已知:t=10min=600s,s=5km=5000m,那么列车从较场口到牛角沱这段时的速度为v= s t = 5000m 600s =8.33m/s,由于列车在各段的平均速度相等,列车全程运行时间为38min=2280s,则s=vt=8.33m/s×2280s=18992.4m=19km,故答案为:19.
