已知如图,ad×ac=ae×ab
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∵AD‖BC,AD=BC∴ADCB为平行四边形∴AD=BC=AE∵AE⊥AD,AF⊥AB∴∠BAF=∠DAE=90度∴∠EAF+∠DAB=∠DAB+∠B∴∠EAF=∠B在△AEF与△BCA中AE=BC
好好学习,上课多听老师点.因为〈EAB+
∵AB=ACAE=AD∠BAE=∠CAD∴⊿ABE≌⊿ACD(SAS)∴∠ABE=∠ACD
DE为三角形ABC的中线?这怎么可能?你回去课本,看看中线是怎么定义的按题意,没错的话,就是说D在边AB上,E在边AC上.不用相似就不用呗,那就用比例的基本性质来解答,不会扯到三角形相似.AD/AE=
证明:∵AB=AC∴∠B=∠C(等边对等角)∵AD=AE∴∠ADE=∠AED(等边对等角)又∠ADE=∠B+∠BAD,∠AED=∠C+∠CAE(外角)∴∠BAD=∠CAE(等量代换)在△ABD和△AC
∵在ΔAEB和ΔADC中╭│∠A=∠A(同位角)│∠ACD=∠ABE(已知)│AD=AE(已知)╰∴ΔAEB≌ΔADC(ASA)∴AB=AC∵AD=AE;AB=AC∴BD=CE再问:
证明:(1)∵在△BAE和△CAD中AE=ADAB=ACBE=DC∴△BAE≌△CAD( SSS ),∴∠BAE=∠1,∴∠BAE+∠EAC=∠1+∠EAC,∴∠BAC=∠EAD.
(1)∠B=∠E,理由是:∵在△ABC和△AED中AC=ADAB=AEBC=DE∴△ABC≌△AED,∴∠B=∠E;(2)AF⊥CD,理由是:∵AC=AD,F为CD中点,∴AF⊥CD.
解答证明:∵∠BAC=∠DAE,∴∠BAC+∠CAD=∠DAE+∠CAD,即∠BAD=∠EAC,在△ABD和△ACE中AB=AC∠BAD=∠EACAE=AD,∴△ABD≌△ACE.所以∠ADB=∠AE
L是指角吗?是的话就这样:∵∠BAC=∠DAE∴∠BAC+∠CAD=∠DAE+∠CAD即∠BAD=∠CAE又∵AB=AC,AD=AE∴△ABD≌△ACE∴∠B=∠C
做辅助线连接BC因为AB=AC那么角ABC=角ACB等腰三角形底角相等角DOB=角EOC对顶角相等已知OB=OC那么三角形OBD和三角形OCE全等ASA那么BD=EC所以AD=AE再问:最后两个的结论
从A点作BC垂线AFAD=AE则DF^2=AD^2-AF^2=AE^2-AF^2=EF^2即DF=EF同理BF=CFBD=BF-DF=CF-EF=CE所以BD=CE祝学习愉快!再问:DF^2=AD^2
∵AB=AC∴∠B=∠C又∵AD=AE∴∠ADE=∠AED又∵∠ADE+∠ADB=180°∠AED+∠AEC=180°∴∠ADB=∠AEC在△ABD和△ACE中,∠B=∠C∠ADB=∠AECAB=AC
(1)AB=AC,AD=AE,BD=CE,所以△ABD全等于△ACE,从而可知∠BAD=∠CAE(2)由于AD把∠BAC平分,所以∠BAD=∠DAC,而根据(1)可知,∠BAD=∠CAE于是∠DAC=
证明:作AF⊥BC于F,∵AB=AC(已知),∴BF=CF(三线合一),又∵AD=AE(已知),∴DF=EF(三线合一),∴BF-DF=CF-EF,即BD=CE(等式的性质).
∵AD/BD=AE/CE=(AD-AE)/(BD-CE)∴AB/AD=AC/AE变形一下就可以得出AB:AC=AD:AE
因为∠EAB=∠CAD所以∠EAB+∠BAD=∠DAC+∠BAD=∠EAD=∠BAC又因为AE=AC,AB=AD,所以有定理两边一角所以:①△ABC全等于△ADE②是什么?!
由AD/AB=AE/AC,且夹角∠A是公共角,∴△ADE∽△ABC,即DE∥BC.(1)∵AD/AB=AE/AC∴AB/AD=AC/AEAB/AD-1=AC/AE-1,(AB-AD)/AD=(AC-A
已知条件AD/DB=AE/EC取个倒数,BD/AD=EC/AE两边+1,BD/AD+1=EC/AE+1通分(BD+AD)/AD=(EC+AE)/AE也就是AB/AD=AC/AE再取个倒数,AD/AB=
∵AC/AD=AB/DE=BC/AE,∴ΔABC∽ΔDEA,∴∠B=∠DEA,∴AB=AE.再问:老师,能详细点吗??再答:三边对应成比例,两个三角形相似,相似三角形的对应角相等,等角对等边。三个步骤