设数列的{an}前n项和为Sn 且满足2a(n)= 3Sn-5/2S(n-1)-2(n>=2) a(1)=2.(1) 求数列{an}的通项公式(2)证明:1/2(log(2)Sn+log(2)S(n+2))<log(2)S(n+1)

来源:学生作业帮助网 编辑:六六作业网 时间:2024/11/15 17:41:27
设数列的{an}前n项和为Sn且满足2a(n)=3Sn-5/2S(n-1)-2(n>=2)a(1)=2.(1)求数列{an}的通项公式(2)证明:1/2(log(2)Sn+log(2)S(n+2))<

设数列的{an}前n项和为Sn 且满足2a(n)= 3Sn-5/2S(n-1)-2(n>=2) a(1)=2.(1) 求数列{an}的通项公式(2)证明:1/2(log(2)Sn+log(2)S(n+2))<log(2)S(n+1)
设数列的{an}前n项和为Sn 且满足2a(n)= 3Sn-5/2S(n-1)-2(n>=2) a(1)=2.(1) 求数列{an}的通项公式(2)证明:1/2(log(2)Sn+log(2)S(n+2))<log(2)S(n+1)

设数列的{an}前n项和为Sn 且满足2a(n)= 3Sn-5/2S(n-1)-2(n>=2) a(1)=2.(1) 求数列{an}的通项公式(2)证明:1/2(log(2)Sn+log(2)S(n+2))<log(2)S(n+1)
2a(n)= 3Sn-5/2S(n-1)-2
即2[Sn-S(n-1)]=3Sn-(5/2)S(n-1)-2
Sn=(1/2)S(n-1)+2
Sn-4=(1/2)[S(n-1)-4]
所以{Sn-4}是公比为1/2的等比数列
首项=S1-4=2-4=-2
所以Sn-4=(-2)*(1/2)^(n-1)=
故Sn=-2/2^(n-1)+4
S(n-1)=-2/2^(n-2)+4
所以通项公式an=Sn-S(n-1)=1/2^(n-2)
log2 Sn=log2 [4-1/2^(n-2)]=2-log2 (1-1/2^n)
log2 S(n+2)=log2 [4-1/2^n]=2-log2 [1-1/2^(n+2)]
log2 S(n+1)=log2 [4-1/2^(n-1)]=2-log2 [1-1/2^(n+1)]
log2 Sn+log2 Sn=4-log2 (1-1/2^n)[1-1/2^(n+2)]
2log2 S(n+1)=4-2log2 [1-1/2^(n+1)]=4-2log2 [1-1/2^(n+1)]^2
要使不等式成立,只需 [1-1/2^(n+1)]^2>(1-1/2^n)[1-1/2^(n+2)]
即1-1/2^n+1/2^(2n+2)>1-1/2^n-1/2^(n+2)+1/2^(2n+2)
亦即-1/2^n>-1/2^n-1/2^(n+2)
显然成立
得证.

将an=Sn-S(n-1)代入整理的2Sn=S(n-1)+4,Sn=2^(n+1)-6,an=2^(n+1)(n>=2)
要证不等式由于log(2)x为增函数,故只要比较SnS(n+2)与S(n+1)的平方的大小,由之前解出的Sn通项容易解得,具体步骤略....

