解答:(1)证明:∵AB是⊙O的切线,∴∠ACB=90°;已知EC切⊙O于C,由弦切角定理得:∠ECA=∠B;又∵∠ECA=90°-∠ECA,∠BAC=90°-∠B,∴∠CAD=∠BAC.(2)解:Rt△ABC中,∠ACB=90°,由勾股定理得:AC=3;∴tan∠BAC= BC AC = 3 4 ,∵∠CAE=∠BAC,∴tan∠CAE=tan∠BAC= 3 4 .(9分)
