sina cosa=1 3,cos4a
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tan(π/4+a)=[tanπ/4+tana)/[1-tanπ/4*tana]=2(1+tana)/(1-tana)=2tana=1/31/(2sinacosa+cos²a)=(sin
设sina+cosa=x(x2-1)/2=sinacosaf(x)=(x2-1)/2cospai/6=二分之根号三f(cospai/6)=(3/4-1)/2=-1/8
(sinA-cosA)²=sinA²+cosA²-2sinAcosA=1--2sinAcosA=(-1\5)²∴sinAcosA=12/25(sin*A+cos
tana=3,得sina/cosa=3sina=3cosa因sin²a+cos²a=1所以有10cos²a=1cos²a=1/101+sinacosa-cos&
sinA/cosA=tanA=2sinA=2cosA代入sin²A+cos²A=1sin²A=4/5cos²A=1/5sinAcosA=2cosA*cosA=2
tan(a-4/π)=(tana-tanπ/4)/(1+tanatanπ/4)=(tana-1)/(1+tana)=2,所以tana=-3而1/(2sinacosa+cos^2a)=(sin^2a+c
tanA-cotA=sinA/cosA-cosA/sinA=[(sinA)^2-(cosA)^2]/(sinAcosA)=-[(cosA)^2-(sinA)^2]/(sinAcosA)=-[2(cos
(1+2sinacosa)/(sin平方a-cos平方a)=(sina+cosa)平方/【(sina-cosa)(sina+cosa)】=(sina+cosa)/(sina-cosa)=(tana+1
tana=sina/cosa=1/2,所以cosa=2sina,所以根据sin^2a+cos^2a=1,求出sin,cos
2.2,画个三角就出来了
sinAcosA/(sin^2A+cos^2A)=tanA/(1+tan^2A)sin^2A+cos^2A=1,所以化简为sinAcosA=tanA/(1+tan^2A)再变形,sinAcosA=ta
(2/3sin^2a-sinacosa+cos^2a)/cos^2a*cos^2a=(2/3tan^2a-tana+1)*cos^2a=5cos^2a/3tana=2sina/cosa=2sin^2a
sin^2a-2sinacosa+3cos^2a=(sin^2a-2sinacosa+3cos^2a)/(sin^2a+cos^2a)=[(tana)^2-2tana+3]/[(tana)^2+1]=
sinacosa=1/2*sin2a=1/2*2tana/(1+tan²a)=tana/(1+tan²a)=2/(1+2²)=2/52sin²a-3sinaco
tan(π/4+a)=[tan(π/4)+tana]/[1-tan(π/4)tana]=(1+tana)/(1-tana)=2tana=1/3sinacosa+cos²a=(sinacosa
tana=根号2;sin²a=4/5,cos²a=1/52sin²a-sinacosa+cos²a-1=sin²a-sinacosa=sin²
tana=sina/cosa=2sina=2*cosa(sina)^2=4(cosa)^2因为(sina)^2+(cosa)^2=1所以(cosa)^2=1/52(sina)^2-sinacosa+(
sin^2axtana+cos^2axcota+2sinacosa=sin³a/cosa+cos³a/sina+2sinacosa=(sin^4a+cos^4a+2sin²
sin^2a-3sinacosa+cos^2a=(sin^2a-3sinacosa+cos^2a)/(sin^2a+cos^2a)=(tan^2a-3tana+1)/(tan^2a+1)=(3^2-3
稍等上图、再答:再答:哪里没看懂请追问再问:第二个没看懂怎么就变成分数了再答: