The Ellipse
Learning Objectives
By the end of this section, you will be able to:- Write equations of ellipses in standard form.
- Graph ellipses centered at the origin.
- Graph ellipses not centered at the origin.
- Solve applied problems involving ellipses.
Writing Equations of Ellipses in Standard Form
A conic section, or conic, is a shape resulting from intersecting a right circular cone with a plane. The angle at which the plane intersects the cone determines the shape.Deriving the Equation of an Ellipse Centered at the Origin
To derive the equation of an ellipse centered at the origin, we begin with the foci [latex]\left(-c,0\right)[/latex] and [latex]\left(c,0\right)[/latex]. The ellipse is the set of all points [latex]\left(x,y\right)[/latex] such that the sum of the distances from [latex]\left(x,y\right)[/latex] to the foci is constant, as shown in Figure 5.Writing Equations of Ellipses Centered at the Origin in Standard Form
Standard forms of equations tell us about key features of graphs. Take a moment to recall some of the standard forms of equations we’ve worked with in the past: linear, quadratic, cubic, exponential, logarithmic, and so on. By learning to interpret standard forms of equations, we are bridging the relationship between algebraic and geometric representations of mathematical phenomena. The key features of the ellipse are its center, vertices, co-vertices, foci, and lengths and positions of the major and minor axes. Just as with other equations, we can identify all of these features just by looking at the standard form of the equation. There are four variations of the standard form of the ellipse. These variations are categorized first by the location of the center (the origin or not the origin), and then by the position (horizontal or vertical). Each is presented along with a description of how the parts of the equation relate to the graph. Interpreting these parts allows us to form a mental picture of the ellipse.A General Note: Standard Forms of the Equation of an Ellipse with Center (0,0)
The standard form of the equation of an ellipse with center [latex]\left(0,0\right)[/latex] and major axis on the x-axis is- [latex]a>b[/latex]
- the length of the major axis is [latex]2a[/latex]
- the coordinates of the vertices are [latex]\left(\pm a,0\right)[/latex]
- the length of the minor axis is [latex]2b[/latex]
- the coordinates of the co-vertices are [latex]\left(0,\pm b\right)[/latex]
- the coordinates of the foci are [latex]\left(\pm c,0\right)[/latex] , where [latex]{c}^{2}={a}^{2}-{b}^{2}[/latex].
- [latex]a>b[/latex]
- the length of the major axis is [latex]2a[/latex]
- the coordinates of the vertices are [latex]\left(0,\pm a\right)[/latex]
- the length of the minor axis is [latex]2b[/latex]
- the coordinates of the co-vertices are [latex]\left(\pm b,0\right)[/latex]
- the coordinates of the foci are [latex]\left(0,\pm c\right)[/latex] , where [latex]{c}^{2}={a}^{2}-{b}^{2}[/latex].
How To: Given the vertices and foci of an ellipse centered at the origin, write its equation in standard form.
- Determine whether the major axis lies on the x- or y-axis.
- If the given coordinates of the vertices and foci have the form [latex]\left(\pm a,0\right)[/latex] and [latex]\left(\pm c,0\right)[/latex] respectively, then the major axis is the x-axis. Use the standard form [latex]\frac{{x}^{2}}{{a}^{2}}+\frac{{y}^{2}}{{b}^{2}}=1[/latex].
- If the given coordinates of the vertices and foci have the form [latex]\left(0,\pm a\right)[/latex] and [latex]\left(\pm c,0\right)[/latex], respectively, then the major axis is the y-axis. Use the standard form [latex]\frac{{x}^{2}}{{b}^{2}}+\frac{{y}^{2}}{{a}^{2}}=1[/latex].
- Use the equation [latex]{c}^{2}={a}^{2}-{b}^{2}[/latex], along with the given coordinates of the vertices and foci, to solve for [latex]{b}^{2}[/latex].
- Substitute the values for [latex]{a}^{2}[/latex] and [latex]{b}^{2}[/latex] into the standard form of the equation determined in Step 1.
