数列{an},{bn}满足anbn=1,an=n*n(n的平方)+3n+2,则{bn}的前10项之和为()
A、1/4 B、5/12 C、3/4 D、7/12
人气:139 ℃ 时间:2019-08-19 18:26:32
解答
an= n^2+3n+2
=(n+1)(n+2)
bn = 1/[(n+1)(n+2)]
= 1/(n+1) -1/(n+2)
S10
=b1+b2+..+b10
= (1/2-1/3) +(1/3-1/4) +..+(1/11-1/12)
=1/2-1/12
=5/12
推荐
- 数列an,bn满足anbn=1,an=n^2+3n+2,则bn的前n项之和为
- 数列{an}、{bn}满足an•bn=1,an=n2+3n+2,则{bn}的前10项之和等于( ) A.13 B.512 C.12 D.712
- 数列an,bn满足anbn=1,an=n²+3n+2,则bn的前十项之和是?
- 已知:an=3n-1,bn=2^n,求数列{anbn}的前n项和
- 已知:an=3n-2,bn=a^(2n-1),求数列{anbn}的前n项和
- kalenjin women won all their events as well(同义句转换)
- 虚数的虚数次方:i^i唯一吗
- 一个圆锥与一个圆柱的底面积比是3:2,体积比是2:5,如果圆柱的高与圆锥高之和是36厘米,求圆锥的高是多少厘米.
猜你喜欢
