如果a,β都为锐角,且tana=1 3
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∵11−tana无意义,∴1-tanα=0,解得:tanα=1,α=45°,故sin(a+15°)+cos(a-15°)=sin60°+cos30°=32+32=3.
由(sina-cosa)/(sina+2cosa)则:上下同时除以cosa得:(sina/cosa-1)/(sina/cosa+2)=(tana-1)/(tana+2)又tana=3则:(sina-c
tanA=tan[(B+A)-B]=[tan(B+A)-tanB]/[1+tan2BtanB]=tanB/[1+2(tanB)^2]=1/[1/tanB+2tanB]≤1/(2√2)=√2/4
答案是二分之根号二,sin2a=2sinacosa,cos2a=cosa平方-sina平方
cosAcosB-sinAsinB=sinAcosB-cosAsinBcosA(sinB+cosB)=sinA(sinB+cosB)因为B是锐角,所以sinB+cosB不等于0cosA=sinAtan
移项!sinA-cosA/sinA+cosA=1/33sinA-3cosA=sinA+cosA2sinA=4cosA∵tanA=sinA/cosA∴tanA=2
1.cos(A+B)=cosAcosB-sinAsinBsin(A-B)=sinAcosB-sinBcosAcosAcosB-sinAsinB=sinAcosB-sinBcosAcosA(cosB+s
tana=sina/cosa=1/2cosa=2sinasin^2a+cos^2a=1sin^2a+4sin^2a=1sin^2a=1/5sina=根号5/5cosa=2根号5/5
老师不讲或没讲到的题目就不该出这是误区,因为你们老师不是命题人!对于该题记住:sina/cosa=tana^o^
tan²A-√3tanA-tanA+√3=0(tanA-1)(tanA-√3)=0tanA=1或tanA=√3因为∠A为锐角所以∠A=45度或∠A=60度
α/2为锐角,tan(α/2)>0tan(α)=2tan(α/2)/{[1-tan(α/2)]^2}设tan(α/2)=xx^2+x-1=0x=(根号5)/2-1/2=tan(α/2)
a为锐角,且tana=2sina=2√5/5cosa=√5/5(sina-2)/(2cosa+sina)=(2√5/5-2)/(2√5/5+2√5/5)=(1-√5)/2
∵tanA-1/tanA=2∴平方,tan²A-2+1/tan²A=4∴tan²A+1/tan²A=6
等号两边拆开移项和并同类项约分得sinA=cosA所以tanA=1
1、tanAtanB=tanA+tanB+1tanAtanB-1=tanA+tanB则:tan(A+B)=[tanA+tanB]/[1-tanAtanB]=-1因为A、B为锐角,则:A+B=3π/4,
∵tanA+tanB+√3tanAtanB=根号3∴等式两边同÷根号3,得(tanA+tanB)/根号3+tanAtanB=1移项得(tanA+tanB)/根号3=1-tanAtanB,∴tanAta
tana=根号2/2cosa=1/3原式=[(sina)^2+(cosa)^2-2sinacosa]/cosa=(sina-cosa)^2/cosa=(cosa)*(tana-1)^2=1/3*(根号
sinA=12/13tanA=12/5
tanA=(根号2)/2∵∠A为锐角∴cosA>0∴√(1—sinAcosA)/cosA=√(1/cos^2A-tanA)=√(1/cos^2A-tanA)=√(1+tan^2A-tanA)=√(1+
是(sina+cosa)/(sina-cosa)还是sina+cosa/sina-cosa无括号?是(sina+cosa)/(sina-cosa)的话=[(sina+cosa)/cosa]/[(sin