QUESTION IMAGE
Question
5-2 at this rate...
draw a line to connect each rate to the equivalent unit rate.
- $\frac{$22.80}{8 \text{lb}}$
- $\frac{288 \text{ft}}{16 \text{s}}$
- $\frac{$16.50}{6 \text{lb}}$
- $\frac{792 \text{ft}}{45 \text{s}}$
- $\frac{$3.74}{68 \text{min}}$
- $\frac{$4.05}{75 \text{min}}$
$\frac{18 \text{ft}}{1 \text{s}}$, $\frac{$2.75}{1 \text{lb}}$, $\frac{17.6 \text{ft}}{1 \text{s}}$, $\frac{$0.05}{1 \text{min}}$, $\frac{$2.85}{1 \text{lb}}$, $\frac{$0.06}{1 \text{min}}$
Step1: Calculate unit rate for 1
$\frac{\$22.80}{8\ \text{lb}} = \$2.85\ \text{per lb}$
Step2: Calculate unit rate for 2
$\frac{288\ \text{ft}}{16\ \text{s}} = 18\ \text{ft per s}$
Step3: Calculate unit rate for 3
$\frac{\$16.50}{6\ \text{lb}} = \$2.75\ \text{per lb}$
Step4: Calculate unit rate for 4
$\frac{792\ \text{ft}}{45\ \text{s}} = 17.6\ \text{ft per s}$
Step5: Calculate unit rate for 5
$\frac{\$3.74}{68\ \text{min}} = \$0.055 \approx \$0.06\ \text{per min}$
Step6: Calculate unit rate for 6
$\frac{\$4.05}{75\ \text{min}} = \$0.054 \approx \$0.05\ \text{per min}$
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- $\frac{\$22.80}{8\ \text{lb}}$ connects to $\frac{\$2.85}{1\ \text{lb}}$ (K)
- $\frac{288\ \text{ft}}{16\ \text{s}}$ connects to $\frac{18\ \text{ft}}{1\ \text{s}}$ (O)
- $\frac{\$16.50}{6\ \text{lb}}$ connects to $\frac{\$2.75}{1\ \text{lb}}$ (I)
- $\frac{792\ \text{ft}}{45\ \text{s}}$ connects to $\frac{17.6\ \text{ft}}{1\ \text{s}}$ (M)
- $\frac{\$3.74}{68\ \text{min}}$ connects to $\frac{\$0.06}{1\ \text{min}}$ (A)
- $\frac{\$4.05}{75\ \text{min}}$ connects to $\frac{\$0.05}{1\ \text{min}}$ (N)