摘要：25小时另外4人步行了1.25km.此时他们与考场的距离为(km) ······························································································································ 7分 设汽车返回后先步行的4人相遇. .解得． 汽车由相遇点再去考场所需时间也是．······················································· 9分 所以用这一方案送这8人到考场共需． 所以这8个个能在截止进考场的时刻前赶到．······················································· 10分 方案2:8人同时出发.4人步行.先将4人用车送到离出发点的处.然后这4个人步行前往考场.车回去接应后面的4人.使他们跟前面4人同时到达考场．···························································· 6分 由处步行前考场需. 汽车从出发点到处需先步行的4人走了. 设汽车返回(h)后与先步行的4人相遇.则有.解得. ······························································································································ 8分 所以相遇点与考场的距离为． 由相遇点坐车到考场需． 所以先步行的4人到考场的总时间为. 先坐车的4人到考场的总时间为. 他们同时到达.则有.解得． 将代入上式.可得他们赶到考场所需时间为． ． 他们能在截止进考场的时刻前到达考场

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