| 1 |
| x |
| 1−ax2−2x |
| x |
由题意知f′(x)<0有实数解,
∵x>0,
∴ax2+2x-1>0有正的实数解.
当a≥0时,显然满足;
当a<0时,只要△=4+4a>0,
∴-1<a<0,
综上所述,a>-1.
解法2:f′(x)=
| 1 |
| x |
| 1−ax2−2x |
| x |
由题意可知f′(x)<0在(0,+∞)内有实数解.
即1-ax2-2x<0在(0,+∞)内有实数解.
即a>
| 1 |
| x2 |
| 2 |
| x |
∵x∈(0,+∞)时,
| 1 |
| x2 |
| 2 |
| x |
| 1 |
| x |
故选C.
| 1 |
| 2 |
| 1 |
| x |
| 1−ax2−2x |
| x |
| 1 |
| x |
| 1−ax2−2x |
| x |
| 1 |
| x2 |
| 2 |
| x |
| 1 |
| x2 |
| 2 |
| x |
| 1 |
| x |