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①当直线l与x轴垂直时,k不存在,直线方程为x=1,恰好与圆x2+y2=1相切于点A(1,0);
②当直线l与x轴不垂直时,原点到直线l的距离为:d=
|−k+
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此时直线l的方程为y=-
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因此,直线AB斜率为k1=
0−
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1−
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∴直线AB交x轴交于点A(1,0),交y轴于点C(0,2).
椭圆
| x2 |
| a2 |
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∴c=1,b=2,可得a2=b2+c2=5,椭圆方程为
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| 5 |
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故选C
| x2 |
| a2 |
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| x2 |
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| 5 |
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| 9 |
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| 5 |
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|−k+
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0−
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1−
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| x2 |
| 5 |
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