CONFIDENTIAL 1 Grade 8 Pre-Algebra Solving Equations with Variables on Both Sides.
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Transcript of CONFIDENTIAL 1 Grade 8 Pre-Algebra Solving Equations with Variables on Both Sides.
![Page 1: CONFIDENTIAL 1 Grade 8 Pre-Algebra Solving Equations with Variables on Both Sides.](https://reader035.fdocuments.net/reader035/viewer/2022081515/5a4d1bc67f8b9ab0599d4d5f/html5/thumbnails/1.jpg)
CONFIDENTIAL 1
Grade 8 Pre-AlgebraGrade 8 Pre-Algebra
Solving Equations withSolving Equations withVariables on Both SidesVariables on Both Sides
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CONFIDENTIAL 2
Warm UpWarm Up
1) 15y + 31 = 61
2) 9 - c = -13
3) x + 4= 15 6
4) y + 1 = 5 3 4 12
Solve each equation. Check your answer:
1) y = 2
2) c = 22
3) x = 66
4) y = 0.5
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CONFIDENTIAL 3
Model Equations with Variables on Both Sides
You can use algebra tiles to understand how to solve equations with variables on both sides.
KEY REMEMBER
= 1
= -1= x + = 0= -x
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CONFIDENTIAL 4
Activity
Use algebra tiles to model and solve 5x - 2 = 2x+ 10.
MODEL ALGEBRA
5x - 2 = 2x + 10
5x - 2 - 2x = 2x - 2x + 10
3x - 2 = 10
Next page
Model 5x - 2 on the left side of the mat and 2x + 10 on the right side. Remember that 5x - 2 is the same as 5x + (-2) .
Remove 2 x-tiles from both sides. This represents subtracting 2x from both sides of the equation.
![Page 5: CONFIDENTIAL 1 Grade 8 Pre-Algebra Solving Equations with Variables on Both Sides.](https://reader035.fdocuments.net/reader035/viewer/2022081515/5a4d1bc67f8b9ab0599d4d5f/html5/thumbnails/5.jpg)
CONFIDENTIAL 5
MODEL ALGEBRA
3x - 2 + 2 = 10 + 2
3x = 12
3x = 12 3 3
x = 4
Use algebra tiles to model and solve the equation.1. 5x + 12 = 2x + 3
Remove Place 2 yellow tiles on both sides. This represents adding 2 to both sides of the equation. Remove zero pairs.
Separate each side into 3 equal groups. Each group is 1/3 of the side. One x-tile is equivalent to 4 yellow tiles.
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CONFIDENTIAL 6
To solve an equation with variables on both sides, useinverse operations to “collect” variable
terms on one side of the equation.
Solving Equations with Variables on Both Sides
Solve each equation.
a) 7k = 4k + 15
7k = 4k + 15-4k -4k
3k = 15To collect the variable terms on one side, subtract 4k from both sides.
Since k is multiplied by 3, divide both sides by 3 to undo the multiplication.
3k = 15 3 3
k = 5
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CONFIDENTIAL 7
b) 5x - 2 = 3x + 4
5x - 2 = 3x + 4- 3x -3x
2x - 2 = 4
To collect the variable terms on one side, subtract 3x from both sides.
Check
To check your solution, substitute 3 for x in the original equation.
+ 2 +22x = 6
Since 2 is subtracted from 2x, add 2 to both sides to undo the subtraction.
2x = 6 2 2
Since x is multiplied by 2, divide both sides by 2 to undo the multiplication.
x = 3
5x - 2 = 3x + 45 (3) - 2 15 - 2 9 + 4 13 13
3 (3) + 4
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CONFIDENTIAL 8
Now you try!
1) 4b + 2 = 3b
2) 0.5 + 0.3y = 0.7y - 0.3
Solve each equation. Check your answer.
To solve more complicated equations, you may need to first simplify by using the Distributive
Property or combining like terms.
1) b = -2
2) y = 2
![Page 9: CONFIDENTIAL 1 Grade 8 Pre-Algebra Solving Equations with Variables on Both Sides.](https://reader035.fdocuments.net/reader035/viewer/2022081515/5a4d1bc67f8b9ab0599d4d5f/html5/thumbnails/9.jpg)
CONFIDENTIAL 9
Simplifying Each Side Before Solving EquationsSolve each equation.
A) 2(y + 6) = 3y
Distribute 2 to the expression in parentheses.
2y + 12 = 3y- 2y -2y
12 = y
Check
To check your solution, substitute 12 for y in the original equation.
