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Question 24We are planning a reception for our daughter. The hall that we are renting charges a $80 cleanup fee. Inaddition to the cleanup fee, they charge $29 per guest for food and drinks.If we have $2,100.00 available, what is the maximum number of guest we can invite without going over ourbudget?The maximum number of guests is

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Answer:

69 guests

Step-by-step explanation:

• Cleanup Fee = $80

,

• Cost of food and drinks per guest = $29

Let the number of guests = g

• Cost of food and drinks for g guest = $29g

The total expense will then be:


80+29g

Since a maximum of $2,100 is available, it means the total expense is either exactly $2,100 or less than $2,100.

Thus, we have the inequality:


80+29g\le2100

Next, solve for g:


\begin{gathered} 29g\le2100-80 \\ 29g\le2020 \\ (29g)/(29)\le(2020)/(29) \\ g\le69(19)/(29) \end{gathered}

Therefore, the maximum number of guests is 69.

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