等比数列an的公比·q大于一,且a1 a2 a3=7,a1a2a3=8
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第二题:1/(X-1)=1X>=2所以不等式解集为X=2第一题公比q若为正数的话,哪么应该大于1,因为要是q
(1)由a3=14=a1q2,以及q=-12可得a1=1.∴数列{an}的前n项和Sn=1×[1−(−12)n]1+12=2−2•(−12)n3.(2)证明:对任意k∈N+,2ak+2-(ak+ak+
我猜你的题目给出的条件是a(n+2)=a(n+1)+2an,就像楼上所列正解如下a3=a2+2a1=2a1+1a4=a3+2a2=2a1+1+2=2a1+3又an为等比数列,a2=a1*q,a3=a1
S4=a1(1-q^4)/(1-q)=5a1(1-q^2)/(1-q)1+q^2=5q^2=4因为q
q的倒数是大于1所以00所以3q=3-a1>0a1
已知等比数列{an}的公比q>1,a17^2=a24,求使a1+a2+a3+……+an>1/a1+1/a2+1/a3+……+1/an成立的n的取值范围.【解】a17^2=a24,a1^2q^32=a1
因为a2+a5=9/4,a3.a4=1/2所以a2(1+q^3)=9/4,a2^2.q^3=1/2(计算过程把q^3看作整体来解)即a2=2,q=1/2所以an=4.(1/2)^(n-1)
(1)a3*a4=a2*a5=1/2a2+a5=9/4-1
首先得求的a1a4=5s2...a1q^3=5(a1+a1q)又.a3=a1q^2=2...所以.2q=5(a1+a1q)得.a1=(2q)/(5(1+q))又因为.a3=a1q^2=2得.q=1.2
等比数列an=a1*q^(n-1),Sn=a1(1-q^n)/(1-q)∴a3=2=a1*q^(3-1)=a1*q^2S4=5S2=>a1(1-q^4)/(1-q)=5*a1(1-q^2)/(1-q)
S4=a1(1-q4)/(1-q),S2=a1(1-q2)/(1-q),已知S4=5S2,则a1(1-q4)/(1-q)=5a1(1-q2)/(1-q),即q=±2,又公比q
(1)S1→3=a1(1+q+q^2)=a1*(1-q^3)/(1-q)S4→6=a4(1+q+q^2)=a1*(1-q^3)/(1-q)*q^3S7→9=a7(1+q+q^2)=a1*(1-q^3)
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^
q>1a1+a8>a4+a5q
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
a1(1+q)=1,a1q^2(1+q)=4q^2=4,q=-2a4+a5=a1q^3(1+q)=(a3+a4)*q=-8
S4=a1(1-q4)/(1-q),S2=a1(1-q2)/(1-q),已知S4=5S2,则a1(1-q4)/(1-q)=5a1(1-q2)/(1-q),即q=±2,又公比q
∵等比数列{an}中,公比q=12,且log2a1+log2a2+…+log2a10=55=log2(a1a2…a10)=log2 (a1a10) 5,∴(a1a10)5=255,
lga1+lga2+lga3+.+lgan=lga1+lgQ+lga1+2lgQ+lga1+……+(n-1)lgQ+lga1=nlga1+n(n-1)lgQ/2