设数列An的前n项和为Sn,满足2Sn=An+1 -2^n+1+1,且A1.A2+5.A3成等差数列 求数列的设数列An的前n项和为Sn,满足2Sn=An+1 -2^n+1+1,且A1.A2+5.A3成等差数列 求数列的通项公式 【高考】若数列{an}满足,a1=1,且a(n+1)=an/(1+an),设数列{bn}的前n项和为Sn,且Sn=2-bn,求{bn/an}的前...【高考】若数列{an}满足,a1=1,且a(n+1)=an/(1+an),设数列{bn}的前n项和为Sn,且Sn=2-bn,求{bn/an}的前n项和Tn 已知数列{an}的前n项和为sn,且满足sn=n 求:设数列 {an}的前n项和为Sn,数列{Sn}的前n项和为Tn,满足Tn=2Sn一n²,n∈求:设数列 {an}的前n项和为Sn,数列{Sn}的前n项和为Tn,满足Tn=2Sn一n²,n∈N 设数列{an}的前n项和为Sn,且3Sn=an+4.(1)求数列{an}的通项公式;(2)若数列{bn}满足bn=3Sn,求数列...设数列{an}的前n项和为Sn,且3Sn=an+4.(1)求数列{an}的通项公式;(2)若数列{bn}满足bn=3Sn,求数 设数列an的前n项和为Sn,满足2Sn=an-2∧n+1 +1 ,且a1,a2+5,a3成等差设数列an的前n项和为Sn,满足2Sn=an-2∧n+1 +1 ,且a1,a2+5,a3成等差数列.求a1,an的通项 设数列{an}的前n项和为Sn,对任意n∈N*满足2Sn=an(an+1),且an≠0 (1)求数列an的通项公式设数列{an}的前n项和为Sn,对任意n∈N*满足2Sn=an(an+1),且an≠0(1)求数列an的通项公式 高一数学数列的题目(在线等答案)设等差数列{an}的前n项和为Sn,且a1=2,a3=6,设数列{1/Sn}的前n项和是Tn,求T2013的值(已求出 an=2n,Sn=n^2+n)设数列{an}的前n项和为Sn,an与Sn满足an+Sn=2,令bn=Sn+mS(n+1), 已知数列{an}的前n项和为Sn,且满足Sn=2an-1(n属于正整数),求数列{an}的通项公式an 设数列{An}的前n项和为Sn,且满足Sn=2An-3n,n=1,2,3……(1)设Bn=An+3,求证:数列{Bn}是等比数列;...设数列{An}的前n项和为Sn,且满足Sn=2An-3n,n=1,2,3……(1)设Bn=An+3,求证:数列{Bn}是等比数列;(2)求数 数列an 的前n项和为Sn 且满足3an=2sn-4n+9(1)求an的通项公式(2)设bn=(数列an 的前n项和为Sn 且满足3an=2sn-4n+9(1)求an的通项公式(2)设bn=(2n-1)an 求数列bn的前n项和为Tn 已知数列{an}的前n项和为Sn,且满足Sn=2an-1,n为正整数,求数列{an}的通项公式anRT , 已知数列{an}的前n项和为Sn,且满足an+Sn=3-8/2n次方,又设bn=2n次方an (1)求数列的通项公式 已知正数数列{an}的前n项和满足Sn>1,且6Sn已知各项均为正数的数列{an}的前n项和Sn满足S1>1,且6Sn=(an+1)(an+2),n∈N+1.设数列{bn}满足an((2^bn)-1)=1,并记Tn为{bn}的前n项和,求证:3Tn+1>log2(an+3),n∈N+.请一定 已知正数数列{an},其前n项和Sn满足10Sn=an^2+5an+6,且a1,a3,a15成等比数列,(1)求数列{an}的通项(通项为an=5n-3) (2)设bn=2/[an*a(n+1)],Sn是数列{bn}的前n项和,求使Sn 高中数学. 设Sn是数列{an}的前n项和,且Sn=2an+n (1)证明:数列{an-1}是等高中数学. 设Sn是数列{an}的前n项和,且Sn=2an+n (1)证明:数列{an-1}是等比数列 (2)数列{bn}满足bn=1/(2-an),证明:b1+b2+.+bn<1 设数列{an}的前n和为Sn,且an+Sn=1(n属于正自然数).(1)求{an}的通项公式(2)若数列{bn}满足b1...设数列{an}的前n和为Sn,且an+Sn=1(n属于正自然数).(1)求{an}的通项公式(2)若数列{bn}满足b1=1且b(n- 设数列{an}为正项数列,前n项的和为Sn,且an,Sn,an^2成等差数列,求an通项公式