Example 1: Writing the Equation of an Ellipse Centered at the Origin in Standard Form
What is the standard form equation of the ellipse that has vertices [latex]\left(\pm 8,0\right)[/latex] and foci [latex]\left(\pm 5,0\right)?[/latex]Solution
The foci are on the x-axis, so the major axis is the x-axis. Thus, the equation will have the formTry It 1
What is the standard form equation of the ellipse that has vertices [latex]\left(0,\pm 4\right)[/latex] and foci [latex]\left(0,\pm \sqrt{15}\right)?[/latex] SolutionQ & A
Can we write the equation of an ellipse centered at the origin given coordinates of just one focus and vertex?
Yes. Ellipses are symmetrical, so the coordinates of the vertices of an ellipse centered around the origin will always have the form [latex]\left(\pm a,0\right)[/latex] or [latex]\left(0,\pm a\right)[/latex]. Similarly, the coordinates of the foci will always have the form [latex]\left(\pm c,0\right)[/latex] or [latex]\left(0,\pm c\right)[/latex]. Knowing this, we can use [latex]a[/latex] and [latex]c[/latex] from the given points, along with the equation [latex]{c}^{2}={a}^{2}-{b}^{2}[/latex], to find [latex]{b}^{2}[/latex].Writing Equations of Ellipses Not Centered at the Origin
Like the graphs of other equations, the graph of an ellipse can be translated. If an ellipse is translated [latex]h[/latex] units horizontally and [latex]k[/latex] units vertically, the center of the ellipse will be [latex]\left(h,k\right)[/latex]. This translation results in the standard form of the equation we saw previously, with [latex]x[/latex] replaced by [latex]\left(x-h\right)[/latex] and y replaced by [latex]\left(y-k\right)[/latex].A General Note: Standard Forms of the Equation of an Ellipse with Center (h, k)
The standard form of the equation of an ellipse with center [latex]\left(h,\text{ }k\right)[/latex] and major axis parallel to the x-axis is- [latex]a>b[/latex]
- the length of the major axis is [latex]2a[/latex]
- the coordinates of the vertices are [latex]\left(h\pm a,k\right)[/latex]
- the length of the minor axis is [latex]2b[/latex]
- the coordinates of the co-vertices are [latex]\left(h,k\pm b\right)[/latex]
- the coordinates of the foci are [latex]\left(h\pm c,k\right)[/latex], where [latex]{c}^{2}={a}^{2}-{b}^{2}[/latex].
- [latex]a>b[/latex]
- the length of the major axis is [latex]2a[/latex]
- the coordinates of the vertices are [latex]\left(h,k\pm a\right)[/latex]
- the length of the minor axis is [latex]2b[/latex]
- the coordinates of the co-vertices are [latex]\left(h\pm b,k\right)[/latex]
- the coordinates of the foci are [latex]\left(h,k\pm c\right)[/latex], where [latex]{c}^{2}={a}^{2}-{b}^{2}[/latex].
How To: Given the vertices and foci of an ellipse not centered at the origin, write its equation in standard form.
- Determine whether the major axis is parallel to the x- or y-axis.
- If the y-coordinates of the given vertices and foci are the same, then the major axis is parallel to the x-axis. Use the standard form [latex]\frac{{\left(x-h\right)}^{2}}{{a}^{2}}+\frac{{\left(y-k\right)}^{2}}{{b}^{2}}=1[/latex].
- If the x-coordinates of the given vertices and foci are the same, then the major axis is parallel to the y-axis. Use the standard form [latex]\frac{{\left(x-h\right)}^{2}}{{b}^{2}}+\frac{{\left(y-k\right)}^{2}}{{a}^{2}}=1[/latex].
- Identify the center of the ellipse [latex]\left(h,k\right)[/latex] using the midpoint formula and the given coordinates for the vertices.
- Find [latex]{a}^{2}[/latex] by solving for the length of the major axis, [latex]2a[/latex], which is the distance between the given vertices.
- Find [latex]{c}^{2}[/latex] using [latex]h[/latex] and [latex]k[/latex], found in Step 2, along with the given coordinates for the foci.
- Solve for [latex]{b}^{2}[/latex] using the equation [latex]{c}^{2}={a}^{2}-{b}^{2}[/latex].
- Substitute the values for [latex]h,k,{a}^{2}[/latex], and [latex]{b}^{2}[/latex] into the standard form of the equation determined in Step 1.
