题目内容

已知等差数列前三项为a,4,3a,前n项和为SnSk = 2550.

(Ⅰ)求ak的值;

(Ⅱ)求).

解:(Ⅰ)设该等差数列为{an},则a1 = aa2 = 4,a3 = 3aSk = 2550.

由已知有a+3a = 2×4,解得首项a1 = a = 2,公差d = a2a1= 2.         

        代入公式得  

整理得 k2k-2550 = 0,

解得 k = 50,k = -51(舍去).

        ∴ a = 2,k = 50.                                                  

(Ⅱ)由Sn= n n+1),

                    

                     ,                                 

.                   

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(01全国卷文) (12分)

已知等差数列前三项为a,4,3a,前n项和为SnSk = 2550.

(Ⅰ)求ak的值;

(Ⅱ)求().

已知等差数列前三项为a,4,3a,前n项的和为Sn,Sk=2550.

(Ⅰ)求a及k的值;

(Ⅱ)求

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