在△ABC中 tanC=三倍根号七

∵A+B＝π-C,∴tan(A+B)=tan(π-C)即：(tanA+tanB)/(1-tanA*tanB)=-tanC,∴tanA+tanB=-tanC(1-tanAtanB)即：tanA+tanB

∵∠A=75°sinB=√3/2∴0

ABC分别是三角形内角,2B=A+CtanB=tan（A/2+C/2）=（tanA/2+tanC/2）/（1-tanA/2*tanC/2）=√3所以tanA/2+tanC/2+√3tanA/2tanC

tanA=-tan(B+C)=-(tanB+tanC)/(1-tanBtanC)由均值不等式,3=tanB+tanC>=2根号下（tanBtanC）所以tanBtanC=-3/(1-9/4)=12/5

∵tan(A+B)=tanA+tanB/1-tanA*tanBtan(A+B)=tan(π-C)=-tanC∴tanA+tanB/1-tanA*tanB=-tanC整理移项即得tanA+tanB+ta

√3tanBtanC+tanC+tanB=√3tanC+tanB=√3(1-tanBtanC)tan(B+C)=(tanC+tanB)/(1-tanBtanC)=√3tanA=-tan(B+C)所以A

(1)tanC=3√7>0,C为锐角,sinC=3√7cosC,(sinC)^2=63(cosC)^2.(sinC)^2+(cosC)^2=64(cosC)^2=1,cosC=1/8.(2)ab=5/

1）tanC=3倍根号7所以C是锐角由sinC/cosC=3倍根号7得(sinC)^2=63(cosC)^2=1-(cosC)^2所以(cosC)^2＝1/64,cosC＝1/8(2)由a+b=9和a

tan(B+C)=(tanB+tanC)/(1-tanB*tanC)tanB+tanC+根号3tanBtanC=根号3,tanB+tanC=根号3-根号3tanBtanC=根号3*（1-tanB*ta

tanC=sinC/cosC=3√7>0,所以C

∵角A,B,C,成等差数列∴2B＝A+C又∵A＋B＋C＝180°∴B＝60A/2+B/2+C/2＝90°∴tan（A/2+C/2）＝tan60°=根号3∴（tanA/2+tanC/2）/（1-tanA

tanA+tanc=tan(A+C)(1-tanAtanC)又因为tan(A+C)=-tan(B）根据tan(180-a)=-tana所以tanA+tanB+tanC=tanB-tanB(1-tanA

S三角形ABC=1/2*AB*BC*sinB=√3/4AB=√3,即AB=4作AD⊥BC交BC延长线于D,AD=2√3,BD=1/2AB=2,即CD=1,所以tanC=AD/CD=-2√3

（1）2B=A+C得到B=60tan120=tan(A+C)=（tanA+tanC）/（1-tanA*tanC）=-根号3乘过来移项得到tanA+tanC-根号3tanA乘tanC的值是根号3（2）t

输入有误吧tan²B=tanAtanC,tan(A+C)=(tanA+tanC)/(1-tanAtanC)=(3√3-tanB)/(1-tan²B)所以-tanB=(3√3-tan

∵tan(A+B)=[tanA+tanB]/[1-tanA*tanB]tan(A+B)=tan(π-C)=-tanC∴tanA+tanB/1-tanA*tanB=-tanC整理移项即得tanA+tan

tanb=tan(180-a-c)=-tan(a+c)=-(tana+tanc)/(1-tanga*tanc)因为tana+tanb+tanc=3倍根号下3,所以tanb=-(3倍根号下3-tanb)

∵tan(A+B)=tanA+tanB/1-tanA*tanBtan(A+B)=tan(π-C)=-tanC∴tanA+tanB/1-tanA*tanB=-tanC整理移项即得tanA+tanB+ta

tanB+tanC=-√3(1-tanBtanC)tan(B+C)=(tanB+tanC)/(1-tanBtanC)=-√3tan(180-A)=-tanA=-√3tanA=√3A=60度√3(tan

A/2+B/2+C/2=90°A/2=90°-(B/2+C/2)tanA/2=tan(90°-(B/2+C/2))=cot(B/2+C/2)=1/tan(B/2+C/2)=(1-tanB/2tanC/