22.已知數(shù)列{an}的a1 = 2.前n項(xiàng)和為Sn.且對(duì)于任意的 n∈N*,n≥2,an總是3Sn- 4與2 - Sn-1的等差中項(xiàng). ⑴求通項(xiàng)an, ⑵證明:(log2Sn + log2Sn+2)<log2Sn+1, ⑶令bn = - 1,Cn = log2()2,Tn.Rn分別為{bn}.{Cn} 的前n項(xiàng)和.解不等式:Tn<Rn, = an,g(n) = sn.解不等式:f2. 查看更多

 

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已知數(shù)列{an}中a1=2,前n項(xiàng)的和為Sn,且4tSn+1-(3t+8)Sn=8t,其中t<-3,n∈N*;
(1)證明數(shù)列{an}為等比數(shù)列;
(2)判定{an}的單調(diào)性,并證明.

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已知數(shù)列{an}中a1=2,前n項(xiàng)的和為Sn,且4tSn+1-(3t+8)Sn=8t,其中t<-3,n∈N*;
(1)證明數(shù)列{an}為等比數(shù)列;
(2)判定{an}的單調(diào)性,并證明.

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已知數(shù)列{an}中a1=2,前n項(xiàng)的和為Sn,且4tSn+1-(3t+8)Sn=8t,其中t<-3,n∈N*.

(1)證明數(shù)列{an}是等比數(shù)列;

(2)判定{an}的單凋性,并證明.

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已知數(shù)列{an}中a1=2,前n項(xiàng)的和為Sn,且4tSn+1-(3t+8)Sn=8t,其中t<-3,n∈N*;
(1)證明數(shù)列{an}為等比數(shù)列;
(2)判定{an}的單調(diào)性,并證明.

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已知數(shù)列{an}中a1=2,前n項(xiàng)的和為Sn,且4tSn+1-(3t+8)Sn=8t,其中t<-3,n∈N*;
(1)證明數(shù)列{an}為等比數(shù)列;
(2)判定{an}的單調(diào)性,并證明.

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