8.求滿足下列條件的數(shù)列{an}的通項公式.
(1)a1=1����,an+1=an+2n+1�;
(2)a1=1��,an+1 =2nan�;
(3)a1=2��,an+1=a${\;}_{n}^{2}$(an >0)�����;
(4)a1=1��,an+1=2an+1���;
(5)a1=1�,an+1=$\frac{2{a}_{n}}{2+{a}_{n}}$.
分析 (1)通過an+1=an+2n+1可知an=an-1+2(n-1)+1,an-1=an-2+2(n-2)+1����,…�����,a2=a1+2•1+1����,累加計算即得結論;
(2)通過an+1 =2nan����,可知$\frac{{a}_{n+1}}{{a}_{n}}$=2n,$\frac{{a}_{n}}{{a}_{n-1}}$=2n-1�,$\frac{{a}_{n-1}}{{a}_{n-2}}$=2n-2,…���,$\frac{{a}_{2}}{{a}_{1}}$=2��,累乘計算即得結論�;
(3)通過對an+1=a${\;}_{n}^{2}$(an >0)兩邊同時取對數(shù)、計算可知數(shù)列{log2an}是以1為首項���、2為公比的等比數(shù)列����,進而計算可得結論�����;
(4)通過對an+1=2an+1變形可知an+1+1=2(an+1)�����,進而數(shù)列{an+1}是以首項�����、公比均為2的等比數(shù)列��,計算即得結論��;
(5)通過對an+1=$\frac{2{a}_{n}}{2+{a}_{n}}$兩邊同時取倒數(shù)可知$\frac{1}{{a}_{n+1}}$=$\frac{1}{{a}_{n}}$+$\frac{1}{2}$�,進而數(shù)列{$\frac{1}{{a}_{n}}$}是以1為首項、$\frac{1}{2}$為公差的等差數(shù)列����,計算即得結論.
解答 解:(1)∵an+1=an+2n+1�����,
∴an=an-1+2(n-1)+1�����,
an-1=an-2+2(n-2)+1,
…
a2=a1+2•1+1���,
累加得:an=a1+2[1+2+…+(n-1)]+(n-1)
=1+2•$\frac{n(n-1)}{2}$+n-1
=n2����;
(2)∵an+1 =2nan����,
∴$\frac{{a}_{n+1}}{{a}_{n}}$=2n,
$\frac{{a}_{n}}{{a}_{n-1}}$=2n-1���,
$\frac{{a}_{n-1}}{{a}_{n-2}}$=2n-2���,
…
$\frac{{a}_{2}}{{a}_{1}}$=2��,
累乘得:$\frac{{a}_{n}}{{a}_{1}}$=2•22•…•2n-2•2n-1=${2}^{\frac{n(n-1)}{2}}$�,
又∵a1=1��,
∴an=${2}^{\frac{n(n-1)}{2}}$�;
(3)∵an+1=a${\;}_{n}^{2}$(an >0),
∴l(xiāng)og2an+1=log2a${\;}_{n}^{2}$=2log2an��,
∴$\frac{lo{g}_{2}{a}_{n+1}}{lo{g}_{2}{a}_{n}}$=2��,
又∵log2a1=log22=1�,
∴數(shù)列{log2an}是以1為首項、2為公比的等比數(shù)列����,
∴l(xiāng)og2an=2n-1,
∴an=${2}^{{2}^{n-1}}$��;
(4)∵an+1=2an+1�����,
∴an+1+1=2(an+1)���,
又∵a1+1=1+1=2��,
∴數(shù)列{an+1}是以首項�����、公比均為2的等比數(shù)列�,
∴an+1=2n,
∴an=2n-1��;
(5)∵an+1=$\frac{2{a}_{n}}{2+{a}_{n}}$�����,
∴$\frac{1}{{a}_{n+1}}$=$\frac{2+{a}_{n}}{2{a}_{n}}$=$\frac{1}{{a}_{n}}$+$\frac{1}{2}$�����,
又∵$\frac{1}{{a}_{1}}$=1���,
∴數(shù)列{$\frac{1}{{a}_{n}}$}是以1為首項、$\frac{1}{2}$為公差的等差數(shù)列�����,
∴$\frac{1}{{a}_{n}}$=1+$\frac{1}{2}$(n-1)=$\frac{1}{2}$(n+1)�,
∴an=$\frac{2}{n+1}$.
點評 本題考查數(shù)列的通項�����,考查運算求解能力��,注意解題方法的積累����,屬于中檔題.
