Problem set: Quadratic Functions

1. Explain the advantage of writing a quadratic function in standard form.

2. How can the vertex of a parabola be used in solving real world problems?

3. Explain why the condition of a0 is imposed in the definition of the quadratic function.

4. What is another name for the standard form of a quadratic function?

5. What two algebraic methods can be used to find the horizontal intercepts of a quadratic function?

For the following exercises, rewrite the quadratic functions in standard form and give the vertex.

6. f(x)=x212x+32

7. g(x)=x2+2x3

8. f(x)=x2x

9. f(x)=x2+5x2

10. h(x)=2x2+8x10

11. k(x)=3x26x9

12. f(x)=2x26x

13. f(x)=3x25x1

For the following exercises, determine whether there is a minimum or maximum value to each quadratic function. Find the value and the axis of symmetry.

14. y(x)=2x2+10x+12

15. f(x)=2x210x+4

16. f(x)=x2+4x+3

17. f(x)=4x2+x1

18. h(t)=4t2+6t1

19. f(x)=12x2+3x+1

20. f(x)=13x22x+3

For the following exercises, determine the domain and range of the quadratic function.

21. f(x)=(x3)2+2

22. f(x)=2(x+3)26

23. f(x)=x2+6x+4

24. f(x)=2x24x+2

25. k(x)=3x26x9

For the following exercises, use the vertex of the graph of the quadratic function and the direction the graph opens to find the domain and range of the function.

26. Vertex (100,100), opens up.

27. Vertex (1,2), opens up.

28. Vertex (1,2) opens down.

29. Vertex (5,11), opens down.

For the following exercises, use the vertex (h, k) and a point on the graph (x, y) to find the general form of the equation of the quadratic function.

30. (h,k)=(2,1),(x,y)=(4,3)

31. (h,k)=(0,1),(x,y)=(2,5)

32. (h,k)=(2,3),(x,y)=(5,12)

33. (h,k)=(5,3),(x,y)=(2,9)

34. (h,k)=(3,2),(x,y)=(10,1)

35. (h,k)=(0,1),(x,y)=(1,0)

36. (h,k)=(1,0),(x,y)=(0,1)

For the following exercises, sketch a graph of the quadratic function and give the vertex, axis of symmetry, and intercepts.

37. f(x)=x22x

38. f(x)=x26x1

39. f(x)=x25x6

40. f(x)=x27x+3

41. f(x)=2x2+5x8

42. f(x)=4x212x3

43. The path of an object projected at a 45 degree angle with initial velocity of 80 feet per second is given by the function h(x)=32(80)2x2+x where x is the horizontal distance traveled and h(x) is the height in feet. Use the TRACE feature of your calculator to determine the height of the object when it has traveled 100 feet away horizontally.

44. A suspension bridge can be modeled by the quadratic function h(x)=.0001x2 with 2000x2000 where |x| is the number of feet from the center and h(x) is height in feet. Use the TRACE feature of your calculator to estimate how far from the center does the bridge have a height of 100 feet.

45. Find the dimensions of the rectangular corral producing the greatest enclosed area given 200 feet of fencing.

46. Find the dimensions of the rectangular corral split into 2 pens of the same size producing the greatest possible enclosed area given 300 feet of fencing.

47. Find the dimensions of the rectangular corral producing the greatest enclosed area split into 3 pens of the same size given 500 feet of fencing.

48. Among all of the pairs of numbers whose sum is 6, find the pair with the largest product. What is the product?

49. Among all of the pairs of numbers whose difference is 12, find the pair with the smallest product. What is the product?

50. Suppose that the price per unit in dollars of a cell phone production is modeled by p=$450.0125x, where x is in thousands of phones produced, and the revenue represented by thousands of dollars is R=xp. Find the production level that will maximize revenue.

51. A rocket is launched in the air. Its height, in meters above sea level, as a function of time, in seconds, is given by h(t)=4.9t2+229t+234. Find the maximum height the rocket attains.

52. A ball is thrown in the air from the top of a building. Its height, in meters above ground, as a function of time, in seconds, is given by h(t)=4.9t2+24t+8. How long does it take to reach maximum height?

53. A soccer stadium holds 62,000 spectators. With a ticket price of $11, the average attendance has been 26,000. When the price dropped to $9, the average attendance rose to 31,000. Assuming that attendance is linearly related to ticket price, what ticket price would maximize revenue?

54. A farmer finds that if she plants 75 trees per acre, each tree will yield 20 bushels of fruit. She estimates that for each additional tree planted per acre, the yield of each tree will decrease by 3 bushels. How many trees should she plant per acre to maximize her harvest?