2(y + 6) = 3y2(y) + 2(6) = 3y
To collect the variable terms on one side, subtract 2y from both sides.
2(y + 6) = 3y2(12 + 6) 3(12)
2(18) 3636 36
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CONFIDENTIAL 10
B) 3 - 5b + 2b = -2 - 2(1 - b)
Distribute -2 to the expression in parentheses.
3 = -4 + 5b+3b +3b
Since b is multiplied by 5, divide both sides by 5.
3 - 5b + 2b = -2 - 2(1 - b)3 - 5b + 2b = -2 - 2(1) - 2(-b)3 - 5b + 2b = -2 - 2 + 2b
3 - 3b = -4 + 2b Combine like terms.
Add 3b to both sides.
Since -4 is added to 5b, add 4 to both sides.+4 +4
7 = 5b7 = 5b5 5
1.4 = b
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CONFIDENTIAL 11
Now you try!
1) 1 (b + 6) = 3b – 1 2 2
2) 3x + 15 - 9 = 2 (x + 2)
Solve each equation. Check your answer.
1) b = 4
2) x = -2
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CONFIDENTIAL 12
An identity is an equation that is true for all values of the variable. An equation that is an identity has infinitely
many solutions. A contradiction is an equation that is not true for any value of the variable. It has no solutions.
Identities and Contradictions
WORDS NUMBERS ALGEBRAIdentity:When solving an equation, if you get an equation that is always true, the original equation is an identity, and it has infinitely many solutions.
2 + 1 = 2 + 1
3 = 3
2 + x = 2 + x- x - x 2 = 2
contradiction:When solving an equation, if you get a false equation, the original equation is a contradiction, and it has no solutions.
1 = 1 + 2
1 = 3
x = x + 3- x - x0 = 3
![Page 13: CONFIDENTIAL 1 Grade 8 Pre-Algebra Solving Equations with Variables on Both Sides.](https://reader035.fdocuments.net/reader035/viewer/2022081515/5a4d1bc67f8b9ab0599d4d5f/html5/thumbnails/13.jpg)
CONFIDENTIAL 13
Infinitely Many Solutions or No Solutions
A) x + 4 - 6x = 6 - 5x - 2
Identify like terms.
+ 5x + 5x4 = 4
Solve each equation.
x + 4 - 6x = 6 - 5x - 2
4 - 5x = 4 - 5x Combine like terms on the left and the right.Add 5x to both sides.True statement
The equation x + 4 - 6x = 6 - 5x - 2 is an identity. All values of x will make the equation true. All real
numbers are solutions.
![Page 14: CONFIDENTIAL 1 Grade 8 Pre-Algebra Solving Equations with Variables on Both Sides.](https://reader035.fdocuments.net/reader035/viewer/2022081515/5a4d1bc67f8b9ab0599d4d5f/html5/thumbnails/14.jpg)
CONFIDENTIAL 14
A) -8x + 6 + 9x = -17 + x
Identify like terms.
- x - x6 = -17
-8x + 6 + 9x = -17 + x
6 + x = -17 + x Combine like terms .
Subtract x to both sides.
False statement
The equation -8x + 6 + 9x = -17 + x is a contradiction. There is no value of x that will
make the equation true. There are no solutions.
![Page 15: CONFIDENTIAL 1 Grade 8 Pre-Algebra Solving Equations with Variables on Both Sides.](https://reader035.fdocuments.net/reader035/viewer/2022081515/5a4d1bc67f8b9ab0599d4d5f/html5/thumbnails/15.jpg)
CONFIDENTIAL 15
Now you try!
1) 4y + 7 - y = 10 + 3y
2) 2c + 7 + c = -14 + 3c + 21
Check each equation.
1) False statement
2) True statement
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CONFIDENTIAL 16
When is 36¢ plus 3¢ per minute the same as 6¢ per minute ?
Solution:
36 + 3m = 6m To collect the variable terms on one side, subtract 3m from both sides.
Phone Company ChargesCompany A 36¢ plus 3¢ per minuteCompany B 6¢ per minute
Let m represent minutes, and write expressions for each company’s cost.
The long-distance rates of two phone companies are shown in the table. How long is a call that costs the same amount no matter which company is used?
What is the cost of that call?
- 3m - 3m36 = 3m
Next page
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CONFIDENTIAL 17
12 = m
Since m is multiplied by 3, divide both sides by 3 to undo the multiplication.
