题目内容
已知函数f(x)=log3(ax+b)的图象经过点A(2,1)和B(5,2),记an=3f(n),n∈N*(1)求数列{an}的通项公式;
(2)设bn=
| an |
| 2n |
(3)求使不等式(1+
| 1 |
| a1 |
| 1 |
| a2 |
| 1 |
| a2 |
| 1 |
| an |
| 2n+1 |
分析:(1)先由函数f(x)=log3(ax+b)的图象经过点A(2,1)和B(5,2),求出a,b,进而求得函数f(x)的解析式,即可求出数列{an}的通项公式;
(2)用错位相减法求出Tn的表达式即可求出对应的m的最小值;
(3)先把原不等式转化为p≤
(1+
)(1+
)(1+
)对n∈N*恒成立,再利用函数的单调性求不等式右边的最小值即可求出最大实数p.
(2)用错位相减法求出Tn的表达式即可求出对应的m的最小值;
(3)先把原不等式转化为p≤
| 1 | ||
|
| 1 |
| a1 |
| 1 |
| a2 |
| 1 |
| an |
解答:解:(1)由题意得
,解得
,(2分)
∴f(x)=log3(2x-1)
an=3log3(2n-1)=2n-1,n∈N*(4分)
(2)由(1)得bn=
,∴Tn=
+
+
++
+
①
Tn=
+
++
+
+
②①-②得
Tn=
+
+
+…+
+
-
=
+(
+
+…+
+
)-
=
-
-
,∴Tn=3-
-
=3-
,(7分)
设f(n)=
,n∈N*,则由
=
=
=
+
≤
+
<1
得f(n)=
,n∈N*随n的增大而减小,Tn随n的增大而增大.∴当n→+∞时,Tn→3
又Tn<m(m∈Z)恒成立,∴mmin=3(10分)
(3)由题意得p≤
(1+
)(1+
)(1+
)对n∈N*恒成立
记F(n)=
(1+
)(1+
)(1+
),则
=
=
=
>
=1(12分)∵F(n)>0,∴F(n+1)>F(n),即F(n)是随n的增大而增大F(n)的最小值为F(1)=
,∴p≤
,即pmax=
(14分)
|
|
∴f(x)=log3(2x-1)
an=3log3(2n-1)=2n-1,n∈N*(4分)
(2)由(1)得bn=
| 2n-1 |
| 2n |
| 1 |
| 21 |
| 3 |
| 22 |
| 5 |
| 23 |
| 2n-3 |
| 2n-1 |
| 2n-1 |
| 2n |
| 1 |
| 2 |
| 1 |
| 22 |
| 3 |
| 23 |
| 2n-5 |
| 2n-1 |
| 2n-3 |
| 2n |
| 2n-1 |
| 2n+1 |
| 1 |
| 2 |
| 1 |
| 21 |
| 2 |
| 22 |
| 2 |
| 23 |
| 2 |
| 2n-1 |
| 2 |
| 2n |
| 2n-1 |
| 2n+1 |
| 1 |
| 21 |
| 1 |
| 21 |
| 1 |
| 22 |
| 1 |
| 2n-2 |
| 1 |
| 2n-1 |
| 2n-1 |
| 2n+1 |
| 3 |
| 2 |
| 1 |
| 2n-1 |
| 2n-1 |
| 2n+1 |
| 1 |
| 2n-2 |
| 2n-1 |
| 2n |
| 2n+3 |
| 2n |
设f(n)=
| 2n+3 |
| 2n |
| f(n+1) |
| f(n) |
| ||
|
| 2n+5 |
| 2(2n+3) |
| 1 |
| 2 |
| 1 |
| 2n+3 |
| 1 |
| 2 |
| 1 |
| 5 |
得f(n)=
| 2n+3 |
| 2n |
又Tn<m(m∈Z)恒成立,∴mmin=3(10分)
(3)由题意得p≤
| 1 | ||
|
| 1 |
| a1 |
| 1 |
| a2 |
| 1 |
| an |
记F(n)=
| 1 | ||
|
| 1 |
| a1 |
| 1 |
| a2 |
| 1 |
| an |
| F(n+1) |
| F(n) |
| ||||||||||||
|
| 2n+2 | ||
|
| 2(n+1) | ||
|
| 2(n+1) |
| 2(n+1) |
| 2 |
| 3 |
| 3 |
| 2 |
| 3 |
| 3 |
| 2 |
| 3 |
| 3 |
点评:本题的第二问考查了数列求和的错位相减法.错位相减法适用于通项为一等差数列乘一等比数列组成的新数列.
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