| a1+1 |
| 2 |
设公差为d,则有a1+a2=2+d=S2=(
| 2+d |
| 2 |
解得d=2或d=-2(舍).
所以an=2n-1,Sn=n2.
所以 bn=(−1)n•n2.
(1)当n为偶数时,Tn=−12+22−32+42−…+(−1)nn2
=(22-12)+(42-32)+…+[n2-(n-1)2]
=3+7+11+…+(2n−1)=
| n(n+1) |
| 2 |
(2)当n为奇数时,Tn=Tn−1−n2
=
| (n−1)•n |
| 2 |
| n2+n |
| 2 |
| n(n+1) |
| 2 |
综上,Tn=(−1)n•
| n(n+1) |
| 2 |
| an+1 |
| 2 |
| a1+1 |
| 2 |
| 2+d |
| 2 |
| n(n+1) |
| 2 |
| (n−1)•n |
| 2 |
| n2+n |
| 2 |
| n(n+1) |
| 2 |
| n(n+1) |
| 2 |