题目内容
已知数列{an}满足:a1=2t,t2-2tan-1+an-1an=0,n=2,3,4,…,(其中t为常数且t≠0).
(1)求证:数列{
}为等差数列;
(2)求数列{an}的通项公式;
(3)设bn=
,求数列{bn}的前n项和为Sn.
(1)求证:数列{
| 1 |
| an-t |
(2)求数列{an}的通项公式;
(3)设bn=
| an |
| (n+1)2 |
证明:(1)∵t2-2tan-1+an-1an=0,
∴(t2-tan-1)-(tan-1-an-1an)=0,
即t2-tan-1=tan-1-an-1an,
∵t-an-1≠0
∴
=
=
=
+
即
-
=
∴数列{
}为等差数列;
(2)由(I)得数列{
}为等差数列,公差为
,
∴
=
+
(n-1)=
∴an=
+t
(3)bn=
=
=
=t•(
-
)
∴Sn=b1+b2+…+bn=t[(1-
)+(
-
)+…+(
-
)]=t(1-
)=
∴(t2-tan-1)-(tan-1-an-1an)=0,
即t2-tan-1=tan-1-an-1an,
∵t-an-1≠0
∴
| 1 |
| an-t |
| an-1 |
| t(an-1-t) |
| an-1-t+t |
| t(an-1-t) |
| 1 |
| t |
| 1 |
| an-1-t |
即
| 1 |
| an-t |
| 1 |
| an-1-t |
| 1 |
| t |
∴数列{
| 1 |
| an-t |
(2)由(I)得数列{
| 1 |
| an-t |
| 1 |
| t |
∴
| 1 |
| an-t |
| 1 |
| a1-t |
| 1 |
| t |
| n |
| t |
∴an=
| t |
| n |
(3)bn=
| an |
| (n+1)2 |
| ||
| (n+1)2 |
| t |
| n(n+1) |
| 1 |
| n |
| 1 |
| n+1 |
∴Sn=b1+b2+…+bn=t[(1-
| 1 |
| 2 |
| 1 |
| 2 |
| 1 |
| 3 |
| 1 |
| n |
| 1 |
| n+1 |
| 1 |
| n+1 |
| nt |
| n+1 |
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