早教吧作业答案频道 -->数学-->
数列{an}满足a1=2,a(n+1)=an^2+6an+6,求an的通项
题目详情
数列{an}满足a1=2,a(n+1)=an^2+6an+6,求an的通项
▼优质解答
答案和解析
a1=2>0 数列{an}各项均为正.
a(n+1)=an²+6an+6
a(n+1)+3=an²+6an+9=(an+3)²
lg[a(n+1)+3]=lg[(an+3)²]=2lg(an +3)
lg[a(n+1)+3]/lg(an +3)=2,为定值.
lg(a1+3)=lg5
数列{lg(an +3)}是以lg5为首项,2为公比的等比数列
lg(an +3)=(lg5)×2^(n-1)=lg[5^[2^(n-1)]]
an +3=5^[2^(n-1)]
an=5^[2^(n-1)] -3
a(n+1)=an²+6an+6
a(n+1)+3=an²+6an+9=(an+3)²
lg[a(n+1)+3]=lg[(an+3)²]=2lg(an +3)
lg[a(n+1)+3]/lg(an +3)=2,为定值.
lg(a1+3)=lg5
数列{lg(an +3)}是以lg5为首项,2为公比的等比数列
lg(an +3)=(lg5)×2^(n-1)=lg[5^[2^(n-1)]]
an +3=5^[2^(n-1)]
an=5^[2^(n-1)] -3
看了 数列{an}满足a1=2,a...的网友还看了以下:
已知数列{an}满足a1=-1,an+1-2an-3=0;数列{bn}满足bn=log2(an+3 2020-05-13 …
已知等差数列{An}前n项和Sn.且满足a2=3.S6=36(1)求数列{An}的通项公式(2)数 2020-05-14 …
数列{An}满足A1=1,An+1=An/2An+1 数列Bn的前n项和为Sn=12-12(2/3 2020-05-15 …
高二数学已知各项均为正数的数列{an}的前n项和Sn,且满足s1>1,6sn=(an+1).(an 2020-06-27 …
已知数列{an},{bn}满足2Sn=(an+2)bn,其中Sn是数列{an}的前n项和.(1)若 2020-07-20 …
已知数列{an}的各项均为正数,且满足an+1=an+(二倍的根号下an)+1,a1=2.(1)求 2020-07-22 …
一个递推公式求前n项和,已知数列{an},满足an=(an-1)+1/(2n-1)(2n+1),求 2020-08-01 …
已知等差数列an满足a2=0,a6十a8=一10.求数列an的通项公式?求数列{an÷2已知等差数列 2020-10-31 …
1.数列an满足a1=1,且Sn=2an+n,求数列an的通项公式.1.数列an满足a1=1,且Sn 2020-12-05 …
已知数列{an}满足a1=1/2,3(an+1-an)(an+1-an)=(1+an+1)(1-an 2020-12-09 …