三角形ABC中,内角ABC所对边abc,若abc成正比

sinBcosC=2sinAcosB-cosBsinCsin(B+C)=2sinAcosBsinA=2sinAcosBcosB=1/2B=60°49=a²+c²-2accos60°

解析,正玄定理,b/c=sinB/sinC,又,C=2B,b/c=5/8,也就是,sinB/sin(2B)=5/8sinB/(2cosB*sinB)=5/8,因此,cosB=4/5,cosC=cos(

sinB=3/5,cosC=cos[180°-（A+B）]=-cos(A+B)=-(cosAcosB-sinAsinB)=-[(√2/2）*4/5-（√2/2）*3/5]∴cosC=-√2/10,2、

ABC成等差数列,A+C=2B=π-B,3B=π,B=π/3,abc成等比数列,b^2=ac,由余弦定理,b^2=a^2+c^2-2ac*cosπ/3=a^2+c^2-ac=ac,a^2+c^2-2a

∵lgsinA，lgsinB，lgsinC成等差数列，∴2lgsinB=lgsinA+lgsinC，∴sin2B=sinA•sinC．直线xsin2A+ysinA-a=0的斜率为-sinA，xsin2

1.A+C=120°,C=120°-A由正弦定理a/sinA=c/sinCa=(3^(1/2)-1)csinA=(3^(1/2)-1)sinC(3^(1/2)+1)sinA=2sin(120°-A）=

/sinB=c/sinCsinBsinB=sin2C=2sinCcosC给你个提示!

化成三角型

解∵∠B=60°∴A+C=120°,C=120°-A由正弦定理a/sinA=c/sinCc=(√3-1)asinC=(√3-1)sinA(√3+1)sinC=2sin(120°-C)=√3cosC+s

再答：亲，要给采纳哦！再问：thankyou再问：thankyou

自己做的 答案应该是30°.莫怪字丑啊,高考完到现在没动过笔 都快不会写字了

1、∵A、B、C是三角形的内角∴sin(A+B)=sinC∴√2asin(B+π/4)=c√2sinAsin(B+π/4)=sinC(根据正弦定理)√2sinA[(√2/2)sinB+(√2/2)co

1c²=a²＋b²－abab=a²＋b²-c²(a²＋b²-c²)/2ab=1/2=cosCC=602a=√3

m垂直于n,则有1*cosA+1*(cosA-1)=0cosA=1/2故有角A=60度.a^2=b^2+c^2-2bccosA3=b^2+c^2-2bc*1/23=(b+c)^2-2bc-bc3=9-

∵sinAcosB+cosAsinB=sin(A+B)=sin(180-C)=sinC∴由题设可得：sinC=-sin2C=-2sinCcosC∴sinC(1+2cosC)=0∴cosC=-1/2.∴

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=

因为sinB=2sinA,由正弦定理得,b=2a由余弦定理得,c平方=a平方+b平方-2abCOSC,代入数据和联立b=2a得4=3a平方所以a=（根号3）/2所以b=根号3S=0.5*b*a*Sin

1sinA+√3cosA=2→(1/2)sinA+(√3/2)cosA=1;cos(π/3)·sinA+sin(π/3)·cosA=1;sin(A+π/3)=1;则A+π/3=π/2;则A=π/6.(

请问是“tan2/c”吗?我是按照tan(C/2)算得,结果是1/4∵cosC=(a²+b²-c²)/(2ab)∴2ab*cosC=a²+b²-c&s

(1)若sinB=2sinA三角形ABC中a/sinA=b/sinB因为SinB=2sinA所以sinB/sinA=2=b/a即b=2acosC=(a^2+b^2-c^2)/(2ab)c=2,cosC