题目内容
已知{an}为等差数列,且a5=14,a7=20,数列{bn}的前n项和为Sn,且bn=2-2Sn(1)求数列{an},{bn}的通项公式;
(2)若cn=an•bn,Tn为数列{cn}的前n项和,求证:Tn<
| 7 | 2 |
分析:(1)数列{an}为等差数列,公差 d=
(a7-a5)=3,可得an=3n-1.由题设条件知 b1=
. b2=
,bn=2-2Sn,bn-bn-1=-2(Sn-Sn-1)=-2bn.
=
,由此可求出数列{bn}的通项公式.
(2)cn=an•bn=2(3n-1)•
,由此能证明数列{cn}的前n项和Tn<
.
| 1 |
| 2 |
| 2 |
| 3 |
| 2 |
| 9 |
| bn |
| bn-1 |
| 1 |
| 3 |
(2)cn=an•bn=2(3n-1)•
| 1 |
| 3n |
| 7 |
| 2 |
解答:解:(1)数列{an}为等差数列,公差 d=
(a7-a5)=3,可得an=3n-1
由bn=2-2Sn,令n=1,则b1=2-2S1,又S1=b1,
所以 b1=
.b2=2-2(b1+b2),则 b2=
.
当n≥2时,由bn=2-2Sn,可得bn-bn-1=-2(Sn-Sn-1)=-2bn.即
=
,所以{bn}是以 b1=
为首项,
为公比的等比数列,于是 bn=2•
.
(2)cn=an•bn=2(3n-1)•
∴Tn=2[2•
+5•
+8•
++(3n-1)•
]=
-
•
-
<
| 1 |
| 2 |
由bn=2-2Sn,令n=1,则b1=2-2S1,又S1=b1,
所以 b1=
| 2 |
| 3 |
| 2 |
| 9 |
当n≥2时,由bn=2-2Sn,可得bn-bn-1=-2(Sn-Sn-1)=-2bn.即
| bn |
| bn-1 |
| 1 |
| 3 |
| 2 |
| 3 |
| 1 |
| 3 |
| 1 |
| 3n |
(2)cn=an•bn=2(3n-1)•
| 1 |
| 3n |
| 1 |
| 3 |
| 1 |
| 32 |
| 1 |
| 33 |
| 1 |
| 3n |
| 7 |
| 2 |
| 7 |
| 2 |
| 1 |
| 3n |
| n |
| 3n-1 |
| 7 |
| 2 |
点评:本题考查数列的通项公式,考查错位相减法求数列的和,解题时要认真审题,仔细解答,注意公式的灵活运用.
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