Example 2: Writing the Equation of an Ellipse Centered at a Point Other Than the Origin
What is the standard form equation of the ellipse that has vertices [latex]\left(-2,-8\right)[/latex] and [latex]\left(-2,\text{2}\right)[/latex] and foci [latex]\left(-2,-7\right)[/latex] and [latex]\left(-2,\text{1}\right)?[/latex]Solution
The x-coordinates of the vertices and foci are the same, so the major axis is parallel to the y-axis. Thus, the equation of the ellipse will have the formTry It 2
What is the standard form equation of the ellipse that has vertices [latex]\left(-3,3\right)[/latex] and [latex]\left(5,3\right)[/latex] and foci [latex]\left(1 - 2\sqrt{3},3\right)[/latex] and [latex]\left(1+2\sqrt{3},3\right)?[/latex] SolutionGraphing Ellipses Centered at the Origin
Just as we can write the equation for an ellipse given its graph, we can graph an ellipse given its equation. To graph ellipses centered at the origin, we use the standard form [latex]\frac{{x}^{2}}{{a}^{2}}+\frac{{y}^{2}}{{b}^{2}}=1,\text{ }a>b[/latex] for horizontal ellipses and [latex]\frac{{x}^{2}}{{b}^{2}}+\frac{{y}^{2}}{{a}^{2}}=1,\text{ }a>b[/latex] for vertical ellipses.How To: Given the standard form of an equation for an ellipse centered at [latex]\left(0,0\right)[/latex], sketch the graph.
- Use the standard forms of the equations of an ellipse to determine the major axis, vertices, co-vertices, and foci.
- If the equation is in the form [latex]\frac{{x}^{2}}{{a}^{2}}+\frac{{y}^{2}}{{b}^{2}}=1[/latex], where [latex]a>b[/latex], then
- the major axis is the x-axis
- the coordinates of the vertices are [latex]\left(\pm a,0\right)[/latex]
- the coordinates of the co-vertices are [latex]\left(0,\pm b\right)[/latex]
- the coordinates of the foci are [latex]\left(\pm c,0\right)[/latex]
- If the equation is in the form [latex]\frac{{x}^{2}}{{b}^{2}}+\frac{{y}^{2}}{{a}^{2}}=1[/latex], where [latex]a>b[/latex], then
- the major axis is the y-axis
- the coordinates of the vertices are [latex]\left(0,\pm a\right)[/latex]
- the coordinates of the co-vertices are [latex]\left(\pm b,0\right)[/latex]
- the coordinates of the foci are [latex]\left(0,\pm c\right)[/latex]
- If the equation is in the form [latex]\frac{{x}^{2}}{{a}^{2}}+\frac{{y}^{2}}{{b}^{2}}=1[/latex], where [latex]a>b[/latex], then
- Solve for [latex]c[/latex] using the equation [latex]{c}^{2}={a}^{2}-{b}^{2}[/latex].
- Plot the center, vertices, co-vertices, and foci in the coordinate plane, and draw a smooth curve to form the ellipse.
Example 3: Graphing an Ellipse Centered at the Origin
Graph the ellipse given by the equation, [latex]\frac{{x}^{2}}{9}+\frac{{y}^{2}}{25}=1[/latex]. Identify and label the center, vertices, co-vertices, and foci.Solution
First, we determine the position of the major axis. Because [latex]25>9[/latex], the major axis is on the y-axis. Therefore, the equation is in the form [latex]\frac{{x}^{2}}{{b}^{2}}+\frac{{y}^{2}}{{a}^{2}}=1[/latex], where [latex]{b}^{2}=9[/latex] and [latex]{a}^{2}=25[/latex]. It follows that:- the center of the ellipse is [latex]\left(0,0\right)[/latex]
- the coordinates of the vertices are [latex]\left(0,\pm a\right)=\left(0,\pm \sqrt{25}\right)=\left(0,\pm 5\right)[/latex]
- the coordinates of the co-vertices are [latex]\left(\pm b,0\right)=\left(\pm \sqrt{9},0\right)=\left(\pm 3,0\right)[/latex]
- the coordinates of the foci are [latex]\left(0,\pm c\right)[/latex], where [latex]{c}^{2}={a}^{2}-{b}^{2}[/latex] Solving for [latex]c[/latex], we have:
