如图,已知AB=AC,AD=AE,DE=BC,且角1=角2,求证:四边形BCED是矩形

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如图,已知AB=AC,AD=AE,DE=BC,且角1=角2,求证:四边形BCED是矩形如图,已知AB=AC,AD=AE,DE=BC,且角1=角2,求证:四边形BCED是矩形如图,已知AB=AC,AD=

如图,已知AB=AC,AD=AE,DE=BC,且角1=角2,求证:四边形BCED是矩形
如图,已知AB=AC,AD=AE,DE=BC,且角1=角2,求证:四边形BCED是矩形

如图,已知AB=AC,AD=AE,DE=BC,且角1=角2,求证:四边形BCED是矩形
AB=AC,∠1=∠2,AD=AE,=>△ABD≌△ACE(SAS) =>∠ADB=∠AEC,BD=CE,
BD=CE,DE=BC =>平行四边形BCED ------(1)
AD=AE =>∠ADE=∠AED,又∵∠ADB=∠AEC =>∠ADB-∠ADE=∠AEC-∠AED =>∠EDB=∠DEC
平行四边形BCED =>=>∠EDB+∠DEC=180 =>∠EDB=90°---(2)
(1)(2) =>四边形BCED是矩形

AB=AC,∠1=∠2,AD=AE,=>△ABD≌△ACE(SAS) =>∠ADB=∠AEC，BD=CE，
BD=CE,DE=BC =>平行四边形BCED ------(1)
AD=AE =>∠ADE=∠AED，又∵∠ADB=∠AEC =>∠ADB-∠ADE=∠AEC-∠AED =>∠EDB=∠DEC
平行四边形BCED =>=>∠EDB+∠DEC=180 =>∠EDB=90°---(2)
(1)(2) =>四边形BCED是矩形

做∠BAC的平分线，分别交DE,BC于F,H
则AH⊥BC,AH⊥DE且DF=FE=BH=HC
∴BD=FH=CE且垂直于BC
∴四边形BCED是矩形

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