设第一次听到回声的时间t1,到较近的山的距离为s1,
由v=
| s |
| t |
| 2s1 |
| v |
| 2s1 |
| 340m/s |
设第二次听到回声的时间t2,到较远的峭壁的距离为s2,则s2=340m-s1,t2=
| 2s2 |
| v |
| 2(340m-s1) |
| 340m/s |
由题知,t2=t1+1s,即
| 2(340m-s1) |
| 340m/s |
| 2s1 |
| 340m/s |
解得:s1=85m,s2-s-s1=340m-85m=255m.
答:人到较近的山的距离为85m,到较远的山的距离为255m.
| s |
| t |
| 2s1 |
| v |
| 2s1 |
| 340m/s |
| 2s2 |
| v |
| 2(340m-s1) |
| 340m/s |
| 2(340m-s1) |
| 340m/s |
| 2s1 |
| 340m/s |