如图,令y=kx-3=0得x=| 3 |
| k |
则直线y=kx-3与x轴交点坐标为(
| 3 |
| k |
| 3 |
| k |
令x=0,得y=-3,则直线y=kx-3与y轴交点坐标为(0,-3)即B(0,-3),
方法1:当k>0时,由S△AOB=
| 1 |
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| k |
解得k=
| 3 |
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当k<0时,由S△AOB=
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| k |
解得k=-
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所以,k=
| 3 |
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方法2:由S△AOB=
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| k |
解得k=±
| 3 |
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如图,令y=kx-3=0得x=| 3 |
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