| 4x1−4 |
| x1−6 |
| 5x1 |
| x1−1 |
| 5x1 |
| x1−1 |
∴S△OQR=
| 1 |
| 2 |
| 1 |
| 2 |
| 5x1 |
| x1−1 |
10
| ||
| x1−1 |
10
| ||
| x1−1 |
则10x12-sx1+s=0,∵x1∈R,∴△=s2-40s≥0.又S>0,∴s≥40,当s=40时,x1=2.
∴当x1=2时,△OQR的面积最小,其值为40,此时l:y-4=
| 8−4 |
| 2−6 |
故答案为:x+y-10=0.
| 4x1−4 |
| x1−6 |
| 5x1 |
| x1−1 |
| 5x1 |
| x1−1 |
| 1 |
| 2 |
| 1 |
| 2 |
| 5x1 |
| x1−1 |
10
| ||
| x1−1 |
10
| ||
| x1−1 |
| 8−4 |
| 2−6 |