已知an是各项均为正数的等比数列
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正数项等比数列an/an-1=q,q>0根号an/根号an-1=根号q,所以{根号an}仍是等比数列.
是原数列是a1a1qa1q^2a1q^3a1q^4.根号an根号a1(根号a1)*(根号q)(根号a1)*q(根号a1)*(根号q)*q.任意相邻两项比值为是根号q因为原来q是等比数列公比,根号q不会
是{an}是各项均为正数的等比数列q大于0{根号an}是以根号a1为首项根号q为公比的等比数列
.{An}为正数等比数列.那么等比数列的通项公式是:An=A1×q^(n-1)将两边同时开方等式仍然相等.An^1/2=(A1^1/2)×[q^(n-1)]^1/2即
a1=3,所以S2=6+d,S3=9+3db1=1,b2=q,b3=q^2所以(6+d)q=64(9+3d)q^2=960相除(9+3d)/(6+d)*q=15q=15(6+d)/(9+3d)代入(6
设an的公差为d,bn的公比为qa2=a1+d=3+d,b2=b1*q=qban/ba(n-1)=q^(an-a(n-1))=q^d=64(明显q不等于1)b2s2=646q+dq=64,an各项均为
在等比数列中有a5a6=a4a7=a3a8=a2a9=a1a10所以有log3a1+log3a2+...+log3a10=log3(a5a6*a4a7*a3a8*a2a9*a1a10)=5log3a5
数列各项均为正,Sn>0.2√Sn是a(n+2)与an的等比中项,则(2√Sn)²=(an+2)an4Sn=an²+2ann=1时,4a1=4S1=a1²+2a1a1
(1)根据题意,设公差为d则a3=a1+2d=2d+1a9=a1+8d=8d+1有(2d+1)^2=8d+1d=1故通项:an=n(2)根据题意,设公比为q则b2=qb3=q^2有q-0.5q^2=0
①依题意,得(an+2)/2=根号下(2Sn),∴a1+2=2根号下(2S1)=2根号下(2a1),∴(a1-2)的平方=0,∴a1=2,由a2+2=2根号下(2S2)=2根号下[2(2+a2)],得
∵(an+1)²-an+1×an-2an²=0∴(an+1+an)(an+1-2an)=0∴an+1-2an=0,an+1+an=0(舍去)∴an+1=2an∴an是等比数列,设a
等比数列,则:a1a3=(a2)²,a3a5=(a4)²,则:a1a3+2a2a4+a3a5=(a2)²+2a2a4+(a4)²=(a2+a4)²=1
由题意得1S3=a1+a2+a3=7……1;6a2=a1+1+a3+6……22式+1式得a2=2……3将3式代入12得q=2或1/2a1=4或1an=4*(1/2)^(n-1)或an=2^(n-1)2
(1)当n=1时,a1=s1=14a21+12a1−34,解出a1=3,又4Sn=an2+2an-3①当n≥2时4sn-1=an-12+2an-1-3②①-②4an=an2-an-12+2(an-an
a1+a2+...+an=(1/2)(an²+an)a1+a2+...+a(n-1)=(1/2)(a(n-1)²+a(n-1))两式相减得an=(1/2)(an²+an)
1.A(n+1)^2*An+A(n+1)*An^2+A(n+1)^2-An^2=0两边同除以A(n+1)²An²1/An+1/A(n+1)+1/An²-1/A(n+1)&
n>=2时,S[n]=1/4*(a[n]+1)^2;S[n-1]=1/4*(a[n-1]+1)^2两式相减得到a[n]=1/4*(a[n]^2+2a[n]-a[n-1]^2-2a[n-1])化简得到a
由等比数列的性质知,a1a2a3,a4a5a6,a7a8a9成等比数列,所以a4a5a6=52.故答案为52
由题意知2an=Sn+1/2,an>0,当n=1时,2a1=a1+1/2,解得a1=1/2,当n≥2时,Sn=2an-1/2,S(n-1)=2a(n-1)-1/2,两式相减得an=Sn-S(n-1)=