8.Working alone, a small pump takes twice as long as a large pump takes to fill an empty tank. Working together at their respective constant rates, the pumps can fill the tank in 6 hours. How many hours will it take the small pump to fill the tank working alone?
讨论:设小泵用X小时,那么,大泵用X/2小时。1/[(1/x)+(1/2x)]=6, X=9
我的算法怎么不一样?我的方式是:设小泵用x 小时大泵用x/2小时, 所以每小时大泵的工作效率是小泵的两倍
设总工作量为T, 所以小泵每小时可抽水 T/X , 大泵每小时可抽水 T/(X/2) =2T/X
大小泵同时工作,则为:T/[(T/X)+(2T/X)]=6
解出x, 得:x=18 所以小泵应该耗时18小时
我的解题思路有什么问题吗?
谢谢了!看来还是要多相信自己的结果
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8.Working alone, a small pump takes twice as long as a large pump takes to fill an empty tank. Working together at their respective constant rates, the pumps can fill the tank in 6 hours. How many hours will it take the small pump to fill the tank working alone?
讨论:设小泵用X小时,那么,大泵用X/2小时。1/[(1/x)+(1/2x)]=6, X=9
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这个做法设的是大泵用的时间,出来以后2x=18才是小泵的时间。如果设的是小泵,那么方程是:1/{(1/x)+[1/(x/2)]},x=18
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