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11 lines
660 B
11 lines
660 B
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- 因为$C$是定点,$E$是动点,$CE$长度固定,所以$E$一定在以$C$为圆心,以$CE=2$为半径的圆上!
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- 因为$E$在四边形内部,所以不是整个圆,而是一个$\frac{1}{4}$圆。
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- 数形结合解决问题:当$E_0$落在$BC$上时,$\angle ABE$最大, 最大值是$90^{\circ}$
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- 当$BE_1$与$CE_1$垂直时,$BE_1$是圆的切线,此时$\angle ABE$最小
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- 根据三角函数知识知道$E_1C=2, BC=4$
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$\therefore \angle E_1BC=30^{\circ}$
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结论:$60^{\circ}<=\angle ABE <=90^{\circ}$ |