问题
解答题
| 已知数列{2n-1•an}的前n项和Sn=9-6n (1)求数列{an}的通项公式. (2)设bn=n(3-log2
|
答案
(1)n=1时,20•a1=S1=3∴a1=3
n≥2时,2n-1•an=Sn-Sn-1=-6∴an=-3 2n-2
∴通项公式an=3 n=1
n≥2-3 2n-2
(2)当n=1时,b1=3-log2
=3∴3 3
=1 b1 1 3
n≥2时,bn=n(3-log2
)=n(n+1)3 3•2n-2
∴
=1 bn 1 n(n+1)
∴
+1 b1
+1 b2
+…+1 b3
=1 bn
+1 3
+1 2×3
+…+1 3×4
=1 n(n+1)
-5 6
=1 n+1 5n-1 6(n+1)