矩形纸片ABCD中,AB=3cm,BC=4cm,现将纸片折叠压平,使A与C重合,设折痕为EF,则重叠部分△AEF的面积等于_.
问题描述:
矩形纸片ABCD中,AB=3cm,BC=4cm,现将纸片折叠压平,使A与C重合,设折痕为EF,则重叠部分△AEF的面积等于______.
答
设AE=x,由折叠可知,EC=x,BE=4-x,在Rt△ABE中,AB2+BE2=AE2,即32+(4-x)2=x2,解得:x=258由折叠可知∠AEF=∠CEF,∵AD∥BC,∴∠CEF=∠AFE,∴∠AEF=∠AFE,即AE=AF=258,∴S△AEF=12×AF×AB=12×258×3=7516...