已知数列{an}的前几项和为Sn,点(n,Sn)(n∈N*)均在二次函数f(x)=3x²-2x的图像上。⑴求数列{an
1个回答
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(1) Sn=3n²-2n S(n-1)=3(n-1)²-2(n-1) an=Sn-S(n-1)=3n²-2n-3(n-1)²+2(n-1)=6n-5
(2) bn=3/[(6n-5)(6n+1)]=1/2×[1/(6n-5)-1/(6n+1)] Tn=1/2[1/1-1/7+1/7-1/13+…-1/(6n+1)]=3n/(6n+1)
(2) bn=3/[(6n-5)(6n+1)]=1/2×[1/(6n-5)-1/(6n+1)] Tn=1/2[1/1-1/7+1/7-1/13+…-1/(6n+1)]=3n/(6n+1)
追问
第二问是:设bn=3/an·a﹙n﹢1﹚,求数列﹛bn﹜的前n项和Tn.
追答
bn=3/[(6n-5)(6n+1)]=1/2×[1/(6n-5)-1/(6n+1)] Tn=1/2[1/1-1/7+1/7-1/13+…-1/(6n+1)]=3n/(6n+1)
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