Read and Understand: 

Recall that when the kayak is going downstream, in the same direction as the river’s current, the current helps push the kayak, so the kayak’s actual speed is faster than its speed in still water. The actual speed at which the kayak is moving is the sum of the speeds in still water and the river’s current. When the kayak is going upstream, opposite to the river current though, the current is going against the kayak, so the kayak’s actual speed is slower than its speed in still water. The actual speed of the kayak is the difference between the speed in still water and the speed of the river’s current.

The speed of the kayak in still water is known while the speed of the river’s current is to be found. We do know the distances Avery paddles her kayak upstream and downstream. We do not know the times but we do know the two times are the same.

Define and Translate: Let [latex]c[/latex] be the unknown speed of the river’s current. Going upstream, the actual rate of the kayak is [latex]4-c[/latex]. Going downstream, the actual rate is [latex]4+c[/latex].

Write and Solve: Fill in the table with the information we know. The table is not necessary, but can help you organize.

Since we have the Distance and Rate in each row, we can determine the Time for each row accordingly using the formula $$t=\dfrac{d}{r}$$:

Since the two times are the same (mathematically, equal), we obtain the following rational equation:

[latex]\dfrac{10}{4-c}=\dfrac{22}{4+c}[/latex]

Let’s acknowledge that the restricted values of $$c$$ are $$4$$ and $$-4$$. (Can you explain why?) Now,

[latex]\require{color} \begin{align} \frac{10}{4-c}{\color{red}\: \cdot\: (4-c)\cdot (4+c)}&=\frac{22}{4+c}{\color{red}\: \cdot\: (4-c)\cdot (4+c)} && \color{blue}{\textsf{multiply by the LCD}}\\[5pt] \frac{10}{{\color{red}\cancel{\color{black}{(4-c)}}}}\cdot \frac{{\color{red}\cancel{\color{black}{(4-c)}}}\cdot (4+c)}{1} &= \frac{22}{{\color{red}\cancel{\color{black}{(4+c)}}}}\cdot \frac{(4-c)\cdot {\color{red}\cancel{\color{black}{(4+c)}}}}{1} && \color{blue}{\textsf{clear the fractions}}\\[5pt]10\cdot (4+c) &= 22\cdot (4-c)\\[5pt] \underset{\large{\color{red}{-40}}}{40}+\underset{\large{\color{red}{+22c}}}{10c} &= \underset{\large{\color{red}{-40}}}{88}-\underset{\large{\color{red}{+22c}}}{22c} && \color{blue}{\textsf{isolate $c$-terms}}\\[5pt] {\color{red}{\frac{\cancel{\color{black}{32}}{\color{black}{\: \cdot\: c}}}{\cancel{32} \cdot 1}}} &= {\color{red}{\frac{{\color{black}{48}}}{32}}} && \color{blue}{\textsf{divide to isolate $c$}}\\[5pt] c &= \frac{{\color{red}\cancel{\color{black}{16}}}\cdot 3}{{\color{red}\cancel{\color{black}{16}}}\cdot 2} && \color{blue}{\textsf{simplify}}\\[5pt] c &= \frac{3}{2} \end{align}[/latex]

Answer: The river’s current’s speed is $$\dfrac{3}{2}$$ miles per hour (or $$1.5$$ miles per hour).

Read and Understand: 

Neither the speed of bicycling nor walking is known but we know Hassan can ride $$7$$ km/h faster than he can walk. The walking speed is to be found. We do know the distances Hassan bicycles and walks. We do not know the times but we do know the two times are the same.

Define and Translate: Let [latex]w[/latex] be the unknown speed of Hassan walking. Since he can ride $$7$$ km/h faster than he can walk, his bicycling speed is [latex]w+7[/latex].

Write and Solve: Fill in the table with the information we know. The table is not necessary, but can help you organize.

Since we have the Distance and Rate in each row, we can determine the Time for each row accordingly using the formula $$t=\dfrac{d}{r}$$:

Since the two times are the same (mathematically, equal), we obtain the following rational equation:

[latex]\dfrac{72}{w+7}=\dfrac{30}{w}[/latex]

Let’s acknowledge that the restricted values of $$w$$ are $$-7$$ and $$0$$. Now,

[latex]\require{color} \begin{align} \frac{72}{w+7}&=\frac{30}{w}\\[5pt] 72\cdot w &= (w+7)\cdot 30 && \color{blue}{\textsf{clear the fractions}}\\[5pt] \underset{\large{\color{red}{-30w}}}{72w} &= \underset{\large{\color{red}{-30w}}}{30w}+210\\[5pt] {\color{red}{\frac{\cancel{\color{black}{42}}{\color{black}{\: \cdot\: w}}}{\cancel{42} \cdot 1}}} &= {\color{red}{\frac{{\color{black}{210}}}{42}}}\\[5pt] w &= 5 \end{align}[/latex]

Answer: Hassan can walk $$5$$ kilometers per hour.

Read and Understand: 

The speed of the river’s current is known while the speed of the river tram in still water is to be found. We do know the distances the river tram goes upstream and downstream. We do not know the individual times but we do know the roundtrip total time.

Define and Translate: Let [latex]b[/latex] be the unknown speed of the river tram. Going upstream, the actual rate of the river tram is [latex]b-4[/latex]. Going downstream, the actual rate is [latex]b+4[/latex].

Write and Solve: Fill in the table with the information we know. The table is not necessary, but can help you organize. Note that sometimes the variable is first and other times it is last, like in our previous example. The boat or vehicle number/variable is always first.

