数列an中 a1 =,当n1≥2时其前n项的和Sn=Sn² Sn-1

当n>1时,an=sn-sn-1代入化简得：1/Sn-1/Sn-1=2所以：1/Sn=2n-1所以：Sn=1/(2n-1)当n>1时,an=sn-sn-1=-2/[(2n-1)(2n-3)]当n=1时

（1）由[S(n)]^2=a(n)[S(n)-1/2]以及a(n)=S(n)-S(n-1),n≥2得[S(n)]^2=[S(n)-S(n-1)][S(n)-1/2],n≥2整理得2S(n)S(n-1)

(Sn)²=[Sn-S(n-1)](Sn-1/2)(Sn)²=(Sn)²-Sn/2-SnS(n-1)+S(n-1)/2Sn+2SnS(n-1)-S(n-1)=0S(n-1

2Sn²=2anSn-an,知an=Sn-S(n-1)代换后化简可得（过程不难但打起来很闹心……）1/Sn-1/S(n-1)=2故而1/Sn的通项公式为1/Sn=2n-1（1/S1=1）,即

an,Sn,Sn-1/2成等比数列an(Sn-1/2)=Sn^2a2(S2-1/2)=S2^2a2(a2+1/2)=(a2+1)^2a2=-2/3a3(S3-1/2)=S3^2a3(a3-1/6)=(

（1）当n≥2时an=(√Sn+√Sn-1)/2Sn-Sn-1=(√Sn+√Sn-1)/2√Sn-√Sn-1=1/2∴数列（根号下Sn）是一个等差数列（2）由（1）得√Sn=1+（n-1)/2=(n+

因为an,Sn,Sn-1/2成等比数列Sn（平方）=an*（Sn-1/2）由an=Sn-S（n-1）Sn（平方）=（Sn-S（n-1））*（Sn-1/2）化简得S（n-1）*Sn=S（n-1）/2-S

an=Sn-S(n-1)=(√Sn)^2-[√S(n-1)]^2=[√Sn+√S(n-1)]/2√Sn-√S(n-1)=1/2所以√Sn是一个以√S1=1为首项1/2为公差的等差数列√Sn=1+（n-

n≥2时,Sn=n²anSn-1=(n-1)²a(n-1)Sn-Sn-1=an=n²an-(n-1)²a(n-1)n²an-an=(n-1)²

(1)a(n+1)+1=2(an+1)数列an+1=2^nan=2^n-1你把项数与+1写清楚,或用文字描述,题不难

an+2Sn·S(n-1)=0(n≥2)Sn-S(n-1)=an所以Sn-S(n-1)+2Sn·S(n-1)=0(n≥2)两边同时除以Sn·S(n-1),得1/S(n-1)-1/sn+2=0即1/Sn

an,Sn,Sn-1/2成等比数列an(Sn-1/2)=Sn^2a2(S2-1/2)=S2^2a2(a2+1/2)=(a2+1)^2a2=-2/3a3(S3-1/2)=S3^2a3(a3-1/6)=(

a1a2=2²a1a2a3=3²所以a3=3²/2²同理a5=5²/4²所以a3+a5=61/16

由题意a1*a2*...*a（n-1）*an=n²所以a1*a2*...*a（n-1）=（n-1）²两式相除得:an=n²/（n-1）²,n≥2所以a3=9/4

a(n+1)=an+na(n+1)-an=na2-a1=1a3-a2=2a4-a3=3.an-a(n-1)=n-1叠加得an-a1=1+2+...+(n-1)=n(n-1)/2所以an=a1+n(n-

题目是不是错了?经化简可得2Sn/Sn-1=1-(Sn-1/Sn),发现Sn/Sn-1无解

让我来详细解答吧：（1）Sn²=an(Sn-1)Sn²=[sn-s(n-1)]*（sn-1)=Sn²-sn*sn(n-1)-sn+sn(n-1)sn-sn(n-1)=-s

an=Sn-S(n-1))n>=2时,Sn^2=(Sn-S(n-1))(Sn-1/2)化简得0=-SnS(n-1)-(1/2)Sn+(1/2)S(n-1).即1/Sn-1/S(n-1)=2所以1/Sn

Sn²=an(Sn-1)Sn²=[sn-s(n-1)]*（sn-1)=Sn²-sn*sn(n-1)-sn+sn(n-1)sn-sn(n-1)=-sn*sn(n-1)两边同

解显然是等差数列.