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4.6B Conic sections

Lesson

Introduction

Learning objective

  • 4.6.A - Represent conic sections with horizontal or vertical symmetry analytically.

Ellipses and their analytical representation

An ellipse is another type of curve in the family of conic sections, characterized by two focal points. Each point on the ellipse maintains a specific relationship to these foci: the sum of the distances from any point on the ellipse to the two foci is always the same, regardless of where on the ellipse the point is located. This property is what gives the ellipse its distinctive, elongated shape.

The analytic representation of an ellipse utilizes the equation \dfrac{(x-h)^{2}}{a^{2}} + \dfrac{(y-k)^{2}}{b^{2}} = 1. In this equation, (h,\, k) refers to the coordinates of the center of the ellipse, a kind of 'balance point' in the middle of the ellipse. The terms a and b represent the horizontal and vertical radii of the ellipse. These values give the lengths of the major and minor axes (the longest and shortest diameters) of the ellipse, and play a crucial role in shaping its form.

A special case of an ellipse is the circle. A circle is essentially an ellipse in which the lengths of the major and minor axes are the same, meaning that a equals b. In this case, the equation of the circle simplifies to (x-h)^{2} + (y-k)^{2} = r^{2}, where r is the radius of the circle.

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Green Ellipse Equation:

\dfrac{(x-2)^{2}}{4^{2}}+\dfrac{(y-4)^{2}}{3^{2}}=1

Purple Ellipse Equation:

\dfrac{(x-(-2))^{2}}{1^{2}}+\dfrac{(y-(-4))^{2}}{2^{2}}=1

Blue Ellipse Equation:

(x-4)^{2} + (y + 3)^{2} = 3^{2}

Examples

Example 1

Given the center (3,\,-2), horizontal radius 4, and vertical radius 4 of an ellipse, find the equation of the ellipse. Then identify the type of the ellipse (whether it is a special case of a circle or not). If it is a circle, find the radius.

Worked Solution
Apply the idea
\displaystyle \dfrac{(x-h)^{2}}{a^{2}} + \dfrac{(y-k)^{2}}{b^{2}}\displaystyle =\displaystyle 1Write the general equation
\displaystyle \dfrac{(x-3)^{2}}{4^{2}} + \dfrac{(y-2)^{2}}{4^{2}}\displaystyle =\displaystyle 1Substitute h=3,\,k=2,\,a^{2}=4 and b^{2}= 4
\displaystyle r\displaystyle =\displaystyle \sqrt{a^{2}}Write the formula
\displaystyle =\displaystyle \sqrt{4^{2}}Substitute a^{2}=4
\displaystyle =\displaystyle 4Evaluate

So, the equation of the circle is (x-3)^{2} + (y+2)^{2} = 4^{2}.

Example 2

Given the equation \dfrac{(x-3)^{2}}{16} + \dfrac{(y+2)^{2}}{9} = 1.

a

Determine the center.

Worked Solution
Create a strategy

We can use this formula:\dfrac{(x-h)^{2}}{a^{2}} + \dfrac{(y-k)^{2}}{b^{2}} = 1 to identify the values of h,\, k,\, a,\, and b.

Apply the idea

The values are h=3,\,k=-2,\,a=4,\, and b=3.

The center is (h,\,k) which is (3,\,-2).

b

Determine the lengths of the major and minor axes.

Worked Solution
Apply the idea

Major axis:

\displaystyle 2a\displaystyle =\displaystyle 2(4)Substitute a=4
\displaystyle =\displaystyle 8Evaluate

Minor axis:

\displaystyle 2b\displaystyle =\displaystyle 2(3)Substitute b=3
\displaystyle =\displaystyle 6Evaluate
c

Identify whether it is a circle or an ellipse.

Worked Solution
Create a strategy

Check if a equals b.

Apply the idea

a=4,\,b=3,\, so a \neq b.

a is not equal to b therefore, the equation is an ellipse.

Idea summary

An ellipse is a particular type of curve that belongs to the family of conic sections, and is defined by two focal points.

The equation \dfrac{(x-h)^{2}}{a^{2}} + \dfrac{(y-k)^{2}}{b^{2}} = 1 analytically represents an ellipse, where (h,\, k) are the coordinates of the ellipse's center.

A circle is a special instance of an ellipse. In a circle, the lengths of the major and minor axes are identical.

Hyperbolas and their analytical representation

A hyperbola, a unique member of the conic sections family. Where an ellipse is a single, continuous curve and a parabola a curve opening in one direction, a hyperbola consists of two distinct curves, each a mirror image of the other. These are called the branches of the hyperbola.

Each branch of the hyperbola features a point known as a vertex, and the point that lies exactly in the middle of the vertices is known as the center of the hyperbola. The center serves as a kind of balancing point, akin to the role played by the center in an ellipse or the vertex in a parabola.

The equation representing a hyperbola varies depending on its orientation. If the hyperbola opens left and right, we use the equation \dfrac{(x-h)^{2}}{a^{2}} - \dfrac{(y-k)^{2}}{b^{2}} = 1, where (h,\, k) denotes the center of the hyperbola. On the other hand, if the hyperbola opens up and down, we use the equation \dfrac{(y-k)^{2}}{b^{2}} - \dfrac{(x-h)^{2}}{a^{2}} = 1. In these equations, a and b stand for the distances from the center to the vertices and to the lines of symmetry.

