题目内容
在等差数列{an}中,a1=1,a5=9,在数列{bn}中,b1=2,且bn=2bn-1-1,(n≥2)
(1)求数列{an}和{bn}的通项公式;
(2)设Tn=
+
+
+…+
,求Tn.
(1)求数列{an}和{bn}的通项公式;
(2)设Tn=
| a1 |
| b1-1 |
| a2 |
| b2- 1 |
| a3 |
| b3-1 |
| an |
| bn-1 |
分析:(1)由已知可求公差d,代入等差数列的通项公式可求an,由bn=2bn-1-1可得bn-1=2(bn-1-1)(n≥2),则可得{bn-1}是等比数列,结合等比数列的通项公式可求bn
(2)由(1)可得Tn═1+
+
+…+
+
,结合所求和的特点,考虑利用错位相减求解.
(2)由(1)可得Tn═1+
| 3 |
| 2 |
| 5 |
| 4 |
| 2n-3 |
| 2n-2 |
| 2n-1 |
| 2n-1 |
解答:解:(1)由等差数列的通项公式可得,d=
=2
∴an=1+2(n-1)=2n-1
由bn=2bn-1-1可得bn-1=2(bn-1-1)(n≥2)
∴{bn-1}是以b1-1=1为首项,2为公比的等比数列
∴bn-1=2n-1
故bn=2n-1+1
(2)Tn=
+
+…+
=
+
+…+
=1+
+
+…+
+
①
则
Tn=
+
+
+…+
+
②
①-②可得
Tn=1+2(
+
+…+
)-
=1+2×
-
=1+2-(
)n-2-(2n-1)(
)n
=3-(
)n[4+(2n-1)]=3-(2n+3)(
)n
所以Tn=6-
| a5-a1 |
| 5-1 |
∴an=1+2(n-1)=2n-1
由bn=2bn-1-1可得bn-1=2(bn-1-1)(n≥2)
∴{bn-1}是以b1-1=1为首项,2为公比的等比数列
∴bn-1=2n-1
故bn=2n-1+1
(2)Tn=
| a1 |
| b1-1 |
| a2 |
| b2-1 |
| an |
| bn-1 |
| 2-1 |
| 20 |
| 2×2-1 |
| 22-1 |
| 2n-1 |
| 2n-1 |
=1+
| 3 |
| 2 |
| 5 |
| 4 |
| 2n-3 |
| 2n-2 |
| 2n-1 |
| 2n-1 |
则
| 1 |
| 2 |
| 1 |
| 2 |
| 3 |
| 4 |
| 5 |
| 8 |
| 2n-3 |
| 2n-1 |
| 2n-1 |
| 2n |
①-②可得
| 1 |
| 2 |
| 1 |
| 2 |
| 1 |
| 2 2 |
| 1 |
| 2 n-1 |
| 2n-1 |
| 2n |
=1+2×
| ||||
1-
|
| 2n-1 |
| 2n |
=1+2-(
| 1 |
| 2 |
| 1 |
| 2 |
=3-(
| 1 |
| 2 |
| 1 |
| 2 |
所以Tn=6-
| 2n+3 |
| 2n-1 |
点评:本题主要考查了等差数列的通项公式的应用,构造等比求数列的通项公式,错位相减求数列的和是数列求和中的重点与难点.
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