在三角形ABC中,a+b=5;c=3,角C=60°则cos(A-B)/2=()A.5/12 B.5/6 C.3/4 D,2/3(请回答者写出详细过程)
热心网友
cos(A-B)/2*cos(A+B)/2 =(cosA+cosB)/2cos(A-B)/2=cosA+cosB=tcos(A-B)=2tt-1sinA/a=sinB/b=(sinA+sinB)/5 =sinC/c=sin60/3sinA+sinB=5sin60/3[cosA+cosB]^2+[sinA+sinB]^2=2+2cos(A-B)tt+25/12=2+4tt-23tt=25/12t=5/6B答案!