问题
解答题
| 已知等差数列{an}的公差d>0,其前n项和为Sn,若S3=12,且2a1,a2,1+a3成等比数列. (I)求{an}的通项公式;(II)记bn=
|
答案
(I)由题得:2a1(a3+1)=a22 a1+a2+a3=12
即
,得d2+d-12=0.a1(a1+2d+1) =8 a1+d=4
∵d>0,∴d=3,a1=1.
∴{an}的通项公式an=1+3(n-1)=3n-2.
(II)∵bn=
=1 an•an+1
=1 (3n-2)(3n+1)
(1 3
-1 3n-2
).1 3n+1
∴Tn=b1+b2+b3+…+bn
=
[(1-1 3
)+(1 4
-1 4
)+…+(1 7
-1 3n-2
)]1 3n+1
=
(1-1 3
)1 3n+1
=
.n 3n+1