(6分)如圖,在△ABC中,AB=AC,ADBC,垂足為D,AEBC, DEAB.

證明:(1)AE=DC;(2)四邊形ADCE為矩形.

 

 

 (1)在△ABC中,∵AB=AC,ADBC,

BD=DC························································································································ 1分

AEBC, DEAB,

∴四邊形ABDE為平行四邊形························································································· 2分

BD=AE,····················································································································· 3分

BD=DC

AE = DC.··················································································································· 4分

 

 解法一:∵AEBC,AE = DC,

∴四邊形ADCE為平行四邊形.······················································································ 5分

又∵ADBC

∴∠ADC=90°,

∴四邊形ADCE為矩形.································································································ 6分

解法二:

AEBC,AE = DC,

∴四邊形ADCE為平行四邊形························································································· 5分

又∵四邊形ABDE為平行四邊形

AB=DE.∵AB=AC,∴DE=AC

∴四邊形ADCE為矩形.································································································ 6分

 

解析:略

 

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