Try It 3
Graph the ellipse given by the equation [latex]\frac{{x}^{2}}{36}+\frac{{y}^{2}}{4}=1[/latex]. Identify and label the center, vertices, co-vertices, and foci. SolutionExample 4: Graphing an Ellipse Centered at the Origin from an Equation Not in Standard Form
Graph the ellipse given by the equation [latex]4{x}^{2}+25{y}^{2}=100[/latex]. Rewrite the equation in standard form. Then identify and label the center, vertices, co-vertices, and foci.Solution
First, use algebra to rewrite the equation in standard form.- the center of the ellipse is [latex]\left(0,0\right)[/latex]
- the coordinates of the vertices are [latex]\left(\pm a,0\right)=\left(\pm \sqrt{25},0\right)=\left(\pm 5,0\right)[/latex]
- the coordinates of the co-vertices are [latex]\left(0,\pm b\right)=\left(0,\pm \sqrt{4}\right)=\left(0,\pm 2\right)[/latex]
- the coordinates of the foci are [latex]\left(\pm c,0\right)[/latex], where [latex]{c}^{2}={a}^{2}-{b}^{2}[/latex]. Solving for [latex]c[/latex], we have:
Try It 4
Graph the ellipse given by the equation [latex]49{x}^{2}+16{y}^{2}=784[/latex]. Rewrite the equation in standard form. Then identify and label the center, vertices, co-vertices, and foci. SolutionGraphing Ellipses Not Centered at the Origin
When an ellipse is not centered at the origin, we can still use the standard forms to find the key features of the graph. When the ellipse is centered at some point, [latex]\left(h,k\right)[/latex], we use the standard forms [latex]\frac{{\left(x-h\right)}^{2}}{{a}^{2}}+\frac{{\left(y-k\right)}^{2}}{{b}^{2}}=1,\text{ }a>b[/latex] for horizontal ellipses and [latex]\frac{{\left(x-h\right)}^{2}}{{b}^{2}}+\frac{{\left(y-k\right)}^{2}}{{a}^{2}}=1,\text{ }a>b[/latex] for vertical ellipses. From these standard equations, we can easily determine the center, vertices, co-vertices, foci, and positions of the major and minor axes.How To: Given the standard form of an equation for an ellipse centered at [latex]\left(h,k\right)[/latex], sketch the graph.
- Use the standard forms of the equations of an ellipse to determine the center, position of the major axis, vertices, co-vertices, and foci.
- If the equation is in the form [latex]\frac{{\left(x-h\right)}^{2}}{{a}^{2}}+\frac{{\left(y-k\right)}^{2}}{{b}^{2}}=1[/latex], where [latex]a>b[/latex], then
- the center is [latex]\left(h,k\right)[/latex]
- the major axis is parallel to the x-axis
- the coordinates of the vertices are [latex]\left(h\pm a,k\right)[/latex]
- the coordinates of the co-vertices are [latex]\left(h,k\pm b\right)[/latex]
- the coordinates of the foci are [latex]\left(h\pm c,k\right)[/latex]
- If the equation is in the form [latex]\frac{{\left(x-h\right)}^{2}}{{b}^{2}}+\frac{{\left(y-k\right)}^{2}}{{a}^{2}}=1[/latex], where [latex]a>b[/latex], then
- the center is [latex]\left(h,k\right)[/latex]
- the major axis is parallel to the y-axis
- the coordinates of the vertices are [latex]\left(h,k\pm a\right)[/latex]
- the coordinates of the co-vertices are [latex]\left(h\pm b,k\right)[/latex]
- the coordinates of the foci are [latex]\left(h,k\pm c\right)[/latex]
- If the equation is in the form [latex]\frac{{\left(x-h\right)}^{2}}{{a}^{2}}+\frac{{\left(y-k\right)}^{2}}{{b}^{2}}=1[/latex], where [latex]a>b[/latex], then
- Solve for [latex]c[/latex] using the equation [latex]{c}^{2}={a}^{2}-{b}^{2}[/latex].
- Plot the center, vertices, co-vertices, and foci in the coordinate plane, and draw a smooth curve to form the ellipse.
