) = [cotθ·(1-cosθ)]/(1+sinθ)
求证 tanθ(1+sinθ )+sinθ /tanθ (1+sinθ )-sinθ =tanθ+sinθ/tanθsinθ
求证sinθ(1+tanθ)+cosθ(1+1/tanθ)=1/sinθ+1/cosθ
求证[tanθ·(1-sinθ)]/1+cosθ=[cotθ·(1-cosθ)]/1+sinθ
求证2(cosθ -sinθ )/1+sinθ +cosθ =tan(π/4-θ /2)-tanθ /2
求证:2(cos θ -sin θ )/(1+sinθ +cosθ)=tan(∏/4- θ /2)-tan(θ /2)
求证:tan²θ-sin²θ=tan²θ·sin²θ
已知(sin^2α/sin^2β)+cos^2αcos^2θ=1,求证tan^2α=sin^2θtan^2β
已知sin²α/sin²β+cos²αcosθ=1,求证tan²α=sin²θtan²β
已知tan^2θ=2tan^2a+1,求证:cos2θ+sin^2a=0
tan²α=2tan²θ+1求证cos2α+sin²θ=0
已知tan^2θ=2tan^2a+1,求证:cos2θ+sin^2a=0
求证1/sin2θ + 1/tan2θ +1/sinθ =1/tanθ/2
求证(sinθ+cosθ-1)(sinθ-cosθ+1)/sin2θ=tanθ/2
求证 (sinθ+cosθ-1)(sinθ-cosθ+1)) /sin2θ=tanθ/2
求证:sin³θ(1+cotθ)+cos³θ(1+tanθ)=sinθ+cosθ
求证:[2sin(θ-3π/2)cos(θ+π/2)-1]/1-2sin^2 θ=[tan(9π+θ)+1]/tanθ-1
tan^2θ =2tan^2Ф+1 求证 cos2θ +sin^2Ф=0如题.sin^2a/(1-sin^2a)=2sin^2⊙/(1-sin^2⊙)+1sin^2a/(1-sin^2a+sin^2a)=(sin^2⊙+1)/(1-sin^2⊙+sin^2⊙+1)这是怎么来的。
求证tan^2θ-sin^2θ=tan^2θsin^2θ