题目内容
在等差数列{an}中,公差d≠0,a2,a4,a7,成等比数列,则
=______.
| a1+a4 |
| a2 |
∵a2,a4,a7成等比数列,
∴a2•a7=a42,即(a1+d)(a1+6d)=(a1+3d)2,
解得a1=3d,或d=0(舍去),
由等差数列通项公式得an=a1+(n-1)d=3d+(n-1)d=(n+2)d
故
=
=
.
故答案为:
∴a2•a7=a42,即(a1+d)(a1+6d)=(a1+3d)2,
解得a1=3d,或d=0(舍去),
由等差数列通项公式得an=a1+(n-1)d=3d+(n-1)d=(n+2)d
故
| a1+a4 |
| a2 |
| 3d+6d |
| 4d |
| 9 |
| 4 |
故答案为:
| 9 |
| 4 |
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