Example 5: Graphing an Ellipse Centered at (h, k)
Graph the ellipse given by the equation, [latex]\frac{{\left(x+2\right)}^{2}}{4}+\frac{{\left(y - 5\right)}^{2}}{9}=1[/latex]. Identify and label the center, vertices, co-vertices, and foci.Solution
First, we determine the position of the major axis. Because [latex]9>4[/latex], the major axis is parallel to the y-axis. Therefore, the equation is in the form [latex]\frac{{\left(x-h\right)}^{2}}{{b}^{2}}+\frac{{\left(y-k\right)}^{2}}{{a}^{2}}=1[/latex], where [latex]{b}^{2}=4[/latex] and [latex]{a}^{2}=9[/latex]. It follows that:- the center of the ellipse is [latex]\left(h,k\right)=\left(-2,\text{5}\right)[/latex]
- the coordinates of the vertices are [latex]\left(h,k\pm a\right)=\left(-2,5\pm \sqrt{9}\right)=\left(-2,5\pm 3\right)[/latex], or [latex]\left(-2,\text{2}\right)[/latex] and [latex]\left(-2,\text{8}\right)[/latex]
- the coordinates of the co-vertices are [latex]\left(h\pm b,k\right)=\left(-2\pm \sqrt{4},5\right)=\left(-2\pm 2,5\right)[/latex], or [latex]\left(-4,5\right)[/latex] and [latex]\left(0,\text{5}\right)[/latex]
- the coordinates of the foci are [latex]\left(h,k\pm c\right)[/latex], where [latex]{c}^{2}={a}^{2}-{b}^{2}[/latex]. Solving for [latex]c[/latex], we have:
Try It 5
Graph the ellipse given by the equation [latex]\frac{{\left(x - 4\right)}^{2}}{36}+\frac{{\left(y - 2\right)}^{2}}{20}=1[/latex]. Identify and label the center, vertices, co-vertices, and foci. SolutionHow To: Given the general form of an equation for an ellipse centered at (h, k), express the equation in standard form.
- Recognize that an ellipse described by an equation in the form [latex]a{x}^{2}+b{y}^{2}+cx+dy+e=0[/latex] is in general form.
- Rearrange the equation by grouping terms that contain the same variable. Move the constant term to the opposite side of the equation.
- Factor out the coefficients of the [latex]{x}^{2}[/latex] and [latex]{y}^{2}[/latex] terms in preparation for completing the square.
- Complete the square for each variable to rewrite the equation in the form of the sum of multiples of two binomials squared set equal to a constant, [latex]{m}_{1}{\left(x-h\right)}^{2}+{m}_{2}{\left(y-k\right)}^{2}={m}_{3}[/latex], where [latex]{m}_{1},{m}_{2}[/latex], and [latex]{m}_{3}[/latex] are constants.
- Divide both sides of the equation by the constant term to express the equation in standard form.
Example 6: Graphing an Ellipse Centered at (h, k) by First Writing It in Standard Form
Graph the ellipse given by the equation [latex]4{x}^{2}+9{y}^{2}-40x+36y+100=0[/latex]. Identify and label the center, vertices, co-vertices, and foci.Solution
We must begin by rewriting the equation in standard form.- the center of the ellipse is [latex]\left(h,k\right)=\left(5,-2\right)[/latex]
- the coordinates of the vertices are [latex]\left(h\pm a,k\right)=\left(5\pm \sqrt{9},-2\right)=\left(5\pm 3,-2\right)[/latex], or [latex]\left(2,-2\right)[/latex] and [latex]\left(8,-2\right)[/latex]
- the coordinates of the co-vertices are [latex]\left(h,k\pm b\right)=\left(\text{5},-2\pm \sqrt{4}\right)=\left(\text{5},-2\pm 2\right)[/latex], or [latex]\left(5,-4\right)[/latex] and [latex]\left(5,\text{0}\right)[/latex]
- the coordinates of the foci are [latex]\left(h\pm c,k\right)[/latex], where [latex]{c}^{2}={a}^{2}-{b}^{2}[/latex]. Solving for [latex]c[/latex], we have:
Try It 6
Express the equation of the ellipse given in standard form. Identify the center, vertices, co-vertices, and foci of the ellipse.Solving Applied Problems Involving Ellipses
Many real-world situations can be represented by ellipses, including orbits of planets, satellites, moons and comets, and shapes of boat keels, rudders, and some airplane wings. A medical device called a lithotripter uses elliptical reflectors to break up kidney stones by generating sound waves. Some buildings, called whispering chambers, are designed with elliptical domes so that a person whispering at one focus can easily be heard by someone standing at the other focus. This occurs because of the acoustic properties of an ellipse. When a sound wave originates at one focus of a whispering chamber, the sound wave will be reflected off the elliptical dome and back to the other focus. In the whisper chamber at the Museum of Science and Industry in Chicago, two people standing at the foci—about 43 feet apart—can hear each other whisper.Example 7: Locating the Foci of a Whispering Chamber
The Statuary Hall in the Capitol Building in Washington, D.C. is a whispering chamber. Its dimensions are 46 feet wide by 96 feet long as shown in Figure 13.a. What is the standard form of the equation of the ellipse representing the outline of the room? Hint: assume a horizontal ellipse, and let the center of the room be the point [latex]\left(0,0\right)[/latex].