The charges will be the same for a 12-minute call using either phone service. To find the cost of this call, evaluate either expression for m = 12:
The cost of a 12-minute call through either company is 72¢.
36 = 3m 3 3
36 + 3m = 36 + 3 (12) = 36 + 36 = 72
6m = 6 (12) = 72
![Page 18: CONFIDENTIAL 1 Grade 8 Pre-Algebra Solving Equations with Variables on Both Sides.](https://reader035.fdocuments.net/reader035/viewer/2022081515/5a4d1bc67f8b9ab0599d4d5f/html5/thumbnails/18.jpg)
CONFIDENTIAL 18
Four times Greg’s age, decreased by 3 is equal to 3 times Greg’s age, increased by 7. How old is Greg?
Now you try!
10 years.
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CONFIDENTIAL 19
Assessment
1) 2c - 5 = c + 4
2) 8r + 4 = 10 + 2r
3) 2x -1 = x + 11
4) 28 - 0.3y = 0.7y - 12
Factor each trinomial by guess and check:
1) c = 9
2) r = 13) x = 12
4) y = 40
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CONFIDENTIAL 20
5) -2 (x + 3) = 4x -3
6) 3c - 4c + 1 = 5c + 2 + 3
7) 5 + 3(q - 4) = 2(q + 1)
8) 5 - (t + 3) = -1 + 2(t -3)
9) 7x - 4 = -2x + 1 + 9x - 5
Factor the trinomial. Check your answer.
5) x = -0.5
6) c = -0.67
7) q = 9
8) t = 3
9) True statement
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CONFIDENTIAL 21
10) A house-painting company charges $376 plus $12 per hour. Another painting company charges
$280 plus $15 per hour.
a. How long is a job for which both companies will charge the same amount?
b. What will that cost be?
10) a. 32 hours b. $760
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CONFIDENTIAL 22
To solve an equation with variables on both sides, useinverse operations to “collect” variable
terms on one side of the equation.
Solving Equations with Variables on Both Sides
Solve each equation.a) 7k = 4k + 15
7k = 4k + 15-4k -4k
3k = 15To collect the variable terms on one side, subtract 4k from both sides.
Since k is multiplied by 3, divide both sides by 3 to undo the multiplication.
3k = 15 3 3k = 5
Let’s review
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CONFIDENTIAL 23
b) 5x - 2 = 3x + 4
5x - 2 = 3x + 4- 3x -3x
2x - 2 = 4
To collect the variable terms on one side, subtract 3x from both sides.
Check
To check your solution, substitute 3 for x in the original equation.
+ 2 +22x = 6
Since 2 is subtracted from 2x, add 2 to both sides to undo the subtraction.
2x = 6 2 2
Since x is multiplied by 2, divide both sides by 2 to undo the multiplication.
x = 3
5x - 2 = 3x + 45 (3) - 2 15 - 2 9 + 4 13 13
3 (3) + 4
review
![Page 24: CONFIDENTIAL 1 Grade 8 Pre-Algebra Solving Equations with Variables on Both Sides.](https://reader035.fdocuments.net/reader035/viewer/2022081515/5a4d1bc67f8b9ab0599d4d5f/html5/thumbnails/24.jpg)
CONFIDENTIAL 24
Simplifying Each Side Before Solving Equations
A) 2(y + 6) = 3y
Distribute 2 to the expression in parentheses.
2y + 12 = 3y- 2y -2y
12 = yCheck
To check your solution, substitute 12 for y in the original equation.
2(y + 6) = 3y2(y) + 2(6) = 3y
To collect the variable terms on one side, subtract 2y from both sides.
2(y + 6) = 3y2(12 + 6) 3(12)
2(18) 3636 36
review
![Page 25: CONFIDENTIAL 1 Grade 8 Pre-Algebra Solving Equations with Variables on Both Sides.](https://reader035.fdocuments.net/reader035/viewer/2022081515/5a4d1bc67f8b9ab0599d4d5f/html5/thumbnails/25.jpg)
CONFIDENTIAL 25
B) 3 - 5b + 2b = -2 - 2(1 - b)
Distribute -2 to the expression in parentheses.
3 = -4 + 5b+3b +3b
Since b is multiplied by 5, divide both sides by 5.
3 - 5b + 2b = -2 - 2(1 - b)3 - 5b + 2b = -2 - 2(1) - 2(-b)3 - 5b + 2b = -2 - 2 + 2b
3 - 3b = -4 + 2b Combine like terms.
Add 3b to both sides.
