如图,△ABC中,AB=AC,AD是△ABC外角的平分线,已知∠BAC=∠ACD.
(1)求证:△ABC≌△CDA;(2)若∠B=60°,求证:四边形ABCD是菱形.
如图,△ABC中,AB=AC,AD是△ABC外角的平分线,已知∠BAC=∠ACD.
(1)求证:△ABC≌△CDA;(2)若∠B=60°,求证:四边形ABCD是菱形.
解答: 证明:(1)∵AB=AC,
∴∠B=∠ACB,
∵∠FAC=∠B+∠ACB=2∠ACB,
∵AD平分∠FAC,
∴∠FAC=2∠CAD,
∴∠CAD=∠ACB,
∵在△ABC和△CDA中
,
∴△ABC≌△CDA(ASA);
(2)∵∠FAC=2∠ACB,∠FAC=2∠DAC,
∴∠DAC=∠ACB,
∴AD∥BC,
∵∠BAC=∠ACD,
∴AB∥CD,
∴四边形ABCD是平行四边形,
∵∠B=60°,AB=AC,
∴△ABC是等边三角形,
∴AB=BC,
∴平行四边形ABCD是菱形.