在Rt△ABC中,由BC=8cm,根据勾股定理得:25x2=9x2+64,
解得:x=2,或x=-2(舍去),
∴AB=5x=10cm,AC=3x=6cm,
设经过t秒△ABC和△PQC相似.
则有BP=2tcm,PC=(8-2t)cm,CQ=tcm,
分两种情况:
①当△ABC∽△PQC时,有
| BC |
| QC |
| AC |
| PC |
| 8 |
| t |
| 6 |
| 8−2t |
| 32 |
| 11 |
②当△ABC∽△QPC时,有
| AC |
| QC |
| BC |
| PC |
| 6 |
| t |
| 8 |
| 8−2t |
| 12 |
| 5 |
综上可知,经过
| 12 |
| 5 |
| 32 |
| 11 |
| BC |
| QC |
| AC |
| PC |
| 8 |
| t |
| 6 |
| 8−2t |
| 32 |
| 11 |
| AC |
| QC |
| BC |
| PC |
| 6 |
| t |
| 8 |
| 8−2t |
| 12 |
| 5 |
| 12 |
| 5 |
| 32 |
| 11 |