角BAD=角CAE=90°,AB=AD,AE=AC,AF垂直CF
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∠AFD=∠AFE.理由:过A作AM⊥DC于M,AN⊥BE于N.∵∠BAD=∠CAE=90°,∴∠BAD+∠BAC=∠CAE+∠BAC,即∠DAC=∠BAE;在△ABE和△ADC中,AB=AD(已知)
1)△ABC∽△ADE证:∵∠BAD=∠CAE ∴∠BAD+∠DAC=∠CAE+∠DAC &nb
△ABD∽△ACE你已经证明△ABC∽△ADE那么得AB/AC=AD/AE∠BAD=∠CAE△ABD∽△ACE(边角边)
1)∵△ABE全等△ACD∴∠BAE全等∠CAD∴∠BAE-∠DAE=∠CAD-∠DAE∴∠BAD=∠CAE2)∵△ABE全等△ACD∴AB=AC,∠B=∠C∵∠BAD=∠CAE∴△ACD全等△ACE
因为全等三角形,所以角BAC=角DAE;所以角BAC-角DAC=角DAE-角DAC;即角BAD=角CAE再答:给好评啊
∵∠BAD=∠CAE∴∠BAD-∠CAD=∠CAE-∠CAD即∠BAC=∠DAE在△BAC和△DAE中{AB=AD{∠BAC=∠DAE{AC=AE∴△BAC≌△DAE(SAS)∴BC=DELZ的图有点
相等再问:。。。。。。。再问:过程再答:我没笔和纸再问:。。。。。。再答:再答:懂吗再问:哦哦谢谢
相等因为旋转后∠CAB=∠EAD如果旋转的角度<∠CAB:∵∠CAE+∠EAB=∠CAB∠BAD+∠EAB=∠CAB∴∠CAE=∠BAD如果旋转角>∠CAB∵∠CAB=∠EAD∠CAE=∠CAB+∠B
第一个应该是求证:△ABE≌△ACD1、证明∵∠BAD=∠CAE=90∴∠CAD=∠CAB+∠BAD=∠CAB+90,∠BAE=∠CAB+∠CAE=∠CAB+90∴∠CAD=∠BAE∵AB=AD,AC
因为AD=AE,AB=AC,∠BAD=∠CAE所以△ADB≌△AEC所以∠ADB=∠AEC,BD=CE因为BD=CE,DE=BC所以四边形BCED是平行四边形所以BD=CE所以∠BDE+∠DEC=18
角BAD角CAE可得角CAD=BAE又因为AB=AC.AD=AE可得三角形BAECAD全等所以CD=BE又因为DE=BC可求出BCDE是平行四边形所以CD平行于BE所以角BCD+CBE=180°因为三
证明:∵∠BAC=∠BAD+∠DAC,∠DAE=∠CAE+∠DAC,∠BAD=∠CAE∴∠BAC=∠DAE(等量代换)∵∠ABC=∠ADE∴△ABC∽△ADE
∵∠BAD=∠CAE=90∴∠CAD=∠CAB+∠BAD=∠CAB+90,∠BAE=∠CAB+∠CAE=∠CAB+90∴∠CAD=∠BAE∵AB=AD,AC=AE∴△ABE全等于△ACD∴∠BEA=∠
∵AD=AE(已知)∴角ADE=角AEB(等边对等角)∵角BAD=角CAE(已知)∴角BAD+角DAE=角CAE+角DAE(加法法则)即角BAE=角CAD又∵AD=DE,角ADE=角AEB(已证)∴△
证明:连接BD∵AD是⊙O的直径∴∠ABD=90°∵AE⊥BC∴∠AEC=90°∵∠D=∠C∴∠BAD=∠CAE
∵△ABE全等于△ACD,其BE=DC,AB=AC,∠ABD=∠ACE∴BE-DE=DC-DE继而BD=CE∵AB=AC,∠ABD=∠ACE,BD=CE∴△ABD=△ACE∴∠BAD=∠CAE再问:�
第一题:因为∠B=∠C=90°,所以△ABE和△ACD都是直角三角形,又因为AD=AE,AB=AC所以△ABE全等于△ACD(HL定理)∠BAE=∠CAD(三角形全等,对应角相等)∠BAE-∠DAE=
∵∠BAD=∠CAE=90∴∠CAD=∠CAB+∠BAD=∠CAB+90,∠BAE=∠CAB+∠CAE=∠CAB+90∴∠CAD=∠BAE∵AB=AD,AC=AE∴△ABE全等于△ACD
图中相似三角形有△ABC与△ADE,△ABD与△ACE证明:∵∠BAC=∠BAD+∠DAC,∠DAE=∠CAE+∠DAC,∠BAD=∠CAE∴∠BAC=∠DAE∵∠ABC=∠ADE∴△ABC相似于△A