在△ABC中,求证:sinA+sinB+sinC=4cos(A/2)cos(B/2)cos(C/2)解三角形.请不要用和差积化公式.对QSMM状元的解答还是有些不解..=4Sin(B/2)Cos(B/2)(Cos(C/2))^2+4Sin(C/2)Cos(C/2)(Cos(B/2))^2 =SinB(CosC+1)+SinC(CosB+1) 这一步怎么转化的?不好意思 恕在下愚钝
问题描述:
在△ABC中,求证:sinA+sinB+sinC=4cos(A/2)cos(B/2)cos(C/2)
解三角形.请不要用和差积化公式.
对QSMM状元的解答还是有些不解..
=4Sin(B/2)Cos(B/2)(Cos(C/2))^2+4Sin(C/2)Cos(C/2)(Cos(B/2))^2
=SinB(CosC+1)+SinC(CosB+1)
这一步怎么转化的?不好意思 恕在下愚钝
答
证明:
∵在三角形ABC中,
∴A+B+C=180度,得SINA=SIN(B+C)
则A/2=90度-(B+C)/2,得COSA/2=SIN((B+C)/2)
左边=Sin(B+C)+SinB+SinC
则4Cos(A/2)Cos(B/2)Cos(C/2)
=4Sin((B+C)/2)Cos(B/2)Cos(C/2)
=4Cos(B/2)Cos(C/2)(SinB/2·CosC/2+CosB/2·SiNC/2)
=4Sin(B/2)Cos(B/2)(Cos(C/2))^2+4Sin(C/2)Cos(C/2)(Cos(B/2))^2
=SinB(CosC+1)+SinC(CosB+1)
=Sin(B+C)+SinB+SinC
左边=右边
原式成立!