b. If two senators standing at the foci of this room can hear each other whisper, how far apart are the senators? Round to the nearest foot.
Solution
-
- Solving for [latex]a[/latex], we have [latex]2a=96[/latex], so [latex]a=48[/latex], and [latex]{a}^{2}=2304[/latex].
- Solving for [latex]b[/latex], we have [latex]2b=46[/latex], so [latex]b=23[/latex], and [latex]{b}^{2}=529[/latex].
Therefore, the equation of the ellipse is [latex]\frac{{x}^{2}}{2304}+\frac{{y}^{2}}{529}=1[/latex].
Try It 7
Suppose a whispering chamber is 480 feet long and 320 feet wide.a. What is the standard form of the equation of the ellipse representing the room? Hint: assume a horizontal ellipse, and let the center of the room be the point [latex]\left(0,0\right)[/latex].
b. If two people are standing at the foci of this room and can hear each other whisper, how far apart are the people? Round to the nearest foot.
SolutionKey Equations
Horizontal ellipse, center at origin | [latex]\frac{{x}^{2}}{{a}^{2}}+\frac{{y}^{2}}{{b}^{2}}=1,\text{ }a>b[/latex] |
Vertical ellipse, center at origin | [latex]\frac{{x}^{2}}{{b}^{2}}+\frac{{y}^{2}}{{a}^{2}}=1,\text{ }a>b[/latex] |
Horizontal ellipse, center [latex]\left(h,k\right)[/latex] | [latex]\frac{{\left(x-h\right)}^{2}}{{a}^{2}}+\frac{{\left(y-k\right)}^{2}}{{b}^{2}}=1,\text{ }a>b[/latex] |
Vertical ellipse, center [latex]\left(h,k\right)[/latex] | [latex]\frac{{\left(x-h\right)}^{2}}{{b}^{2}}+\frac{{\left(y-k\right)}^{2}}{{a}^{2}}=1,\text{ }a>b[/latex] |
Key Concepts
- An ellipse is the set of all points [latex]\left(x,y\right)[/latex] in a plane such that the sum of their distances from two fixed points is a constant. Each fixed point is called a focus (plural: foci).
- When given the coordinates of the foci and vertices of an ellipse, we can write the equation of the ellipse in standard form.
- When given an equation for an ellipse centered at the origin in standard form, we can identify its vertices, co-vertices, foci, and the lengths and positions of the major and minor axes in order to graph the ellipse.
- When given the equation for an ellipse centered at some point other than the origin, we can identify its key features and graph the ellipse.
- Real-world situations can be modeled using the standard equations of ellipses and then evaluated to find key features, such as lengths of axes and distance between foci.