Since -4 is added to 5b, add 4 to both sides.+4 +4
7 = 5b7 = 5b5 5
1.4 = b
review
![Page 26: CONFIDENTIAL 1 Grade 8 Pre-Algebra Solving Equations with Variables on Both Sides.](https://reader035.fdocuments.net/reader035/viewer/2022081515/5a4d1bc67f8b9ab0599d4d5f/html5/thumbnails/26.jpg)
CONFIDENTIAL 26
An identity is an equation that is true for all values of the variable. An equation that is an identity has infinitely
many solutions. A contradiction is an equation that is not true for any value of the variable. It has no solutions.
Identities and Contradictions
WORDS NUMBERS ALGEBRAIdentity:When solving an equation, if you get an equation that is always true, the original equation is an identity, and it has infinitely many solutions.
2 + 1 = 2 + 1
3 = 3
2 + x = 2 + x- x - x 2 = 2
contradiction:When solving an equation, if you get a false equation, the original equation is a contradiction, and it has no solutions.
1 = 1 + 2
1 = 3
x = x + 3- x - x0 = 3
review
![Page 27: CONFIDENTIAL 1 Grade 8 Pre-Algebra Solving Equations with Variables on Both Sides.](https://reader035.fdocuments.net/reader035/viewer/2022081515/5a4d1bc67f8b9ab0599d4d5f/html5/thumbnails/27.jpg)
CONFIDENTIAL 27
Infinitely Many Solutions or No Solutions
A) x + 4 - 6x = 6 - 5x - 2
Identify like terms.
+ 5x + 5x4 = 4
Solve each equation.
x + 4 - 6x = 6 - 5x - 2
4 - 5x = 4 - 5x Combine like terms on the left and the right.Add 5x to both sides.True statement
The equation x + 4 - 6x = 6 - 5x - 2 is an identity. All values of x will make the equation true. All real
numbers are solutions.
review
![Page 28: CONFIDENTIAL 1 Grade 8 Pre-Algebra Solving Equations with Variables on Both Sides.](https://reader035.fdocuments.net/reader035/viewer/2022081515/5a4d1bc67f8b9ab0599d4d5f/html5/thumbnails/28.jpg)
CONFIDENTIAL 28
A) -8x + 6 + 9x = -17 + x
Identify like terms.
- x - x6 = -17
-8x + 6 + 9x = -17 + x
6 + x = -17 + x Combine like terms .
Subtract x to both sides.
False statement
The equation -8x + 6 + 9x = -17 + x is a contradiction. There is no value of x that will
make the equation true. There are no solutions.
review
![Page 29: CONFIDENTIAL 1 Grade 8 Pre-Algebra Solving Equations with Variables on Both Sides.](https://reader035.fdocuments.net/reader035/viewer/2022081515/5a4d1bc67f8b9ab0599d4d5f/html5/thumbnails/29.jpg)
CONFIDENTIAL 29
When is 36¢ plus 3¢ per minute the same as 6¢ per minute ?
Solution:
36 + 3m = 6m To collect the variable terms on one side, subtract 3m from both sides.
Phone Company ChargesCompany A 36¢ plus 3¢ per minuteCompany B 6¢ per minute
Let m represent minutes, and write expressions for each company’s cost.
The long-distance rates of two phone companies are shown in the table. How long is a call that costs the same amount no matter which company is used?
What is the cost of that call?
- 3m - 3m36 = 3m
Next page
review
![Page 30: CONFIDENTIAL 1 Grade 8 Pre-Algebra Solving Equations with Variables on Both Sides.](https://reader035.fdocuments.net/reader035/viewer/2022081515/5a4d1bc67f8b9ab0599d4d5f/html5/thumbnails/30.jpg)
CONFIDENTIAL 30
12 = m
Since m is multiplied by 3, divide both sides by 3 to undo the multiplication.
The charges will be the same for a 12-minute call using either phone service. To find the cost of this call, evaluate either expression for m = 12:
The cost of a 12-minute call through either company is 72¢.
36 = 3m 3 3
36 + 3m = 36 + 3 (12) = 36 + 36 = 72
6m = 6 (12) = 72
review
![Page 31: CONFIDENTIAL 1 Grade 8 Pre-Algebra Solving Equations with Variables on Both Sides.](https://reader035.fdocuments.net/reader035/viewer/2022081515/5a4d1bc67f8b9ab0599d4d5f/html5/thumbnails/31.jpg)
CONFIDENTIAL 31
You did a great job You did a great job today!today!