问题
解答题
| 等差数列{an}中,,前n项和为Sn,S2=4且S4=12,等比数列{bn}的公比为8,且b3=64. (Ⅰ)求an与bn; (Ⅱ)求
|
答案
设等差数列{an}的公差为d,等比数列{bn}的公比为q,
(Ⅰ)由题意得:
,S2=2a1+d=4 S4=4a1+6d=12
解得a1=
,d=13 2
∴an=n+
,1 2
,解得b1=1∴bn=8n-1;q=8 b3=64
(Ⅱ)∵Sn=n(n+2) 2
∴
=1 Sn
-1 n 1 n+2
∴
+1 S1
+…+1 S2
=(1 Sn
-1 1
)+(1 3
-1 2
)+(1 4
-1 3
)+…+(1 5
-1 n
)1 n+2
=1+
-1 2
-1 n+1
=1 n+2
.3n2-13n 2(n+1)(n+2)
