The amount of Bread Type 1 is 10 pieces
The amount of Bread Type 2 is 10 pieces
Simultaneous Linear Equations can be solved using one of the following methods :
Let's try to solve the problem now.
Let :
Amount of Bread Type 1 = A
Amount of Bread Type 2 = B
1 piece of bread type 1 requires flour as much as 150 grams and 1 piece of bread type 2 requires flour as much as 75 grams, while the total amount of flour is as much as 2250 grams, then:
[tex]150A + 75B = 2250[/tex]
[tex]2A + B = 30[/tex]
[tex]\boxed{B = 30 - 2A}[/tex] → Equation 1
1 piece of bread type 1 requires butter as much as 50 grams and 1 piece of bread type 2 requires butter as much as 75 grams, while the total amount of butter is as much as 1250 grams, then:
[tex]50A + 75B = 1250[/tex]
[tex]2A + 3B = 50[/tex]
[tex]2A + 3(30 - 2A) = 50[/tex] ← Equation 1
[tex]2A + 90 - 6A = 50[/tex]
[tex]2A - 6A = 50 - 90[/tex]
[tex]-4A = -40[/tex]
[tex]A = -40 \div -4[/tex]
[tex]\large {\boxed{A = 10}}[/tex]
[tex]B = 30 - 2A[/tex]
[tex]B = 30 - 2(10)[/tex]
[tex]B = 30 - 20[/tex]
[tex]\large {\boxed{B = 10}}[/tex]
The amount of Bread Type 1 is 10 pieces
The amount of Bread Type 2 is 10 pieces
Grade: High School
Subject: Mathematics
Chapter: Simultaneous Linear Equations
Keywords: Elimination , Substitution , Graph , Method , Linear , Equation , Simultaneous