Glossary
- center of an ellipse
- the midpoint of both the major and minor axes
- conic section
- any shape resulting from the intersection of a right circular cone with a plane
- ellipse
- the set of all points [latex]\left(x,y\right)[/latex] in a plane such that the sum of their distances from two fixed points is a constant
- foci
- plural of focus
- focus (of an ellipse)
- one of the two fixed points on the major axis of an ellipse such that the sum of the distances from these points to any point [latex]\left(x,y\right)[/latex] on the ellipse is a constant
- major axis
- the longer of the two axes of an ellipse
- minor axis
- the shorter of the two axes of an ellipse
Section Exercises
1. Define an ellipse in terms of its foci. 2. Where must the foci of an ellipse lie? 3. What special case of the ellipse do we have when the major and minor axis are of the same length? 4. For the special case mentioned above, what would be true about the foci of that ellipse? 5. What can be said about the symmetry of the graph of an ellipse with center at the origin and foci along the y-axis? For the following exercises, determine whether the given equations represent ellipses. If yes, write in standard form. 6. [latex]2{x}^{2}+y=4[/latex] 7. [latex]4{x}^{2}+9{y}^{2}=36[/latex] 8. [latex]4{x}^{2}-{y}^{2}=4[/latex] 9. [latex]4{x}^{2}+9{y}^{2}=1[/latex] 10. [latex]4{x}^{2}-8x+9{y}^{2}-72y+112=0[/latex] For the following exercises, write the equation of an ellipse in standard form, and identify the end points of the major and minor axes as well as the foci. 11. [latex]\frac{{x}^{2}}{4}+\frac{{y}^{2}}{49}=1[/latex] 12. [latex]\frac{{x}^{2}}{100}+\frac{{y}^{2}}{64}=1[/latex] 13. [latex]{x}^{2}+9{y}^{2}=1[/latex] 14. [latex]4{x}^{2}+16{y}^{2}=1[/latex] 15. [latex]\frac{{\left(x - 2\right)}^{2}}{49}+\frac{{\left(y - 4\right)}^{2}}{25}=1[/latex] 16. [latex]\frac{{\left(x - 2\right)}^{2}}{81}+\frac{{\left(y+1\right)}^{2}}{16}=1[/latex] 17. [latex]\frac{{\left(x+5\right)}^{2}}{4}+\frac{{\left(y - 7\right)}^{2}}{9}=1[/latex] 18. [latex]\frac{{\left(x - 7\right)}^{2}}{49}+\frac{{\left(y - 7\right)}^{2}}{49}=1[/latex] 19. [latex]4{x}^{2}-8x+9{y}^{2}-72y+112=0[/latex] 20. [latex]9{x}^{2}-54x+9{y}^{2}-54y+81=0[/latex] 21. [latex]4{x}^{2}-24x+36{y}^{2}-360y+864=0[/latex] 22. [latex]4{x}^{2}+24x+16{y}^{2}-128y+228=0[/latex] 23. [latex]4{x}^{2}+40x+25{y}^{2}-100y+100=0[/latex] 24. [latex]{x}^{2}+2x+100{y}^{2}-1000y+2401=0[/latex] 25. [latex]4{x}^{2}+24x+25{y}^{2}+200y+336=0[/latex] 26. [latex]9{x}^{2}+72x+16{y}^{2}+16y+4=0[/latex] For the following exercises, find the foci for the given ellipses. 27. [latex]\frac{{\left(x+3\right)}^{2}}{25}+\frac{{\left(y+1\right)}^{2}}{36}=1[/latex] 28. [latex]\frac{{\left(x+1\right)}^{2}}{100}+\frac{{\left(y - 2\right)}^{2}}{4}=1[/latex] 29. [latex]{x}^{2}+{y}^{2}=1[/latex] 30. [latex]{x}^{2}+4{y}^{2}+4x+8y=1[/latex] 31. [latex]10{x}^{2}+{y}^{2}+200x=0[/latex] For the following exercises, graph the given ellipses, noting center, vertices, and foci. 32. [latex]\frac{{x}^{2}}{25}+\frac{{y}^{2}}{36}=1[/latex] 33. [latex]\frac{{x}^{2}}{16}+\frac{{y}^{2}}{9}=1[/latex] 34. [latex]4{x}^{2}+9{y}^{2}=1[/latex] 35. [latex]81{x}^{2}+49{y}^{2}=1[/latex] 36. [latex]\frac{{\left(x - 2\right)}^{2}}{64}+\frac{{\left(y - 4\right)}^{2}}{16}=1[/latex] 37. [latex]\frac{{\left(x+3\right)}^{2}}{9}+\frac{{\left(y - 3\right)}^{2}}{9}=1[/latex] 38. [latex]\frac{{x}^{2}}{2}+\frac{{\left(y+1\right)}^{2}}{5}=1[/latex] 39. [latex]4{x}^{2}-8x+16{y}^{2}-32y - 44=0[/latex] 40. [latex]{x}^{2}-8x+25{y}^{2}-100y+91=0[/latex] 41. [latex]{x}^{2}+8x+4{y}^{2}-40y+112=0[/latex] 42. [latex]64{x}^{2}+128x+9{y}^{2}-72y - 368=0[/latex] 43. [latex]16{x}^{2}+64x+4{y}^{2}-8y+4=0[/latex] 44. [latex]100{x}^{2}+1000x+{y}^{2}-10y+2425=0[/latex] 45. [latex]4{x}^{2}+16x+4{y}^{2}+16y+16=0[/latex] For the following exercises, use the given information about the graph of each ellipse to determine its equation. 