Since we have the Distance and Rate in each row, we can determine the Time for each row accordingly using the formula $$t=\dfrac{d}{r}$$:

Since the two times total (mathematically, their sum is) 2 hours, we obtain the following rational equation:

[latex]\dfrac{6}{b-4}+\dfrac{6}{b+4}=2[/latex]

Let’s acknowledge that the restricted values of $$b$$ are $$4$$ and $$-4$$. Now,

[latex]\require{color} \begin{align} \frac{6}{b-4}+\frac{6}{b+4}&=2\\[5pt] {\color{red}{(b-4)\cdot(b+4)\cdot\: }}\left(\frac{6}{b-4}+\frac{6}{b+4}\right)&=2{\color{red}{\: \cdot\: (b-4)\cdot(b+4)}} && \color{blue}{\textsf{multiply by the LCD}}\\[5pt] \frac{{\color{red}\cancel{\color{black}{(b-4)}}}\cdot(b+4)}{1}\cdot \frac{6}{{\color{red}\cancel{\color{black}{(b-4)}}}\cdot 1} + \frac{(b-4)\cdot{\color{red}\cancel{\color{black}{(b+4)}}}}{1}\cdot \frac{6}{{\color{red}\cancel{\color{black}{(b+4)}}}\cdot 1}&= 2\cdot (b^2-16) && \color{blue}{\textsf{distribute and multiply}}\\[5pt] 6b+24+\underset{\large{\color{red}{-12b}}}{6b}-24 &= \underset{\large{\color{red}{-12b}}}{2b^2}-32 && \color{blue}{\textsf{simplify and isolate $0$}}\\[5pt] {\color{red}{\frac{{\color{black}{0}}}{2}}} &= {\color{red}{\frac{{\color{black}{2b^2-12b-32}}}{2}}} && \color{blue}{\textsf{divide out the GCF}}\\[5pt] 0 &= b^2-6b-16\\[5pt] 0 &= (b-8)(b+2) && \color{blue}{\textsf{factor}}\\[5pt] b-\underset{\large{\color{red}{+8}}}{8} &= \underset{\large{\color{red}{+8}}}{0}\ \ \textsf{or}\ \ b+\underset{\large{\color{red}{-2}}}{2} = \underset{\large{\color{red}{-2}}}{0} && \color{blue}{\textsf{Zero-Product Property}}\\[5pt] b &= 8 \ \ \textsf{or}\ \ b = -2 \end{align}[/latex]

Of course, the speed of the river tram in still water cannot be negative, so we discard $$b = -2$$.

Answer: The river tram’s speed in still water is $$8$$ miles per hour.

Read and Understand: 

Neither the speed of jogging nor riding is known but we know Logan’s jogging rate was $$25$$ mph slower than the rate of the ride. Logan’s jogging rate is to be found. We do know the distances both ways. We do not know the times but we do know it took him $$50$$ minutes (five sixths of an hour) longer to jog there than ride back.

Define and Translate: Let [latex]j[/latex] be the unknown speed of Logan jogging. Since his jogging rate was $$25$$ mph slower than the rate of the ride, meaning that the ride speed was $$25$$ mph faster, the ride speed was [latex]j+25[/latex].

Write and Solve: Fill in the table with the information we know. The table is not necessary, but can help you organize.

Since we have the Distance and Rate in each row, we can determine the Time for each row accordingly using the formula $$t=\dfrac{d}{r}$$:

Since it took him five sixths of an hour longer to jog there than ride back, meaning that the time There (the longer time) was five sixths of an hour more than the time Back (the shorter time), we obtain the following rational equation:

[latex]\dfrac{5}{j}=\dfrac{5}{j+25}+\dfrac{5}{6}[/latex]

Let’s acknowledge that the restricted values of $$j$$ are $$0$$ and $$-25$$. Now,

[latex]\require{color} \begin{align} {\color{red}{6\cdot j\cdot (j+25)\: \cdot\: }}\frac{5}{j}&=\left(\frac{5}{j+25}+\frac{5}{6}\right){\color{red}{\: \cdot\: 6\cdot j\cdot (j+25)}}\\[5pt] \frac{6\cdot {\color{red}\cancel{\color{black}{j}}}\cdot (j+25)}{1}\cdot\frac{5}{{\color{red}\cancel{\color{black}{j}}}\cdot 1}&=\frac{5}{{\color{red}\cancel{\color{black}{(j+25)}}}\cdot 1}\cdot\frac{6\cdot j\cdot {\color{red}\cancel{\color{black}{(j+25)}}}}{1}+\frac{5}{{\color{red}\cancel{\color{black}{6}}}\cdot 1}\cdot\frac{{\color{red}\cancel{\color{black}{6}}}\cdot j\cdot (j+25)}{1}\\[5pt] \underset{\large{\color{red}{-30j}}}{30j}+\underset{\large{\color{red}{-750}}}{750} &= \underset{\large{\color{red}{-30j}}}{30j}+5j^2+\underset{\large{\color{red}{-750}}}{125j}\\[5pt] {\color{red}{\frac{{\color{black}{0}}}{5}}}&={\color{red}{\frac{{\color{black}{5j^2+125j-750}}}{5}}}\\[5pt] 0&=j^2+25j-150\\[5pt] 0&=(j+30)(j-5)\\[5pt] j+\underset{\large{\color{red}{-30}}}{30} &= \underset{\large{\color{red}{-30}}}{0}\ \ \textsf{or}\ \ j-\underset{\large{\color{red}{+5}}}{5} = \underset{\large{\color{red}{+5}}}{0}\\[5pt] j &= -30 \ \ \textsf{or}\ \ j = 5 \end{align}[/latex]

Of course, jogging rate cannot be negative, so we discard $$j = -30$$.

Answer: Logan’s jogging rate was $$5$$ miles per hour.