数列an是公比大于1的等比数列,sn为数列an的前n项和,已知s3=7
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当n=1时,b1=5+a1;当n≥2时,bn=5^n-(-1)^n×3(a1+1)×4^﹙n-2﹚(a1>-1).①当n为偶数时,5^n-3(a1+1)×4^(n-2)<5^n+1+3(a1+1)×4
loganan+1-log(an-1)an=logan(an×q)-log(an-1)(an-1×q)=1+loganq-1-log(an-1)q=loganq-log(an-1)q<0所以递减
s3=a1+a2+a3=7,a3=a1q*q,a2=a1*q,2*3a2=(a1+3)+(a3+4)解得:a1=1,q=2,之后自己算吧
设数列An的公比为q则:An=(a1)q^(n-1)而:a10^2=a15所以:((a1)q^(10-1))^2=(a1)q^(15-1)q^4=1/a1因q>1,因此:a1>0设另有数列Bn,Bn=
{1+an}的首项为3(1+an)=3*2^(n-1)1+a(6)=3*2^5=96a(6)=95
数列{1+2an}是公比为2的等比数列:1+2an=(1+2a1)*2^(n-1)=5*2^(n-1);an=(5*2^(n-1)-1)/2a6=(5*2^(6-1)-1)/2=159/2
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
a1*p=a2a1*p^3=a4,a1*p-a1=a1*p^3-a1*Pp-1=p^(p^2-1);(p-1)(p*(p+1)-1)=0,p=1,或p^2+p-1=0,p=(-1+√5)/2,p=(-
a1,a2,a4成等差数列2a2=a1+a4即2a1*q=a1+a1q^3a1不为0所以:2q=1+q^3q^3-2q+1=0q^3-q^2+q^2-2q+1=0q^2*(q-1)+(q-1)^2=0
a1,a2,a4成等差数列所以2a2=a1+a4{an}是等比数列a2=a1qa4=a1q^3所以2×a1q=a1+a1q^3即:q^3-2q+1=0(q-1)(q^2+q-1)=0q=1或q=(-1
等比数列an的公比大于1,设公比为q,且q>1a1a3=6a2,a1*a2*q=6a2a1*q=6a2=6a1.a2.a3-8成等差,2a2=a1+a3-82*6=6/q+6*q-820q=6+6q^
作差a(n+1)-a(n)=a1q^n-a1q^(n-1)=a1q^(n-1)(q-1)>0若q0综上所述充分不必要条件附不必要的反例a1=-2q=1/2
a1a3=a2^2a1a2a3=8a2=2a1+a2+a3=7a1+a3=5a1*a3=4a1=1a3=4q=2a1=4a3=1q=1/2(舍)Sn=a1(1-q^n)/(1-q)=2^n-1
第一个晕,才看懂.明显公比是1第二个a3*a5=4提示你等比数列中,a2*a4=a3的平方a4*a6=a5的平方所以a3+a5平方=25an大于0,所以a3+a5=5,所以a3=1a5=4公比是2,a
(A10)^2=A15=A10*q^5,所以:A10=q^5=A5*q^5.,所以A5=1故A1=q^(-4),A2=q^(-3),A3=q^(-0),A4=^(q^-1).1/A1=q^4=A9,1
lga1+lga2+lga3+.+lgan=lga1+lgQ+lga1+2lgQ+lga1+……+(n-1)lgQ+lga1=nlga1+n(n-1)lgQ/2
1、设{an}公比为qa1+a3=7-a2a1+3,3a2,a3+4构成等差数列2*3a2=a1+3+a3+46a2=7-a2+7a2=2则S3=a2/q+a2+a2q=2/q+2+2q=7(q-2)
(1)令S=a1+a2+.+an,即S=a1+a1*q+.+a1*q^(n-1)则qS=a1*q+a1*q^2+a1*q^n故(1-q)S=a1-a1*q^n得S=a1(1-q^n)/(1-q)(2)
好像无实根啊,题错了?a1+a2+a3=7,\x09a2=7-a1-a3,\x09a22=a12+a32+49+a1a3-7a1-7a3a1xa3=a22=a12+a32+49+a1a3-7a1-7a