题目内容
已知数列{an}满足a1=1,an-an+1=2an•an+1,数列{bn}满足2an(2+log2bn)-an-1=0
(1)求数列{an}的通项公式和{bn}的前n项和Sn.
(2)若数列{cn}满足cn=
,设数列{cn2}的前n项和为Tn,证明:Tn<2.
(1)求数列{an}的通项公式和{bn}的前n项和Sn.
(2)若数列{cn}满足cn=
| 1 |
| log2bn+2 |
考点:数列与不等式的综合,数列的求和
专题:等差数列与等比数列
分析:(1)由已知得{
}是首项这1,公差为2的等差数列,从而求出an=
.由已知得bn=2n-2=
×2n-1.由此能求出Sn=2n-1-
.
(2)由cn=
=
,cn2=
,
<
=
-
,利用裂项求和法能证明Tn<2.
| 1 |
| an |
| 1 |
| 2n-1 |
| 1 |
| 2 |
| 1 |
| 2 |
(2)由cn=
| 1 |
| log2bn+2 |
| 1 |
| n |
| 1 |
| n2 |
| 1 |
| n2 |
| 1 |
| n(n-1) |
| 1 |
| n-1 |
| 1 |
| n |
解答:
(1)解:∵数列{an}满足a1=1,an-an+1=2an•an+1,
∴
-
=2,
=1,
∴{
}是首项这1,公差为2的等差数列,
∴
=1+2(n-1)=2n-1,
∴an=
.
∵数列{bn}满足2an(2+log2bn)-an-1=0,
∴
-
-1=0,
解得bn=2n-2=
×2n-1.
∴Sn=
=2n-1-
.
(2)证明:cn=
=
,cn2=
,
∴Tn=
+
+
+…+
,
∵
<
,(n>1)
∴
<
=
-
,
∴Tn=
+
+
+…+
<1+1-
+
-
+…+
-
=2-
<2.
∴Tn<2.
∴
| 1 |
| an+1 |
| 1 |
| an |
| 1 |
| a1 |
∴{
| 1 |
| an |
∴
| 1 |
| an |
∴an=
| 1 |
| 2n-1 |
∵数列{bn}满足2an(2+log2bn)-an-1=0,
∴
| 4+2log2bn |
| 2n-1 |
| 1 |
| 2n-1 |
解得bn=2n-2=
| 1 |
| 2 |
∴Sn=
| ||
| 1-2 |
| 1 |
| 2 |
(2)证明:cn=
| 1 |
| log2bn+2 |
| 1 |
| n |
| 1 |
| n2 |
∴Tn=
| 1 |
| 12 |
| 1 |
| 22 |
| 1 |
| 32 |
| 1 |
| n2 |
∵
| 1 |
| n |
| 1 |
| n-1 |
∴
| 1 |
| n2 |
| 1 |
| n(n-1) |
| 1 |
| n-1 |
| 1 |
| n |
∴Tn=
| 1 |
| 12 |
| 1 |
| 22 |
| 1 |
| 32 |
| 1 |
| n2 |
<1+1-
| 1 |
| 2 |
| 1 |
| 2 |
| 1 |
| 3 |
| 1 |
| n-1 |
| 1 |
| n |
| 1 |
| n |
∴Tn<2.
点评:本题考查数列的通项公式和前n项和公式的求法,考查不等式的证明,解题时要认真审题,注意裂项求和法的合理运用.
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