问题
解答题
| 等差数列{an}中,a3=7,a5+a7=26,{an}的前n项和为sn.. (1)求an及sn; (2)令bn=
|
答案
(1)设等差数列{an}的公差为d,可得
,解之得a1+2d=7 a1+4d+a1+6d=26 a1=3 d=2
∴an=3+(n-1)×2=2n+1
Sn=
=n2+2n…(6分)n(3+2n+1) 2
(2)∵an=2n+1,可得an2-1=(2n+1)2-1=4n(n+1)
∴bn=
=1 a2n-1
=1 4n(n+1)
(1 4
-1 n
)1 n+1
由此可得{bn}的前n项和为
Tn=
[(1-1 4
)+(1 2
-1 2
)+…+(1 3
-1 n
)]=1 n+1
(1-1 4
)=1 n+1
…(12分)n 4(n+1)