Question

use substitution to solve each system of equations.

1. \\(\

$$\begin{cases} y = -x + 4 \\\\ y = 3x \\end{cases}$$

\\)

1. \\(\

$$\begin{cases} y = 2x - 10 \\\\ 2y = x - 8 \\end{cases}$$

\\)

1. \\(\

$$\begin{cases} x - 2y = 12 \\\\ y = 3x + 14 \\end{cases}$$

\\)

1. \\(\

$$\begin{cases} x = 2y - 6 \\\\ y = 3x - 7 \\end{cases}$$

\\)

1. \\(\

$$\begin{cases} 6x - 4y = 18 \\\\ x = -6y - 7 \\end{cases}$$

\\)

1. \\(\

$$\begin{cases} y = -217x + 5/7 \\\\ 3x + 10y = 6 \\end{cases}$$

\\)

Explanation:

Problem 1

Step1: Substitute \( y = 3x \) into \( y=-x + 4 \)

\( 3x=-x + 4 \)

Step2: Solve for \( x \)

Add \( x \) to both sides: \( 3x+x=-x+x + 4 \) → \( 4x = 4 \)
Divide by 4: \( x=\frac{4}{4}=1 \)

Step3: Substitute \( x = 1 \) into \( y = 3x \)

\( y=3\times1 = 3 \)

Step1: Substitute \( y = 2x-10 \) into \( 2y=x - 8 \)

\( 2(2x-10)=x - 8 \)

Step2: Expand and solve for \( x \)

\( 4x-20=x - 8 \)
Subtract \( x \) from both sides: \( 4x-x-20=x-x - 8 \) → \( 3x-20=-8 \)
Add 20 to both sides: \( 3x-20 + 20=-8 + 20 \) → \( 3x = 12 \)
Divide by 3: \( x=\frac{12}{3}=4 \)

Step3: Substitute \( x = 4 \) into \( y = 2x-10 \)

\( y=2\times4-10=8 - 10=-2 \)

Step1: Substitute \( y = 3x + 14 \) into \( x-2y = 12 \)

\( x-2(3x + 14)=12 \)

Step2: Expand and solve for \( x \)

\( x-6x-28 = 12 \)
Combine like terms: \( -5x-28 = 12 \)
Add 28 to both sides: \( -5x-28 + 28=12 + 28 \) → \( -5x = 40 \)
Divide by -5: \( x=\frac{40}{-5}=-8 \)

Step3: Substitute \( x=-8 \) into \( y = 3x + 14 \)

\( y=3\times(-8)+14=-24 + 14=-10 \)

Answer:

\( x = 1 \), \( y = 3 \)

Problem 2