sn为数列{an}的前n项和,已知an>0,an^2+2an=4sn+3
sn为数列{an}的前n项和,已知an>0,an^2+2an=4sn+3
日期:2019-10-05 03:27:05 人气:1
n≥2时,
an²+2an=4Sn+3
a(n-1)²+2a(n-1)=4S(n-1)+3
an²+2an-a(n-1)²-2a(n-1)=4[Sn-S(n-1)]=4an
an²-a(n-1)²-2an-2a(n-1)=0
[an+a(n-1)][an-a(n-1)]-2[an+a(n-1)]=0
[an+a(n-1)][an-a(n-1)-2]=0
an>0,an+a(n-1)恒>0,因此只有an-a(n-1)-2=