46. Center at the origin, symmetric with respect to the x- and y-axes, focus at [latex]\left(4,0\right)[/latex], and point on graph [latex]\left(0,3\right)[/latex]. 47. Center at the origin, symmetric with respect to the x- and y-axes, focus at [latex]\left(0,-2\right)[/latex], and point on graph [latex]\left(5,0\right)[/latex]. 48. Center at the origin, symmetric with respect to the x- and y-axes, focus at [latex]\left(3,0\right)[/latex], and major axis is twice as long as minor axis. 49. Center [latex]\left(4,2\right)[/latex] ; vertex [latex]\left(9,2\right)[/latex] ; one focus: [latex]\left(4+2\sqrt{6},2\right)[/latex] . 50. Center [latex]\left(3,5\right)[/latex] ; vertex [latex]\left(3,11\right)[/latex] ; one focus: [latex]\left(3,\text{ 5+4}\sqrt{\text{2}}\right)[/latex] 51. Center [latex]\left(-3,4\right)[/latex] ; vertex [latex]\left(1,4\right)[/latex] ; one focus: [latex]\left(-3+2\sqrt{3},4\right)[/latex] For the following exercises, given the graph of the ellipse, determine its equation. 52. 53. 54. 55. 56. For the following exercises, find the area of the ellipse. The area of an ellipse is given by the formula [latex]\text{Area}=a\cdot b\cdot \pi [/latex]. 57. [latex]\frac{{\left(x - 3\right)}^{2}}{9}+\frac{{\left(y - 3\right)}^{2}}{16}=1[/latex] 58. [latex]\frac{{\left(x+6\right)}^{2}}{16}+\frac{{\left(y - 6\right)}^{2}}{36}=1[/latex] 59. [latex]\frac{{\left(x+1\right)}^{2}}{4}+\frac{{\left(y - 2\right)}^{2}}{5}=1[/latex] 60. [latex]4{x}^{2}-8x+9{y}^{2}-72y+112=0[/latex] 61. [latex]9{x}^{2}-54x+9{y}^{2}-54y+81=0[/latex] 62. Find the equation of the ellipse that will just fit inside a box that is 8 units wide and 4 units high. 63. Find the equation of the ellipse that will just fit inside a box that is four times as wide as it is high. Express in terms of [latex]h[/latex], the height. 64. An arch has the shape of a semi-ellipse (the top half of an ellipse). The arch has a height of 8 feet and a span of 20 feet. Find an equation for the ellipse, and use that to find the height to the nearest 0.01 foot of the arch at a distance of 4 feet from the center. 65. An arch has the shape of a semi-ellipse. The arch has a height of 12 feet and a span of 40 feet. Find an equation for the ellipse, and use that to find the distance from the center to a point at which the height is 6 feet. Round to the nearest hundredth. 66. A bridge is to be built in the shape of a semi-elliptical arch and is to have a span of 120 feet. The height of the arch at a distance of 40 feet from the center is to be 8 feet. Find the height of the arch at its center. 67. A person in a whispering gallery standing at one focus of the ellipse can whisper and be heard by a person standing at the other focus because all the sound waves that reach the ceiling are reflected to the other person. If a whispering gallery has a length of 120 feet, and the foci are located 30 feet from the center, find the height of the ceiling at the center. 68. A person is standing 8 feet from the nearest wall in a whispering gallery. If that person is at one focus, and the other focus is 80 feet away, what is the length and height at the center of the gallery?Licenses & Attributions
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