(1)∵a1=2,对一切n∈N*都有Sn+1=3Sn+n2+2成立,
令n=1,可得 2+a2=3×2+1+2,求得a2=7.
(2)证明:∵Sn+1=3Sn+n2+2,∴Sn=3Sn-1+(n-1)2+2,
∴两式相见可得an+1=3an+2n-1,即an+1+(n+1)=3an+2n-1+(n+1)=3(an+n) ①.
又bn=an+n,∴由①可得 bn+1=3(an+1+n)=3bn,∴数列{bn}是公比为3的等比数列.
(3)由于b1=a1+1=3,故bn=3×3n-1=3n,
∴
+1 b1
+…+1 b3
=1 b2n?1
+1 3
+1 33
+…+1 35
=1 32n?1
=
[1?(1 3
)n]1 9 1?
1 9
-3 8
×(3 8
)n,1 9
∴
(lim n→∞
+1 b1
+…+1 b3
)=1 b2n?1
(lim n→∞
-3 8
×(3 8
)n )=1 9
.3 8
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