题目内容
18.己知等差数列中,前n项和为Sn,且满足S3=6,a4=4.(Ⅰ)求数列{an}的通项公式;
(Ⅱ)设数列{bn}满足bn=$\left\{\begin{array}{l}{{2}^{{a}_{n}},n=2k,n∈{N}^{*}}\\{2{a}_{n},n=2k-1,n∈{N}^{*}}\end{array}\right.$,求数列{bn}的前n项和为Tn.
分析 (I)设等差数列{an}的公差为d,由S3=6,a4=4.利用等差数列的通项公式及其前n项和公式即可得出;
(II)由(I)可知:bn=$\left\{\begin{array}{l}{{2}^{n},n=2k}\\{2n,n=2k-1}\end{array}\right.$,①当n为偶数时,即n=2k,k∈N*,可得Tn=[2+6+…+2(2k-1)]+(22+24+…+22k),利用等差数列与等比数列的前n项和公式即可得出;②当n为奇数时,即n=2k-1,k∈N*,n+1为偶数,Tn=Tn+1-an+1,即可得出.
解答 解:(I)设等差数列{an}的公差为d,∵S3=6,a4=4.
∴$\left\{\begin{array}{l}{3{a}_{1}+\frac{3×2}{2}d=6}\\{{a}_{1}+3d=4}\end{array}\right.$,解得$\left\{\begin{array}{l}{{a}_{1}=1}\\{d=1}\end{array}\right.$,
∴数列{an}的通项公式an=1+(n-1)=n;
(II)由(I)可知:bn=$\left\{\begin{array}{l}{{2}^{n},n=2k}\\{2n,n=2k-1}\end{array}\right.$,
①当n为偶数时,即n=2k,k∈N*,∴Tn=[2+6+…+2(2k-1)]+(22+24+…+22k)
=2k2+$\frac{4({4}^{k}-1)}{4-1}$=$\frac{{n}^{2}}{2}$+$\frac{{2}^{n+2}}{3}$-$\frac{4}{3}$.
②当n为奇数时,即n=2k-1,k∈N*,n+1为偶数,
∴Tn=Tn+1-an+1=$\frac{(n+1)^{2}}{2}+\frac{{2}^{n+3}-4}{3}$-2n+1=$\frac{(n+1)^{2}}{2}$+$\frac{{2}^{n+1}}{3}$-$\frac{4}{3}$.
综上可得:Tn=$\left\{\begin{array}{l}{\frac{{n}^{2}}{2}+\frac{{2}^{n+2}-4}{3},n=2k}\\{\frac{(n+1)^{2}}{2}+\frac{{2}^{n+1}-4}{3},n=2k-1}\end{array}\right.$,k∈N*.
点评 本题考查了等差数列与等比数列的通项公式及其前n项和公式、分类讨论思想方法,考查了推理能力与计算能力,属于中档题.
| A. | (-1,0) | B. | (0,1) | C. | (-∞,0) | D. | (-∞,0)∪(1,+∞) |
| A. | $({\frac{2}{3},1}]$ | B. | $({\frac{1}{2},\frac{5}{6}}]$ | C. | $({\frac{2}{3},\frac{4}{3}}]$ | D. | $({\frac{3}{4},\frac{5}{4}}]$ |
