acosC √3asin(-b-a)=0

根号3－c）cosA＝acosC这个条件应该是（根号3b－c）cosA＝acosC否则无解利用正弦定理sqr(3)*2RsinBcosA-2RsinCcosA=2RsinAcosC两边除掉2R并移向s

(√3b-c)cosA=acosC(√3sinB-sinC)cosA=sinAcosC√3sinBcosA=sinAcosC+sinCcosA√3sinBcosA=sin(A+C)√3sinBcosA

=2acosC,sinB=2sinAcosCsin（180-A-C)=2sinAcosCsin(A+C)=2sinAcosCsinAcosC+cosAsinC=2sinAcosCcosAsinC=si

(1)△ABC中a/sinA=b/sinB=c/sinC=2R（2b-√3*c)cosA=√3*acosC即(2sinB-√3sinC)cosA=√3sinAcosC2sinBcosA=√3(sinA

一问：sinAcosC＋√3sinAsinC－sinB－sinC=0sinAcosC＋√3sinAsinC－sin(A＋C)－sinC=0sinAcosC＋√3sinAsinC－sinAcosC－co

(√3b-c)cosA=acosC(√3sinB-sinC)cosA=sinAcosC√3sinBcosA=sinAcosC+sinCcosA√3sinBcosA=sin(A+C)√3sinBcosA

(√3b-c)cosA=acosC(√3sinB-sinC)cosA=sinAcosC√3sinBcosA=sinAcosC+sinCcosA√3sinBcosA=sin(A+C)√3sinBcosA

(√3×b-c)cosA=acosC根据正弦定理（√3sinB-sinC)cosA=sinAcosC∴√3sinBcosA=sinAcosC+cosAsinC=sin(A+C)=sinB∵sinB>0

acosC＋√3asinC-b-c＝0根据正弦定理a＝2RsinA,b＝2RsinB,c＝2RsinC∴sinAcosC＋√3sinAsinC－sinB－sinC＝0（＊）∵sinB＝sin［180&

已知等式（3b-c）cosA=acosC，利用正弦定理化简得：（3sinB-sinC）cosA=sinAcosC，整理得：3sinBcosA=sinAcosC+cosAsinC=sin（A+C）=si

acosC＋√3asinC-b-c＝0根据正弦定理a＝2RsinA,b＝2RsinB,c＝2RsinC∴sinAcosC＋√3sinAsinC－sinB－sinC＝0（＊）∵sinB＝sin［180&

1.sinAcosC+根号3/2sinC=sinB又∵sinB=sinAcosC+cosAsinC∴cosA=根号3/2∴A=π/62.a=1,根号3c=1+2b代入原式得cosC+(1+2b)/2=

已知等式利用正弦定理化简得：sinAcosC+3sinAsinC-sinB-sinC=0，∴sinAcosC+3sinAsinC-sin（A+C）-sinC=0，即sinAcosC+3sinAsinC

（1）acosC+√3asinB-b-c=0利用正弦定理a/sinA=b/sinB=c/sinCsinAcosC+√3sinAsinC-sinB-sinC=0∵sinB=sin(A+C),sinAco

acosC+√3asinB-b-c=0利用正弦定理a/sinA=b/sinB=c/sinCsinAcosC+√3sinAsinC-sinB-sinC=0∵sinB=sin(A+C),sinAcosC+

①过B作BE垂直AC交AC于E,(2b-根号3c)cosA=根号3acosC,所以2b•cosA-根号3c•cosA=根号3acosC推出2b•cosA=根号3&#

一问：sinAcosC＋√3sinAsinC－sinB－sinC=0sinAcosC＋√3sinAsinC－sin(A＋C)－sinC=0sinAcosC＋√3sinAsinC－sinAcosC－co

题目条件有错误,应该是acosC+√3asinC-b-c=0,算死我了.答：（1）三角形ABC中,acosC+√3asinC-b-c=0acosC+√3asinC=b+c结合正弦定理a/sinA=b/

望及时采纳,谢谢!再问：这步我不懂是怎么化简来的喔，可以给我详细步骤吗，谢谢..再答：亲，已经很详细了，自己再仔细想想吧！相信你能行！