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The Jones family took a 20-mile canoe ride down the Indian River [with the current] in 4 hours. The next day, the return trip back up the river [against the current] took 10 hours. Find the rate of the canoe in still water and the rate of the current.

User Julius Moshiro
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1 Answer

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Given:

The Jones family took a 20-mile canoe ride down the Indian River [with the current] in 4 hours and The next day, the return trip back up the river [against the current] took 10 hours.

To find:

the rate of the canoe in still water and the rate of the current.

Solution:

Let x be the rate canoe in still water and y be the rate of current.

So, the rate of canoe with the current will be (x + y). So, by the given condition


\begin{gathered} 4(x+y)=20 \\ x+y=5\ldots(a) \end{gathered}

The rate of canoe against the current will be (x - y). So, by the given condition:


\begin{gathered} 10(x-y)=20 \\ x-y=2\ldots(b) \end{gathered}

Add (a) and (b), to get:


\begin{gathered} x+y+x-y=5+2 \\ 2x=7 \\ x=(7)/(2) \\ x=3.5 \end{gathered}

Substitute x = 3.5 in (a),


\begin{gathered} 3.5+y=5 \\ y=5-3.5 \\ y=1.5 \end{gathered}

Thus, the rate of canoe in still water is 3.5 mph and the rate of current is 1.5 mph.

User Venugopal Madathil
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