已知数列an的前n项和为sn,Sn n 1是1 2为首项和公差的等差数列

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已知数列an的前n项和为sn,Sn n 1是1 2为首项和公差的等差数列
已知数列{an}的前n项和为Sn,且Sn=n-5an-85,n属于正整数

a(1)=s(1)=1-5a(1)-85,6a(1)=-84,a(1)=-14.a(n+1)=s(n+1)-s(n)=(n+1)-5a(n+1)-85-[n-5a(n)-85]=1-5a(n+1)+5

已知数列{an}的前n项和为Sn=n^2-3n,求证:数列{an}是等差数列

因为Sn-Sn-1=n^2-3n-{(n-1)^2-3(n-1)}=2n-4.又由an=Sn-Sn-1,所以an=2n-4,最后还要验证一下,当n=1时,S1=a1,符合题意.d=an-an-1=2易

已知数列{an}前n项的和为Sn=2an-1 求

S(n-1)=2a(n-1)-1所以Sn-S(n-1)=2an-2a(n-1)因为Sn-S(n-1)=an所以an=2an-2a(n-1)所以an=2a(n-1)an/[a(n-1]=2所以an是等比

已知数列{an}的前n项和为Sn,Sn=(an-1)/3 (n∈N)

n=1,S1=a1=(a1-1)/3,a1=-1/2;n=2,S2=a1+a2=(a2-1)/3,a2=+1/4;an=Sn-Sn-1=(an-1)/3-(an-1-1)/3=an/3-an-1/32

已知数列{an}的前n项和为Sn,且Sn=n-5an-85,n∈N*

Sn=n-5an-85(1)S(n+1)=n+1-5a(n+1)-85(2)(2)-(1)整理得6a(n+1)=1+5an即a(n+1)-1=(5/6)(an-1)又由S1=a1=1-5a1-85得a

设 数列{an}的前n项和为Sn,已知b*an - 2^n=(b-1)Sn

2^(n+1)-2^n=2*2^n-2^n=2^nb*an-2^n=(b-1)Sn,b*a(n+1)-2^(n+1)=(b-1)S(n+1)两式相减(左-左=右-右):[b*a(n+1)-2^(n+1

已知数列an的前n项和为Sn,数列根号Sn+1是公比为2的等比数列

证:(1)根号Sn+1=(a1+1)*2^(n-1)=4*2^(n-1)=2^(n+1)Sn+1=2^(2n+2)=4^(n+1).1Sn=4^n.21式-2式Sn+1-Sn=4^(n+1)-4^na

已知数列{An}的前n项和为Sn,且Sn=n²+n(n∈N*)

1.n=1时,a1=S1=1²+1=2n≥2时,Sn=n²+nS(n-1)=(n-1)²+(n-1)an=Sn-S(n-1)=n²+n-(n-1)²-

已知数列{an}的通项为an=n,前n项和为Sn,求数列{1/Sn}的前n项和Tn的表达式

Sn=(n^2+n)/21/Sn=1/((n2+n)/2)=2/(n^2+n)Tn=1+2/6+2/12+2/30+.+2/n*(n+1)=1+(2/2-2/3)+(2/3+2/4)+.+(2/n-2

数列An的前n项和为Sn,已知A1=1,An+1=Sn*(n+2)/n,证明数列Sn/n是等比数列

为了避免混淆,我把下角标放在内.首先从数列本身的基本意义出发a=S-S其次,从已知a=S(n+2)/n出发a=S*(n+1)/(n-1)因此S-S=S*(n+1)/(n-1)移项整理S=S

已知数列{an}的前n项和为Sn,Sn=13(an−1)(n∈N*).

(Ⅰ)由S1=13(a1−1),得a1=13(a1−1)∴a1=−12又S2=13(a2−1),即a1+a2=13(a2−1),得a2=14.(Ⅱ)当n>1时,an=Sn−Sn−1=13(an−1)−

已知数列{an}的前n项和为Sn,且Sn=n-5an-85,n∈N*

(1)证明:∵Sn=n-5an-85,n∈N*(1)∴Sn+1=(n+1)-5an+1-85(2),由(2)-(1)可得:an+1=1-5(an+1-an),即:an+1-1=56(an-1),从而{

数学试题:已知数列{an}前n项和为Sn

S1=a1=1-1*a12a1=1a1=1/2S2=1-2a2=a1+a2=1/2+a23a2=1/2a2=1/6Sn=1-nanSn-1=1-(n-1)a(n-1)相减an=Sn-Sn-1=1-na

已知数列{an}的前n项和为Sn,且Sn=23an+1(n∈N*);

(Ⅰ)a1=3,当n≥2时,Sn−1=23an−1+1,∴n≥2时,an=Sn−Sn−1=23an−23an−1,∴n≥2时,anan−1=−2∴数列an是首项为a1=3,公比为q=-2的等比数列,∴

已知数列{an}的前n项和为Sn

解题思路:方法:数列通项的求法:已知sn,求an。求和:错位相减法。解题过程:

已知数列an的前n项和公式为Sn=kq^n-k,求证数列an为等比数列

∵Sn=kq^n-k∴S(n+1)=kq^(n+1)-k∴a(n+1)=S(n+1)-Sn=[kq^(n+1)-k]-(kq^n-k)=k[q^(n+1)-q^n]=k[(q-1)q^na(n+1)/

已知数列{an}的前n项和为Sn=1/3(an-1)

Sn=1/3(an-1)Sn-1=1/3(an-1-1)Sn-Sn-1=1/3(an-an-1)即an=1/3(an-an-1)然后应该会了吧,可惜我用电脑不如手写的灵活,看看会了吗

已知数列{An}的前n项和Sn=3n²-2n,证明数列{An}为等差数列

当n=1时,a1=S1=1当n≥2时,an=Sn-S(n-1)=3n²-2n-3(n-1)²+2(n-1)=6n-5∵当n=1时,满足an=6n-5又∵an-a(n-1)=6n-5

一道关于数列 已知数列{An}的前n项和为Sn,Sn=3+2An,求An

Sn-S(n-1)=2An-2A(n-1)=An所以An=2A(n-1)An/2A(n-1)=2即An为等比为2的等比数列令n=1,S1=3+2A1=A1A1=-3所以An=-3*[2^(n-1)]