大师作文网在数列an中,Sn是数列an前n项和,a1=1,当n≥2时,sn^2=an(Sn-1/2) (1)证明1/Sn为等差数列
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在数列an中,Sn是数列an前n项和,a1=1,当n≥2时,sn^2=an(Sn-1/2) (1)证明1/Sn为等差数列,并求an
(2)设bn=Sn/2n+1,求数列bn的前n项和Tn
(3)是否存在自然数m,使得对任意自然数n属于N*,都有Tn<1/4(m-8)成立?若存在,求出m的最小值,若不存在,请说明理由
(2)设bn=Sn/2n+1,求数列bn的前n项和Tn
(3)是否存在自然数m,使得对任意自然数n属于N*,都有Tn<1/4(m-8)成立?若存在,求出m的最小值,若不存在,请说明理由
(Sn)²=[Sn-S(n-1)](Sn-1/2)
(Sn)²=(Sn)²-Sn/2-SnS(n-1)+S(n-1)/2
Sn+2SnS(n-1)-S(n-1)=0
S(n-1)-Sn=2SnS(n-1)
两边除以SnS(n-1)
1/Sn-1/S(n-1)=2
1/Sn等差,d=2
S1=a1=1
1/Sn=1/S1+2(n-1)=2n-1
Sn=1/(2n-1)
bn=1//[(2n-1)(2n+1)]
=1/2*2[(2n-1)(2n+1)]
=1/2*[(2n+1)-(2n+1)]/[(2n-1)(2n+1)]
=1/2*{(2n+1)/[(2n-1)(2n+1)]-(2n+1)/[(2n-1)(2n+1)]}
=1/2*[1/[(2n-1)-1/(2n+1)]
所以Tn=1/2*(1-1/3+1/3-1/5+1/5-1/7+……+1/[(2n-1)-1/(2n+1)]
=1/2*(1-1/(2n+1)]
=n/(2n+1)
Tn=1/(2+1/n) 随n增加而递增.
1/3=T1
(Sn)²=(Sn)²-Sn/2-SnS(n-1)+S(n-1)/2
Sn+2SnS(n-1)-S(n-1)=0
S(n-1)-Sn=2SnS(n-1)
两边除以SnS(n-1)
1/Sn-1/S(n-1)=2
1/Sn等差,d=2
S1=a1=1
1/Sn=1/S1+2(n-1)=2n-1
Sn=1/(2n-1)
bn=1//[(2n-1)(2n+1)]
=1/2*2[(2n-1)(2n+1)]
=1/2*[(2n+1)-(2n+1)]/[(2n-1)(2n+1)]
=1/2*{(2n+1)/[(2n-1)(2n+1)]-(2n+1)/[(2n-1)(2n+1)]}
=1/2*[1/[(2n-1)-1/(2n+1)]
所以Tn=1/2*(1-1/3+1/3-1/5+1/5-1/7+……+1/[(2n-1)-1/(2n+1)]
=1/2*(1-1/(2n+1)]
=n/(2n+1)
Tn=1/(2+1/n) 随n增加而递增.
1/3=T1
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