已知{an}是等差数列,其前n项和为Sn,{bn}是等比数列,且a1=b1=2,a4+b4=27,S4-b4=10
(1)求数列{an}与{bn}的通项公式;(2)记Tn=a1b1+a2b2+...+anbn,n∈N+,证明Tn-8=an-1bn+1...
(1)求数列{an}与{bn}的通项公式;(2)记Tn=a1b1+a2b2+...+anbn,n∈N+,证明Tn-8=an-1bn+1
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(1)设数列{an}的公差是d,{bn}的公比是q,依题意
2+3d+2q^3=27,①
8+6d-2q^3=10,②
①+②,10+9d=37,d=3,
代入①,11+2q^3=27,q^3=8,q=2.
∴an=2+3(n-1)=3n-1,
bn=2^n.
(2)Tn=2*2+5*2^2+8*2^3+……+(3n-1)*2^n,③
∴2Tn= 2*2^2+5*2^3+……+(3n-4)*2^n+(3n-1)*2^(n+1),④
③-④,-Tn=4+3(2^2+2^3+……+2^n)-(3n-1)*2^(n+1)
=4-3[2^2-2^(n+1)]-(3n-1)*2^(n+1),
=-8-(3n-4)*2^(n+1),
∴Tn=8+(3n-4)*2^(n+1),
∴Tn-8=a<n-1>b<n+1>.
2+3d+2q^3=27,①
8+6d-2q^3=10,②
①+②,10+9d=37,d=3,
代入①,11+2q^3=27,q^3=8,q=2.
∴an=2+3(n-1)=3n-1,
bn=2^n.
(2)Tn=2*2+5*2^2+8*2^3+……+(3n-1)*2^n,③
∴2Tn= 2*2^2+5*2^3+……+(3n-4)*2^n+(3n-1)*2^(n+1),④
③-④,-Tn=4+3(2^2+2^3+……+2^n)-(3n-1)*2^(n+1)
=4-3[2^2-2^(n+1)]-(3n-1)*2^(n+1),
=-8-(3n-4)*2^(n+1),
∴Tn=8+(3n-4)*2^(n+1),
∴Tn-8=a<n-1>b<n+1>.
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∵a4+b4=27,s4-b4=10 ∴a4+S4=37 ∴a4+2a1+2a4=37 ∴2a1+3a4=37
∴5a1+9d=37 ∴9d=27 ∴d=3 ∴an=a1+(n-1)d=3n-1
∵a4+b4=27 ∴11+2q³=27 ∴q³=8 ∴q=2 ∴bn=b1q^(n-1)=2^n
∵Tn=anb1+an-1b2+...+a1bn ∴2Tn=anb2+an-1b3+...+a2bn+a1bn+1
两式相减得:Tn=(an-an-1)b2+(an-1-an-2)b3+...+(a2-a1)bn+a1bn+1-anb1
=3(b2+b3+...+bn)+a1bn+1-anb1
=3×2²[2^(n-1)-1]+2×2^(n+1)-2an
=3×2×2^n-12+4×2^n-2an
=6bn-12+4bn-2an
∴Tn=10bn-12-2an 即 Tn+12=﹣2an+10bn
∴5a1+9d=37 ∴9d=27 ∴d=3 ∴an=a1+(n-1)d=3n-1
∵a4+b4=27 ∴11+2q³=27 ∴q³=8 ∴q=2 ∴bn=b1q^(n-1)=2^n
∵Tn=anb1+an-1b2+...+a1bn ∴2Tn=anb2+an-1b3+...+a2bn+a1bn+1
两式相减得:Tn=(an-an-1)b2+(an-1-an-2)b3+...+(a2-a1)bn+a1bn+1-anb1
=3(b2+b3+...+bn)+a1bn+1-anb1
=3×2²[2^(n-1)-1]+2×2^(n+1)-2an
=3×2×2^n-12+4×2^n-2an
=6bn-12+4bn-2an
∴Tn=10bn-12-2an 即 Tn+12=﹣2an+10bn
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