∵PAB、PCD为⊙O的两条割线,∴∠BAC+∠BDC=180°,∠PAC+∠BAC=180°,∴∠BDC=∠PAC,又∵∠P=∠P,∴△PAC∽△PDB,∴ PA PD = PC PB ,设PC=x,PD=y,且y-x=11,解得x=4,y=15,∴ AC BD = PC PB = 4 12 = 1 3 ,故答案为 1 3 .
