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Concept. Example 1 Solve a System by Substitution Use substitution to solve the system of equations. y = –4x + 12 2x + y = 2 Substitute y = –4x + 12 for.

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Presentation on theme: "Concept. Example 1 Solve a System by Substitution Use substitution to solve the system of equations. y = –4x + 12 2x + y = 2 Substitute y = –4x + 12 for."— Presentation transcript:

1 Concept

2 Example 1 Solve a System by Substitution Use substitution to solve the system of equations. y = –4x + 12 2x + y = 2 Substitute y = –4x + 12 for y in the second equation. 2x + y =2Second equation 2x + (–4x + 12) =2y = –4x + 12 2x – 4x + 12 =2Simplify. –2x + 12 =2Combine like terms. –2x =–10Subtract 12 from each side. x =5Divide each side by –2.

3 Example 1 Solve a System by Substitution Answer: The solution is (5, –8). Substitute 5 for x in either equation to find y. y =–4x + 12First equation y =–4(5) + 12Substitute 5 for x. y =–8Simplify.

4 A.A B.B C.C D.D Example 1 Use substitution to solve the system of equations. y = 2x 3x + 4y = 11 A. B.(1, 2) C.(2, 1) D.(0, 0)

5 Example 2 Solve and then Substitute Use substitution to solve the system of equations. x – 2y = –3 3x + 5y = 24 Step 1Solve the first equation for x since the coefficient is 1. x – 2y=–3First equation x – 2y + 2y=–3 + 2yAdd 2y to each side. x=–3 + 2ySimplify.

6 Example 2 Solve and then Substitute Step 2Substitute –3 + 2y for x in the second equation to find the value of y. 3x + 5y=24Second equation 3(–3 + 2y) + 5y=24Substitute –3 + 2y for x. –9 + 6y + 5y=24Distributive Property –9 + 11y=24Combine like terms. –9 + 11y + 9=24 + 9Add 9 to each side. 11y=33Simplify. y=3Divide each side by 11.

7 Example 2 Solve and then Substitute Step 3Find the value of x. x – 2y=–3First equation x – 2(3)=–3Substitute 3 for y. x – 6=–3Simplify. x=3Add 6 to each side. Answer: The solution is (3, 3).

8 A.A B.B C.C D.D Example 2 A.(–2, 6) B.(–3, 3) C.(2, 14) D.(–1, 8) Use substitution to solve the system of equations. 3x – y = –12 –4x + 2y = 20

9 Example 3 No Solution or Infinitely Many Solutions Use substitution to solve the system of equations. 2x + 2y = 8 x + y = –2 Solve the second equation for y. x + y=–2Second equation x + y – x=–2 – xSubtract x from each side. y=–2 – xSimplify. Substitute –2 – x for y in the first equation. 2x + 2y=8First equation 2x + 2(–2 – x)=8y = –x – 2

10 Example 3 No Solution or Infinitely Many Solutions 2x – 4 – 2x=8Distributive Property –4=8Simplify. Answer: no solution The statement –4 = 8 is false. This means there are no solutions of the system of equations.

11 A.A B.B C.C D.D Example 3 A.one; (0, 0) B.no solution C.infinitely many solutions D.cannot be determined Use substitution to solve the system of equations. 3x – 2y = 3 –6x + 4y = –6

12 To solve word problems: 1.define your two variables 2. state the two equations 3. Solve

13 Example 4 Write and Solve a System of Equations NATURE CENTER A nature center charges $35.25 for a yearly membership and $6.25 for a single admission. Last week it sold a combined total of 50 yearly memberships and single admissions for $660.50. How many memberships and how many single admissions were sold? Let x = the number of yearly memberships, and let y = the number of single admissions. So, the two equations are x + y = 50 and 35.25x + 6.25y = 660.50.

14 Example 4 Write and Solve a System of Equations Step 1 Solve the first equation for x. x + y =50First equation x + y – y =50 – ySubtract y from each side. x =50 – ySimplify. Step 2 Substitute 50 – y for x in the second equation. 35.25x + 6.25y =660.50Second equation 35.25(50 – y) + 6.25y =660.50Substitute 50 – y for x.

15 Example 4 Write and Solve a System of Equations 1762.50 – 35.25y + 6.25y =660.50Distributive Property 1762.50 – 29y =660.5Combine like terms. –29y =–1102Subtract 1762.50 from each side. y =38Divide each side by –29.

16 Example 4 Write and Solve a System of Equations Step 3 Substitute 38 for y in either equation to find x. x + y =50First equation x + 38 =50Substitute 38 for y. x =12Subtract 38 from each side. Answer: The nature center sold 12 yearly memberships and 38 single admissions.

17 A.A B.B C.C D.D Example 4 CHEMISTRY Mikhail needs 10 milliliters of 25% HCl (hydrochloric acid) solution for a chemistry experiment. There is a bottle of 10% HCl solution and a bottle of 40% HCl solution in the lab. How much of each solution should he use to obtain the required amount of 25% HCl solution? A.0 mL of 10% solution, 10 mL of 40% solution B.6 mL of 10% solution, 4 mL of 40% solution C.5 mL of 10% solution, 5 mL of 40% solution D.3 mL of 10% solution, 7 mL of 40% solution

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