A key feature of a hyperbola is the presence of asymptotes, which are lines that the hyperbola approaches but never crosses as it extends to infinity. These asymptotes intersect at the center of the hyperbola and form a kind of boundary for the hyperbola. They're given by the equations y-k = \pm \dfrac{b}{a}(x - h), where the \pm indicates that there are two asymptotes, one positive and one negative.

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The diagram illustrates a hyperbola that opens left and right. The equation is shown as \dfrac{(x-2)^{2}}{4} - \dfrac{(y+3)^{2}}{9} = 1. It's clear that the center of the hyperbola is at (2,\, -3). The vertices are at points (0,\, -3) and (4,\, -3), and the asymptotes(in red) are given by the lines y+3 = \pm \dfrac{3}{2} (x - 2).

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Examples

Example 3

Given the equation of a hyperbola, \dfrac{(x-3)^{2}}{9} - \dfrac{(y+2)^{2}}{4} = 1.

a

Identify the center.

Worked Solution
Create a strategy

We can use this formula:\dfrac{(x-h)^{2}}{a^{2}} + \dfrac{(y-k)^{2}}{b^{2}} = 1 to identify the values of h,\, k,\, a,\, and b.

Apply the idea

The values are h=3,\,k=-2,\,a=3,\, and b=2.

The center is (h,\,k) which is (3,\,-2).

b

Identify the vertices.

Worked Solution
Create a strategy

We can use the formula: (h + a,\,k),\,(h-a,\,k).

Apply the idea
\displaystyle (h + a,\,k)\displaystyle =\displaystyle (3 + 3,\,-2)Substitute h = 3,\,a=3 and k=-2
\displaystyle =\displaystyle (6,\,-2)Evaluate
\displaystyle (h - a,\,k)\displaystyle =\displaystyle (3 - 3,\,-2)Substitute h = 3,\,a=3 and k=-2
\displaystyle =\displaystyle (0,\,-2)Evaluate

The vertices are (6,\,-2) and (0,\,-2).

c

Identify the asymptotes.

Worked Solution
Create a strategy

Remember that asymptotes of the hyperbola are given by the equation y-k = \pm \dfrac{b}{a}(x - h).

Apply the idea
\displaystyle y+2\displaystyle =\displaystyle \pm \dfrac{2}{3}(x - 3)Substitute h=3,\,k=−2,\,a=3,\, and b=2
\displaystyle y\displaystyle =\displaystyle \pm \dfrac{2}{3}(x - 3)-2Simplify
d

Sketch the hyperbola.

Worked Solution
Apply the idea

The center of the hyperbola is (3,\, -2), the vertices are at (0,\, -2) and (6,\, -2), and the asymptotes are given by the equations y = \dfrac{2}{3} (x - 3) - 2 and y = -\dfrac{2}{3} (x - 3) - 2. When we graph these points and lines, we get a hyperbola opening to the left and right, confirming that our solution is correct.

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Example 4

Given a hyperbola with vertices at (0,\, 3) and (0,\, -3), and with the distance from the center to the line of symmetry being 2 units.

a

Find the equation of the hyperbola that opens up and down.

Worked Solution
Create a strategy

We start by identifying the values of (h,\, k),\, a, and b. The center of the hyperbola (h,\, k) is the midpoint of the vertices. a is the distance from the center to a vertex, and b is the distance from the center to the line of symmetry. Once we have these values, we can plug them into the equation of a hyperbola that opens up and down: \dfrac{(y-k)^2}{a^2} - \dfrac{(x-h)^2}{b^2} = 1.

Apply the idea

Since the vertices are at (0,\, 3) and (0,\, -3), the center of the hyperbola is at the midpoint of the vertices, which is (0,\, 0). Thus, h = 0 and k = 0.

The distance from the center to a vertex is a, which is 3 units. The distance from the center to the line of symmetry is b, which is 2 units.

\displaystyle \dfrac{(y-0)^2}{3^2} - \dfrac{(x-0)^2}{2^2}\displaystyle =\displaystyle 1Substitute h=0,\,k=0,\,a=3 and b=2
\displaystyle \dfrac{y^2}{9} - \dfrac{x^2}{4} \displaystyle =\displaystyle 1Simplify
b

Determine the equations of the asymptotes.

Worked Solution
Create a strategy

Use formula for the asymptotes: y-k = \pm \dfrac{b}{a} (x - h).

Apply the idea
\displaystyle y-0\displaystyle =\displaystyle \pm \dfrac{2}{3} (x - 0)Substitute h=0,\,k=0,\,a=3 and b=2
\displaystyle y\displaystyle =\displaystyle \pm \dfrac{2}{3}xSimplify
Idea summary

The equation of a hyperbola depends on its orientation. If it opens left and right, the equation is \dfrac{(x-h)^2}{a^2} - \dfrac{(y-k)^2}{b^2} =1, where (h,\, k) represents the center. If it opens up and down, the equation becomes \dfrac{(y-k)^2}{b^2} - \dfrac{(x-h)^2}{a^2} =1. Here, a and b denote distances from the center to the vertices and to the lines of symmetry, respectively.

A defining characteristic of a hyperbola is its asymptotes. They follow the equations y-k = \pm \dfrac{b}{a}(x - h), indicating that there are two asymptotes, one positive and one negative.

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