解:如图,过点D作DH⊥AC于点H,∴四边形AHDE是矩形,∵∠DCF=45°,CD=10米,∴DH=CH=CD?sin45°=5 2 (米),∴DE=AH=AC+CH=(15+5 2 )米,AE=DH=5 2 (米),∵∠BDE=45°,∴BE=DE=(15+5 2 )米,∴AB=BE+AE=(15+10 2 )米.故选D.
