E在边BC上移动,一条边始终经过点A,另一边与CD交于点F,连接AF.
(1)∵AB=DC=5,∴∠B=∠C而∠AEC=∠B+∠BAE=∠AEF+∠FEC
∵∠AEF=∠B,∴∠BAE=∠FEC
∴△ABE∽△ECF
∴
| AB |
| BE |
| EC |
| FC |
| 5 |
| x |
| 8−x |
| 5−y |
∴y=
| 1 |
| 5 |
(2)分别过A、D作AG、DH垂直于BC分别交于点G、H可推得cos∠B=
| 3 |
| 5 |
①若AE=AF,则有cos∠AEF=
| EG |
| AE |
| 3 |
| 5 |
| EF |
| AE |
| 6 |
| 5 |
∵△ABE∽△ECF,∴
| EC |
| AB |
| 6 |
| 5 |
| 8−x |
| 5 |
| 6 |
| 5 |
②若AF=FE,同理有
| 5 |
| 8−x |
| 6 |
| 5 |
| 23 |
| 6 |
③若AE=EF,同理有5=8-x,解得x=3;
∵0<2,3,
| 23 |
| 6 |
∴BE的长为2或3或
| 23 |
| 6 |