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Grade 8

2.03 Rates

Lesson

What is a rate?

A rate is a measure of how quickly one measurement changes with respect to another. Some commonly used rates in our everyday lives are speed, which measures distance per time, and the price of food, which is often measured in dollars per kilogram.

When we combine two different units into a single compound unit we call this a unit rate. We can write these compound units using a slash (/) between the different units, so "metres per second" becomes "m/s" and "dollars per kilogram" becomes "$/kg". This compound unit represents the division of one measurement by another to get a rate.

Let's have a look at an example.

 

Exploration

Consider an Olympic sprinter who runs $100$100 metres in $10$10 seconds. How fast does he run?

We can find how far the sprinter runs in $1$1 second by dividing the $100$100 metres evenly between the $10$10 seconds.

This calculation tells us that the sprinter runs $10$10 metres in one second.

We can write this a rate for the sprinter's speed in metres per second using the compound unit m/s to give us:

Sprinter's speed $=$= $10$10 m/s

Now let's try a more direct method to finding the sprinter's speed.

Since the sprinter runs $100$100 metres in $10$10 seconds we can say that he runs at a rate of $100$100 metres per $10$10 seconds. Writing this as a fraction gives us:

Sprinter's speed $=$= $100$100m/$10$10s $=$= $\frac{100}{10}$10010 m/s $=$= $10$10 m/s

After some simplifying we find that the speed of the sprinter matches that from the previous method. Notice that we were able to separate the numbers and the units into separate fractions, this is the core concept we use for turning fractions of measurements into rates.

 

Did you know?

Not all compound units are written using a slash and instead use the letter "p" to represent "per".
For example, "beats per minute" uses the compound unit bpm and "frames per second" uses fps.

 

Simplifying rates

Rates have two components, the numeric value and the compound unit. The compound unit tells us which units are being measured and the numeric value tells us how quickly the numerator unit changes with respect to the denominator unit.

When constructing a rate we usually start with just a fraction of measurements.
For example, let's find the speed of a car that travels $180$180 kilometres in $3$3 hours.

We start by setting up the fraction as distance per time, written:

Speed $=$= $180$180km/$3$3hr

Then we can separate the fraction into its numeric value and its compound unit. This gives us:

Numeric value $=$= $\frac{180}{3}$1803 $=$= $60$60
Compound unit $=$= km/hr    

 

We can then combine them again to get the rate which is:

Speed $=$= $60$60 km/hr

Whenever we can, simplify the fraction to get a whole number value for the rate. This is much nicer to work with as we can now say that the car travels $60$60 kilometres in $1$1 hour, rather than $180$180 kilometres in $3$3 hours.

 

Practice question

Question 1

Write the following as a unit rate:

$91$91 people per $7$7 buses

 

Applying rates

Now that we know how to make our rates, it's time to use them. Rates are very similar to ratios in that we can use them to calculate how much one measurement changes based on the change in another.

Returning to our sprinter, we found that they could run at a speed of $10$10 m/s. Assuming that they can maintain this speed, how far will the sprinter run in $15$15 seconds?

One way to solve this is to treat the rate like a ratio and multiply the top and bottom of the fraction by $15$15. This will give us:

Speed $=$= $10$10 m/s $\times$×$\frac{15}{15}$1515 $=$= $150$150m/$15$15s

By turning the rate back into a fraction we can see that the sprinter will run $150$150 metres in $15$15 seconds.

Another way to solve this problem is to apply the rate directly to the question. We can do this by multiplying the time by the rate. This gives us:

Distance $=$= $15$15$\times$× $10$10m/s $=$= $\left(15\times10\right)$(15×10) m$\times$×s/s $=$= $150$150m

Notice that the units for seconds from the time cancelled with the units for second in the compound unit leaving only metres as the unit for distance.

We can also ask the similar question, how long will it take for the sprinter to run $220$220 metres?

Again, one way to solve this is to treat the rate like a ratio and multiply the top and bottom of the fraction by $22$22. This gives us:

Speed $=$= $10$10 m/s $\times$×$\frac{22}{22}$2222 $=$= $220$220m/$22$22s

By turning the rate back into a fraction we can see that the sprinter will take $22$22 seconds to run $220$220 metres.

Another way to solve this problem is to apply the rate directly to the question. We can do this by dividing the distance by the rate. This gives us:

Time $=$= $220$220$\div$÷​ $10$10 m/s $=$= $\frac{220}{10}$22010 s$\times$×m/m = $22$22s

This time we divided by the rate so that the compound unit would be flipped and the metres units would cancel out to leave only seconds as the unit for time.

 

Careful!

A rate of $10$10 metres per second ($10$10 m/s) is not the same as a rate of $10$10 seconds per metre ($10$10 s/m).

In fact, $10$10 m/s $=$= $\frac{1}{10}$110 s/m. When we flip the compound unit we also need to take the reciprocal of the numeric value.

 

Practice question

Question 2

On a road trip, Tracy drives with an average speed of $90$90 km/hr. How far does she travel in $8$8 hours?

 

Converting units

When applying rates it's important to make sure that we are applying the right one.

Consider the car from before that travelled at a speed of $60$60 km/hr. How many kilometres will the car travel in $7$7 minutes?

Before we use one of the methods we learned for applying rates we should first notice that the units in the question don't quite match up with our rate. Specifically, the question is asking for minutes as the units for time instead of hours.

We can fix this by converting hours into minutes for our rate. Using the fact that $1$1 hour $=$= $60$60 minutes we can convert our speed from km/hr to km/min like so:

Speed $=$= $60$60km/hr $=$= $60$60km/$60$60min $=$= $\frac{60}{60}$6060 km/min $=$= $1$1 km/min

Now that we have a speed with the appropriate units we can apply the rate to the question to find how far the car will travel in $7$7 minutes:

Distance $=$= $7$7min $\times$× $1$1 km/min $=$= $\left(7\times1\right)$(7×1) km$\times$×min/min $=$= $7$7km

Now that we have some experience with this type of question you can try one yourself.

 

Practice question

Question 3

Consider the following rate:

$192$192 metres per $240$240 seconds

  1. Express this is as a unit rate in terms of metres and seconds.

  2. Express this is as a unit rate in terms of metres and minutes.

Outcomes

8.B2.1

Use the properties and order of operations, and the relationships between operations, to solve problems involving rational numbers, ratios, rates, and percents, including those requiring multiple steps or multiple operations.

8.B2.8

Compare proportional situations and determine unknown values in proportional situations, and apply proportional reasoning to solve problems in various contexts.

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