已知等差数列【an】满足:a3=7,a5+a7=26.【an】的前n项和为Sn.(1)求a4及Sn;(2)bn=1/(an^2-1)(n属于N*),求数列【bn】的前n项和Tn

来源:学生作业帮助网 编辑:作业帮 时间:2024/05/04 02:03:06
已知等差数列【an】满足:a3=7,a5+a7=26.【an】的前n项和为Sn.(1)求a4及Sn;(2)bn=1/(an^2-1)(n属于N*),求数列【bn】的前n项和Tn

已知等差数列【an】满足:a3=7,a5+a7=26.【an】的前n项和为Sn.(1)求a4及Sn;(2)bn=1/(an^2-1)(n属于N*),求数列【bn】的前n项和Tn
已知等差数列【an】满足:a3=7,a5+a7=26.【an】的前n项和为Sn.(1)求a4及Sn;
(2)bn=1/(an^2-1)(n属于N*),求数列【bn】的前n项和Tn

已知等差数列【an】满足:a3=7,a5+a7=26.【an】的前n项和为Sn.(1)求a4及Sn;(2)bn=1/(an^2-1)(n属于N*),求数列【bn】的前n项和Tn
a5=a3+2d,a7=a3+4d
a5+a7=2a3+6d
26=2*7+6d
d=2
a4=a3+d=7+2=9
a1=a3-2d=7-2*2=3
Sn=na1+n(n-1)d/2=n^2+2n
an=a1+nd=3+2n
bn=1/(an^2-1)=1/[4(n+2)(n+1)]=1/4[(1/(n+1)-1/(n+2)]

设等差为d,则a5 = a3+ 2d,a7 = a3+ 4d 故有:
a3 + 2d + (a3 + 4d)=26
把a3 = 7代入上式得:d = 2
所以 a4 = a3 + d = 9
a1 = a3 - 2d = 3
所以 Sn = na1 + [n(n-1)d]/2
= 3n + n^2 - n = n^2 + 2n

(1)因为a5+a7=26
所以a6=13则公差d=(13-7)/(6-3)=2
所以an=7+2(n-3)=2n+1
所以a4=9.Sn=(2n+1)(n+1)
(2)bn=1/2n(2n+2)=1/4(1/n-1/(n+1))
所以Tn=1/4(1-1/2+1/2-2/3+2/3-3/4+...+1/n-1/(n+1))=1/4*n/(n+1)=n/4(n+1)

已知正项等差数列{an}满足a3*a4=117,a2+a5=22,求通项an 已知等差数列(an)满足:a3=7、a5+a7=26、求前n项和Sn 已知等差数列{an}满足:a3=7,a5+a7=26,{an}前n项和为sn,求an及sn 已知等差数列{an}满足:a3=7,a5+a7=26.{an}的前n项和Sn.求a4及sn 已知等差数列{an}满足a3=7,a5+a7=26{an}的前n项和为Sn求a4及Sn 已知等差数列{An}满足:a3=7 ,a5+a7=26 ,{An}的前n项和为Sn已知等差数列{An}满足:a3=7 ,a5+a7=26 ,{An}的前n项和为Sn(1)求An 及Sn(2)令bn=1/an的2次方-1 (n属于正自然数),求数列{bn}的 已知等差数列an满足:a3=7 a5+a7=26已知bn=1/4n^2+4n 求bn前n项和.Tn. 已知等差数列 an满足a2+a4=4,a3+a5=10,则它的前十项和为多少 已知等差数列an满足a3=7,a5+a7=26已知等差数列{an}满足:a3=7,a5+a7=26.{an}的前n项和为Sn.(1)求an及Sn;(2)令bn=1/an^2-1(n属于N),求数列{bn}的前n项和Tn 已知{an}为等差数列,a3+a8=22,a6=7,则a5=【数列问题】 已知等差数列{an}中,a3+a8=22,a6=7,则a5=() 已知等差数列an中,a3+a8=22,a6=7,则a5 = 求教方法. 已知数列[An]为等差数列,a1+a3+a5=17,a4=7,则S6= 已知{an}为等差数列,a3+a8=22,a6=7,求a5 已知等差数列{an}满足:a3=7,a5+a7=26.⑵令Tn=S1+S2+…+Sn(nεN^+)求T10. 已知等差数列{an}满足a2+a4=4,a3+a5=10,则S10=? 已知等差数列{an}满足a2+a4=4,a3+a5=10,求{an}的通项公式及{an}的前n项和sn 已知等比数列{An}中,满足a1=3,且4a1,2a2,a3成等差数列,则a3+a4+a5等于?