在△ABC中,已知2sin^2(A B) 2

解8sin^2[(B+C)/2]-2cos2A=78sin^2[（180-A）/2]-2cos2A=78sin^2[A/2]-2cos2A=78(1-cosA/2)-2cos2A=7化减cosA=1/

sin²A＋sin²B＋sin²C＝sin²A＋sin²B＋sin²(A+B)＝sin²A＋sin²B＋(sinAcos

由sin^2A+sin^2B-sinAsinB=sin^2C由正弦定理sinA=a/2R,sinB=b/2R,sinC=c/2R则(a/2R)^2+(b/2R)^2-(a/2R)(b/2R)=(c/2

由正弦定理a/sinA=b/cosB=c/sinC令a/sinA=b/cosB=c/sinC=1/k则sinA=aksinB=bksinC=cksin^2A=sin^C+sin^B+根号3sinCsi

sin(B+C/2)=sin[B+(π-A-B)/2])=sin[π/2+(B-A)/2]=cos{π/2-[π/2+(B-A)/2]}=cos[(A-B)/2)=4/5cos(A-B)=2cos&#

sin^2A+sin^2B=sin^2C利用三角形正弦定理sinA/a=sinB/b=sinC/c显然a^2+b^2=c^2所以边c所对的角C为直角.

∵［sin（A/2）］^2＋sinBsinC＝1,∴2［sin（A/2）］^2＋2sinBsinC＝2,∴2sinBsinC＝1＋1－2［sin（A/2）］^2＝1＋cosA＝1＋cos（180°－B

这个式子可以化为：b2-c2=a(√2b-a)b2-c2=√2ab-a2a2+b2-c2=√2abcosC=a2+b2-c2/2ab=√2ab/2ab=√2/2又因为在△ABC中,c在0—180度,所

原式可化为a^2+b^2-c^2=ab也即是a^2+b^2-c^2/2ab=1/2也即是cosC=1/2所以C=60°联立2sinC=sinA+sinB可得等边三角形

sinA=BC/ABcosA=AC/ABSIN^2A+COS^2A=(BC^2+AC^2)/AB^2根据勾股定理,BC^2+AC^2=AB^2所以SIN^2A+COS^2A=1

sin²A=sin²B+sin²C,a/sinA=b/sinB=c/sinC=2R(a/2R)^2=(b/2R)^2+(c/2R)^2a^2=b^2+c^2,ABC是直角

应当是sin^2A+sin^2B【+】sin^2C=sinB*sinC+sinC*sinA+sinA*sinB吧括号中是要改的.两边同乘以22sin²A+2sin²B+2sin&s

∵sinC=2sin（B+C）cosB，∴sin（A+B）=2sinAcosB，∴sinAcosB+cosAsinB=2sinAcosB，∴sinAcosB-cosAsinB=0∴sin（A-B）=0

1、8[1-cos(B+C)]/2-2cos2A=74[1-cos(180-A]-2(2cos²A-1)=74+4cosA-4cos²A+2=74cos²A-4cosA+

1、由正弦定理得：b/sinB=c/sinCbsinC=csinBb²*sin²C+c²*sin²B=2bc*cosB*cosC=b²*sin&sup

a²≤b²+c²-bcbc≤b²+c²-a²1/2≤(b²+c²-a²)/2bccosa≥1/2a≤60°

sin(A+B)=3/5,sin(A-B)=1/5sin(A+B)=sinAcosB+sinBcosA=3/5sin(A-B)=sinAcosB-sinBcosA=1/5两式相加相减后可得：sinAc

∵tanA=-1/2,∴sinA/cosA=-1/2那么cosA=-2sinA代入（sinA)^2+(cosA)^2=1得(sinA)^2+4(sinA)^2=1∴(sinA)^2=1/5∵A是三角形

2sinAcosB=sin(A+B)+sin(A-B)=sinC+sin(A-B)=sinC所以sin(A-B)=0所以A=B所以,△ABC是等腰三角形.完毕.

你是二十一中的么如果是你是几班的(a^2+b^2)sin(A-B)=(a^2-b^2)sin(A+B),(sin^A+sin^B)sin(A-B)=(sin^A-sin^B)sin(A+B)sin^A