{an}为等差数列,an不等于0,d为公差,求证:1/(a1a2)+1/(a2a3)+...+1/(an-1*an)=(n-1)/(aian)
人气:174 ℃ 时间:2020-03-23 11:35:53
解答
证明:左边=1/(a1a2)+1/(a2a3)+...+1/(an-1*an)=1/d(1/a1-1/a2)+1/d(1/a2-1/a3)+...+1/d(1/an-1-1/an)=1/d[(1/a2-1/a1)+(1/a3-1/a2)+...+(1/an-1-1/an)]=1/d[1/a1+(1/a2-1/a2)+(1/a3-1/a3)+...+(1/an-1 - 1/an-1)-...
推荐
- 已知数列an的首项a1不等于0,公差d不等于0,的等差数列,求Sn=1./a1a2+1/a2a3+.+1/ana(n+1)
- 设{an}是等差数列,且首项a1>0,公差d>0求证:1/a1a2+1/a2a3+…+1/anan+1=n/a1(a1+nd)
- 等差数列{1\an}满足a1=1,公差d=2,求a1a2+a2a3+……+anan+1的和
- an是首项为3,公差,公差为2的等差数列,则lim(1/a1a2+1/a2a3+……+1/a(n-1)an)=
- 设{an}是一个公差为d(d>0)的等差数列.若1/a1a2+1/a2a3+1/a3a4=3/4,且其前6项的和S6=21,则an=_.
- 现有含盐15%的盐水400g,要求将盐水浓度变为12%,某同学通过计算后加进了110g水,(列方程求水量是否正确
- 一支体温表含多少水银
- 永远坐在前排
猜你喜欢
