已知:如图1,点C为线段AB上一点,△ACM,△CBN都是等边三角形,AN交MC于点E,BM交CN于点F.(答好有追问)
已知:如图1,点C为线段AB上一点,△ACM,△CBN都是等边三角形,AN交MC于点E,BM交CN于点F.(1)CE=CF(2)EF∥AB要过程答好有追加悬赏...
已知:如图1,点C为线段AB上一点,△ACM,△CBN都是等边三角形,AN交MC于点E,BM交CN于点F.
(1)CE=CF
(2)EF∥AB
要过程
答好有追加悬赏 展开
(1)CE=CF
(2)EF∥AB
要过程
答好有追加悬赏 展开
展开全部
∠BAM=∠BCN=60°,∠ACM=∠ABN=60°
=>AM//CN,CM//BN
∠AEM=∠CEN,∠CFM=∠BFN
=>△AEM∽△CEN,△CFM∽△BFN
=>ME:EC=AM:CN,MF:FB=CM:BN
AM=CM,CN=BN
=>AM:CN=CM:BN
=>ME:EC=MF:FB
=>EF//CB (2)
=>∠CFE=∠BCF,∠CEF=∠ACE
=>∠CEF=∠CFE
=>CE=CF (1)
=>AM//CN,CM//BN
∠AEM=∠CEN,∠CFM=∠BFN
=>△AEM∽△CEN,△CFM∽△BFN
=>ME:EC=AM:CN,MF:FB=CM:BN
AM=CM,CN=BN
=>AM:CN=CM:BN
=>ME:EC=MF:FB
=>EF//CB (2)
=>∠CFE=∠BCF,∠CEF=∠ACE
=>∠CEF=∠CFE
=>CE=CF (1)
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