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student_qwh

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student_qwh Posted 2018-1-25 19:49 |Read mode
求助,谢谢各位高手
在三角形ABC中,延长AB使BD=AB,连结CD,F是BC边上的一点,连接AF交CD于点E,EF=CE
CF=AB=BD,求角ABC的度数
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student_qwh

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 Author| student_qwh Posted 2018-1-25 19:49
我认为要倍长中线做,不知对不对
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isee

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isee Posted 2018-1-26 08:32
回复 1# student_qwh

120度

先证明 AF=CD(我没作添辅助线,在三角形ADE中将BFC看作是梅氏截线)

延长FB至P,使BP=CF(=AB=BD),连接AP,由题设可证三角形AFP全等于三角形DCB。

于是AP=BD=AB,正三角形ABP。
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游客

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游客 Posted 2018-1-26 10:53
未命名.PNG

这样也可以,多添了辅助线,但不用梅氏定理。
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游客

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游客 Posted 2018-1-27 15:59
如果可以用余弦定理的话,可以不添辅助线,直接算。
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student_qwh

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 Author| student_qwh Posted 2018-1-28 09:43
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