(I)∵数列{an}满足:a1=1,an+1=
(n∈N*),设bn=a2n-1,
an+1n为奇数 2ann为偶数
∴b2=a3=2a2=2(a1+1)=4,
b3=a5=2a4=2(a3+1)=10,
同理,bn+1=a2n+1=2a2n=2(a2n+1+1)=2(bn+1)=2bn+2.
(II)①b1=a1=1,b1+2≠0,
=
bn+1+2
bn+2
=2,2bn+2+2
bn+2
∴数列{bn+2}为等比数列.
②由①知bn+2=3×2n?1,
∴bn=3×2n?1?2,
∴a2n+1=3×2n?1?2,
a2n=a2n?1+1=3×2n?1?1,
∵a2k,a2k+1,9+a2k+2成等比数列,
∴(3×2k-2)2=(3-2k-1-1)(3×2k+8),
令2k=t,得(3t-2)2=(
t?1)(3t+8),3 2
整理,得3t2-14t+8=0,
解得t=
或t=4,2 3
∵k∈N*,∴2k=4,解得k=2.
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