12.在數(shù)列{an}中,a1=1,an+1=2an+2n.
(1)設(shè)bn=$\frac{{a}_{n}}{{2}^{n-1}}$,證明:數(shù)列{bn}是等差數(shù)列����;
(2)求數(shù)列{an}的前n項(xiàng)和Sn����,
(3)設(shè)cn=$\frac{{a}_{n}}{{3}^{n-1}}$,求數(shù)列{cn}的最大項(xiàng).
分析 (1)由an+1=2an+2n���,得$\frac{{a}_{n+1}}{{2}^{n}}=\frac{{a}_{n}}{{2}^{n-1}}+1$,結(jié)合bn=$\frac{{a}_{n}}{{2}^{n-1}}$�����,得bn+1-bn=1,即數(shù)列{bn}是等差數(shù)列�;
(2)由數(shù)列{bn}是等差數(shù)列求得數(shù)列{bn}的通項(xiàng)公式,代入bn=$\frac{{a}_{n}}{{2}^{n-1}}$����,可得${a}_{n}=n•{2}^{n-1}$.然后利用錯(cuò)位相減法求數(shù)列{an}的前n項(xiàng)和Sn;
(3)把{an}的通項(xiàng)公式代入cn=$\frac{{a}_{n}}{{3}^{n-1}}$����,整理后利用數(shù)列的函數(shù)特性可得數(shù)列{cn}的最大項(xiàng)是第二項(xiàng)和第三項(xiàng),等于$\frac{4}{3}$.
解答 (1)證明:由an+1=2an+2n�����,得$\frac{{a}_{n+1}}{{2}^{n}}=\frac{{a}_{n}}{{2}^{n-1}}+1$����,
即$\frac{{a}_{n+1}}{{2}^{n}}-\frac{{a}_{n}}{{2}^{n-1}}=1$,
∵bn=$\frac{{a}_{n}}{{2}^{n-1}}$���,∴有bn+1-bn=1���,即數(shù)列{bn}是等差數(shù)列��;
(2)解:由數(shù)列{bn}是等差數(shù)列���,得$_{n}=����_{1}+1×(n-1)=\frac{{a}_{1}}{{2}^{0}}+n-1=1+n-1$=n,
∴$\frac{{a}_{n}}{{2}^{n-1}}$=n���,則${a}_{n}=n•{2}^{n-1}$.
∴${S}_{n}=1×{2}^{0}+2×{2}^{1}+…+(n-1){2}^{n-2}+n{2}^{n-1}$��,
$2{S}_{n}=1×{2}^{1}+2×{2}^{2}+…+(n-1){2}^{n-1}+n{2}^{n}$���,
兩式作差得:$-{S}_{n}=1+2+{2}^{2}+…+{2}^{n-1}-n{2}^{n}$=$\frac{1-{2}^{n}}{1-2}-n{2}^{n}={2}^{n}-1-n{2}^{n}$,
∴${S}_{n}=(n-1){2}^{n}+1$���;
(3)解:cn=$\frac{{a}_{n}}{{3}^{n-1}}$=$n•(\frac{2}{3})^{n-1}$��,
${c}_{1}=1�,{c}_{2}={c}_{3}=\frac{4}{3}$��,
當(dāng)n≥3時(shí),$\frac{{c}_{n+1}}{{c}_{n}}=\frac{(n+1)(\frac{2}{3})^{n}}{n(\frac{2}{3})^{n-1}}=\frac{2}{3}\frac{n+1}{n}<1$.
∴數(shù)列{cn}的最大項(xiàng)是第二項(xiàng)和第三項(xiàng)����,等于$\frac{4}{3}$.
點(diǎn)評(píng) 本題考查數(shù)列遞推式����,考查了等差關(guān)系的確定,訓(xùn)練了錯(cuò)位相減法求數(shù)列的和����,考查了數(shù)列的函數(shù)特性,是中檔題.
