Chapter 3.3, Problem 59PPE

To determine

The least number of snacks and greatest number of snacks can be bought.

Answer to Problem 59PPE

The affordable least number of snacks is $1$ and the affordable greatest number of snacks is $15$ .

Explanation of Solution

Given information:

The total money is $30, the prices of snacks are as follow: Sm $1, Med $1.50, Lg $2, Veggie $4, Chicken $5, Roast beef $7, Pretzels $1, Ice cream $2 and Brownie $3.

Calculation:

To buy the least number of snacks, the most expensive sandwiches and drinks are to be ordered. Here the sandwich "Roast Beef" and drink "Lg" are most expensive. There are 3 Roast Beef and $3\text{Lg}$ are to be ordered and the cost is $3(7)+3(2)$

Now,

  $\begin{array}{cc}3(7)+3(2)& =21+6\\ & =27\end{array}$

Total money is $\text{\$}30$ then, after order of sandwiches and drinks $\text{\$}30-\text{\$}27=\text{\$}3$ is leaving. To buy least number of snacks, he must buy most valuable snacks "Brownie" $\text{\$}3$ each.

Hence the affordable least number of snacks is $1$ .

To buy the greatest number of snacks, the least expensive sandwiches and drinks are to be ordered. Here the sandwich "Veggie" and drink ${}^{-}{\text{Sm}}^{\prime \prime }$ are least expensive. There are 3 Veggie $3\text{ Sm}$ are to be ordered and the cost is $3(4)+3(1)$

Now,

  $\begin{array}{cc}3(4)+3(1)& =12+3\\ & =15\end{array}$

Total money is $\text{\$}30$ . Then after order of sandwiches and drinks $\text{\$}30-\text{\$}15=\text{\$}15$ is leaving. To buy greatest number of snacks, he must buy least valuable snacks "Pretzels" $\text{\$}1$ each.

Hence the affordable greatest number of snacks is $15$ .