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A cookie company makes three kinds of cookies (oatmeal raisin, chocolate chip, and shortbread) packaged in small, medium, and large boxes. The small box contains 1 dozen oatmeal raisinand 1 dozen chocolate chip; the medium box has 2 dozenoatmeal raisin, 1 dozen chocolatechip, and 1 dozenshortbread; the large boxcontains 2 dozen oatmeal raisin, 2 dozen chocolate chip, and 3 dozen shortbread. If you require exactly 15 dozen oatmeal raisin, 10 dozen chocolate chip, and 11 dozen shortbread, ow many of each size box should you buy

User MonocroM
by
2.6k points

1 Answer

18 votes
18 votes

Answer:

1 small box

5 medium box

2 large box

Explanation:

Let x be the small box, y be the medium box and z be the large box.

So, we have:


\begin{array}{cccc}{} & {Oatmeal} & {Chocolate} & {Shortbread} & {x} & {1} & {1} & {0} & {y} & {2} & {1} & {1}& {z} & {2} & {2} & {3} & {Total} & {15} & {10} & {11} \ \end{array}

From the above table, we have the following equations:

Oatmeal:


x + 2y + 2z = 15 --- (1)

Chocolate Chip


x + y + 2z = 10 --- (2)

Shortbread


y + 3z = 11 --- (3)

Make y the subject in (3)


y =11 - 3z

Substitute
y =11 - 3z in (1) and (2)


x + 2y + 2z = 15 --- (1)


x + 2(11-3z) + 2z = 15


x + 22 - 6z + 2z = 15


x -6z +2z = 15 - 22\\


x-4z = -7


x = 4z - 7 --- (4)


x + y + 2z = 10 --- (2)


x + 11 - 3z + 2z = 10


x - 3z + 2z = 10 - 11


x -z = -1


x = z - 1 --- (5)

Equate (4) and (5)


4z - 7 = z - 1


4z - z = 7 - 1


3z = 6


z = 2

Substitute
z = 2 in (5)


x = z - 1 --- (5)


x =2-1


x =1

Substitute
z = 2 in
y =11 - 3z


y = 11 - 3 * 2


y = 11 - 6


y = 5

So, the solution is:


x =1
y = 5
z = 2

User Daniel Wehner
by
3.3k points
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