Chapter 8.1 Conic Sections/Parabolas Honors Pre-Calculus Rogers High School
Introduction to Conic Sections Conic sections are defined geometrically as the result of the intersection of a plane with a right circular cone. Algebraically, conic sections are second degree equations of two variables which includes equations of the form Ax 2 + Bxy + Cy 2 + Dx + Ey + F = 0 where A, B, and C do not all equal 0. The type of conic section is determined by the value of the coefficients. The most commonly studied conic sections include parabolas, ellipses, circles, lines, and points. For the next 2 or 3 weeks, we will focus on parabolas, circles, ellipses, and hyperbolas.
Graphical Representation of Conic Sections
Parabolas (Basics) Parabolas are defined as follows:
Parabola Terminology Focus a fixed point which lies on the axis of symmetry and inside the parabola Directrix a fixed line which is perpendicular to the axis of symmetry and lies outside the parabola Vertex the point where the parabola and the axis of symmetry intersect; it is halfway between the focus and directrix Focal Axis or Axis of Symmetry a line which passes through the middle of a parabola and intersects the focus, vertex, and directrix
Parabola Terminology Focal Length the directed distance from the vertex to the focus of a parabola Focal Width the length of a chord which is perpendicular to the focal axis and passes through the focus of a parabola Latus Rectum a chord which is perpendicular to the axis and passes through the focus of the parabola Standard Form (Equation) equations of the form x h 2 = 4p(y k) or y k 2 = 4p(x h)
Parabolas with Vertex at (0,0)
Graphs of Parabolas with Vertex at Origin
EXAMPLE #1 Find the focus, directrix, and the focal width of the parabola defined by the equation: y = 1 3 x 2 First, we need this to be in standard form. So we have x 2 = 3y. We need the value of p. From the equation, we know 4p = 3. Thus, p is 3 4. The focus is always at (0, p). So it is at (0, -3/4). The directrix is located at y = p. Thus, the directrix is at y = 3 4. Finally, the focal width is 4p. Thus, the focal width is 3.
EXAMPLE #2 Find the equation, in standard form, of a parabola if the focus is (-2, 0) and the directrix is the line x = 2. It may help to briefly sketch the elements given to visualize the graph. From your sketch, you should see that the parabola opens to the left. Additionally, its vertex must be halfway between the focus and directrix. So the vertex is at (0, 0). We need to find p. We know p is the directed distance from the vertex to the focus. So p is -2. Thus, our equation is of the form y 2 = 4px so y 2 = 8x is the equation.
HOMEWORK ASSIGNMENT (DAY 1) p. 587 [7 10, 11 16, 17 20, 31, 32, 37, 39]
Parabolas with Vertex (h, k)
Graphs of Parabolas with Vertex (h, k)
EXAMPLE #3 Find the standard form equation of a parabola with vertex (3, 4) and focus (5, 4). By graphing the information given, we can see this parabola opens to right. So the equation is of the form y k 2 = 4p(x h) and p is positive as well. We know the vertex is (3, 4). Thus, h = 3 and k = 4. Finally, we need to find p. Recall that p is the directed distance from vertex to focus. So we are moving from x = 3 to x = 5. That is a distance of 2. So p = 2. y k 2 = 4p(x h) becomes y 4 2 = 8(x 3)
EXAMPLE #4 Use your calculator to graph y 4 2 = 8(x 3) which was the equation we just found. Notice that this equation will contain y 2 which cannot normally be graphed in your standard Y = screen. So let s work on solving for y. y 4 2 = 8 x 3 [ORIGINAL] y 4 = ± 8 x 3 [SQUARE ROOT BOTH SIDES] y = 4 ± 8 x 3 [ADD 4 BOTH SIDES] We can graph each part + and separately in the calculator.
EXAMPLE #4 Put each part into the Y = screen. Then graph the result. You may need to change the window to get it to work well. Here I am using x values from -1 to 7 and y values from -2 to 10.
EXAMPLE #5 Show that y 2 6x + 2y + 13 = 0 is a parabola and find its vertex, focus, and directrix. First of all, this is a parabola because it has only one variable squared. However, let s put it into standard form to see that as well. y 2 6x + 2y + 13 = 0 y 2 + 2y + 1 = 6x 13 + 1 [COMPLETE SQUARE] y + 1 2 = 6x 12 FACTOR y + 1 2 = 6 x 2 [FACTOR]
EXAMPLE #5 y + 1 2 = 6 x 2 Standard form is y k 2 = 4p x h Thus, we know the vertex is (h, k) which is (2, -1). The value of p must be 6/4 or 3/2. The focus would be at (h + p, k) which is (3.5, -1). The directrix is the line x = h p which would be x = 0.5.
Applications of Parabolas Since everyone wonders Why do we need to know this? I will point out the following reasons that parabolas are useful. Some of these may be known already. Projectile Motion Generally, projectiles follow parabolic curves when it motion Physics Many physics applications such as the stopping distance of a car use quadratic functions Electromagnetic Waves Many products which rely on electromagnetic waves such as car headlights, some headers, high tech microphones, and satellites use parabolic shapes to maximize effectiveness
EXAMPLE #6 On the sidelines of each of its televised football games, the ESPN uses a parabolic reflector with a microphone at the reflector s focus to capture the conversations among players on the field. If the parabolic reflector is 3 ft across and 1 ft deep, where should the microphone be placed? First of all, we will sketch a 2 dimension representation of the parabolic curve being used here.
EXAMPLE #6 From our drawing, we have a parabola of the form x 2 = 4py. We know the points (-1.5, 1) and (1.5, 1) lie on the graph as we were told it was 3 feet across. We can use these points to find p. ±1.5 2 = 4p 1 SUBSTITUTION 2.25 = 4p SIMPLIFY 0.5625 = p [DIVIDE BY 4] So the microphone should be 0.5625 feet from the vertex of the reflector.
HOMEWORK ASSIGNMENT (DAY 2) p. 587 [1 6, 21 29 odd, 33 36, 49 55 odd, 61]