如图,在△ABC和△ADE中,AC=AB,AE=AD,∠CAB=∠EAD=90°
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1∠CAD=∠DABCD=ABAE=AD△ACD≌△ABDCE=BD2由上题全等得∠ACE=∠ABD所以∠ACB+∠ABC=∠ECB+∠DBC所以∠COB=∠CAB=90°O为CE,BD交点再答:虽然
证明:∵∠BAC=∠DAE,…(3分)∴∠BAC+∠CAD=∠DAE+∠CAD,即∠EAC=∠DAB,…(4分)在△AEC和△ADB中AD=AE∠DAB=∠EACAB=AC,∴△AEC≌△ADB(SA
∠dae=∠dac+∠cae又∵∠bad=∠cae∴∠bac=∠dae,∠abc=∠ade∴三角形△abc和△ade两个角相等∴△abc∽△ade∴ab/ad=ac/ae(相似三角形相等角的两夹边成比
证明:∵∠CAB=∠EAD∠CAE=∠CAB-∠EAB∠BAD=∠EAD-∠EAB∴∠CAE=∠BAD又∵AC=ABAE=AD∴△CAE≌△BAD∴CE=BD
(1)△ABC∽△ADE,△ABD∽△ACE(2分)(2)①证△ABC∽△ADE,∵∠BAD=∠CAE,∠BAD+∠DAC=∠CAE+∠DAC,即∠BAC=∠DAE.(4分)又∵∠ABC=∠ADE,∴
△ABD∽△ACE你已经证明△ABC∽△ADE那么得AB/AC=AD/AE∠BAD=∠CAE△ABD∽△ACE(边角边)
根据您的问题,我做出如下回答:因为:∠BAD=∠CAE所以:∠BAD+∠DAC=∠CAE+∠DAC即:∠ABC=∠DAE又因为:∠ABC=∠ADE所以相似.
第一问三角形AEC和ADB全等这个很简单AE=ADAC=AB而且角EAC=90+BAE=角BAD所以EC=DB第二问设ABCE交于PECDB交于O看三角形ACP和BOP根据上一问全等角ACP=角OBP
∵DE∥BC,EF∥AB∴∠C=∠AED,∠FEC=∠A(4分)∴△EFC∽△ADE(5分)而S△ADE=4,S△EFC=9∴(ECAE)2=94(6分)∴ECAE=32∴ECAC=35(8分)∴S△
相似因为∠BAD=∠CAE,所以∠BAC=∠DAE又因为∠ABC=∠ADE所以△ABC∽△ADE所以AD/AE=AB/AC在△ABD和△ACE中AD/AE=AB/AC,∠BAD=∠CAE所以△ABD∽
证明:∵DE∥BC,∴DE∥FC,∴∠AED=∠C.又∵EF∥AB,∴EF∥AD,∴∠A=∠FEC.∴△ADE∽△EFC.
证明:∵BD⊥AC,CE⊥AB,∴∠ADB=∠AEC=90°,∵∠A=∠A,∴△ABD∽△ACE,∴ADAE=ABAC,∴ADAB=AEAC,∴△ADE∽△ABC.
证明:在△ABD与△ACE中,∵AB=ACBD=CEAD=AE∴△ABD≌△ACE(SSS)∴∠ABD=∠ACE
∵BC=AC,∴∠A=∠B,∵DE∥BC,∴∠EDA=∠B,∴∠A=∠EDA,∴EA=ED,∴△ADE是等腰三角形,∵DE∥BC,∴∠EDC=∠DCB,∵BC=AC,CD⊥AB,∴CD平分∠ACB,∴
因为∠BAD=∠CAE,所以∠BAD+∠CAD=∠CAE+∠CAD,即∠BAC=∠DAE.在△ABC和△ADE中,因为AC=AE,∠C=∠E,∠BAC=∠DAE,由角边角定理,△ABC≌△ADE.
∠EAD=∠1+∠EAB,∠BAC=∠2+∠EAB因为∠1=∠2,所以∠EAD=∠BAC又∠E=∠B,AC=AD角角边全等定理△ABC≌△ADE
①∵AB=ACAD=AE∠BAD=∠CAE=90∴△ABD≌△ACEBD=CE∠EBF=∠ACE延长BD交CE于F∠BFC=∠BEF+∠EBF=∠BEF+∠ACE=90∴BD与CE有长度相等、位置垂直
(1)证明:在△ABC和△ADE中∠BAC=∠DAEAB=AD∠B=∠D,∴△ABC≌△ADE;(2)∵△ABC≌△ADE,∴AC=AE,∴∠C=∠AEC=75°,∴∠CAE=180°-∠C-∠AEC
(1)∵∠BAD=∠CAE,∠DAC=∠DAC.∴∠BAC=∠DAE,又∵∠ABC=∠ADE.∴△ABC∽△ADE,(AA)∴AB:AC=AD:AE°∵∠BAD=∠CAE∴△ABD∽ACE(SAS)(