Hyperbolas
📌 What is a Hyperbola?
A hyperbola is the set of all points in a plane such that the absolute value of the difference of the distances from two fixed points (called foci) to any point on the hyperbola is constant. A hyperbola has two separate branches that open away from each other.
Standard Form Equations of a Hyperbola
Horizontal Transverse Axis:
\( \frac{(x - h)^2}{a^2} - \frac{(y - k)^2}{b^2} = 1 \)
- Center: \( (h, k) \)
- Transverse axis is horizontal (left-right)
- Opens left and right
- Vertices: \( (h \pm a, k) \)
- Co-vertices: \( (h, k \pm b) \)
- Foci: \( (h \pm c, k) \) where \( c^2 = a^2 + b^2 \)
Vertical Transverse Axis:
\( \frac{(y - k)^2}{a^2} - \frac{(x - h)^2}{b^2} = 1 \)
- Center: \( (h, k) \)
- Transverse axis is vertical (up-down)
- Opens up and down
- Vertices: \( (h, k \pm a) \)
- Co-vertices: \( (h \pm b, k) \)
- Foci: \( (h, k \pm c) \) where \( c^2 = a^2 + b^2 \)
Key Rule - Identifying Orientation:
⚠️ Critical: The POSITIVE term determines the transverse axis direction!
- If \( x \)-term is positive → Horizontal transverse axis
- If \( y \)-term is positive → Vertical transverse axis
- \( a^2 \) is always under the POSITIVE term
- Unlike ellipses, \( a \) is NOT necessarily larger than \( b \)
Finding the Center
From Standard Form:
The center is \( (h, k) \), which can be read directly from the equation.
Center = \( (h, k) \)
📝 Examples - Finding Center:
Example 1: \( \frac{(x - 2)^2}{9} - \frac{(y + 3)^2}{16} = 1 \)
Center: \( (2, -3) \)
Example 2: \( \frac{(y + 1)^2}{25} - \frac{(x - 4)^2}{9} = 1 \)
Center: \( (4, -1) \)
Finding the Vertices
Steps to Find Vertices:
- Identify which term is positive (determines transverse axis)
- Find \( a \) from the denominator of the positive term: \( a = \sqrt{a^2} \)
- Move \( a \) units from the center along the transverse axis
Formulas:
Horizontal: Vertices at \( (h \pm a, k) \)
Vertical: Vertices at \( (h, k \pm a) \)
📝 Examples - Finding Vertices:
Example 1: \( \frac{(x - 1)^2}{16} - \frac{(y + 2)^2}{9} = 1 \)
\( x \)-term is positive → Horizontal transverse axis
Center: \( (1, -2) \)
\( a^2 = 16 \), so \( a = 4 \)
Vertices: \( (1 + 4, -2) = (5, -2) \) and \( (1 - 4, -2) = (-3, -2) \)
Example 2: \( \frac{(y - 3)^2}{25} - \frac{(x + 1)^2}{4} = 1 \)
\( y \)-term is positive → Vertical transverse axis
Center: \( (-1, 3) \)
\( a^2 = 25 \), so \( a = 5 \)
Vertices: \( (-1, 3 + 5) = (-1, 8) \) and \( (-1, 3 - 5) = (-1, -2) \)
Length of Transverse and Conjugate Axes
Formulas:
Length of Transverse Axis:
\( 2a \)
The distance between the two vertices (where the hyperbola opens)
Length of Conjugate Axis:
\( 2b \)
The distance between the two co-vertices (perpendicular to transverse axis)
📝 Example - Axis Lengths:
Find the axis lengths for \( \frac{(x + 2)^2}{36} - \frac{(y - 1)^2}{16} = 1 \)
\( a^2 = 36 \), so \( a = 6 \)
\( b^2 = 16 \), so \( b = 4 \)
Transverse axis length: \( 2a = 2(6) = 12 \)
Conjugate axis length: \( 2b = 2(4) = 8 \)
Equations of Asymptotes
Asymptote Formulas:
For Horizontal Transverse Axis:
\( y - k = \pm\frac{b}{a}(x - h) \)
For Vertical Transverse Axis:
\( y - k = \pm\frac{a}{b}(x - h) \)
Note: Asymptotes always pass through the center \( (h, k) \) and form an "X" shape
📝 Examples - Asymptotes:
Example 1: \( \frac{(x - 3)^2}{16} - \frac{(y + 1)^2}{9} = 1 \)
Horizontal transverse axis
Center: \( (3, -1) \), \( a = 4, b = 3 \)
\( y - (-1) = \pm\frac{3}{4}(x - 3) \)
Asymptotes:
\( y = \frac{3}{4}(x - 3) - 1 \) and \( y = -\frac{3}{4}(x - 3) - 1 \)
or: \( y = \frac{3}{4}x - \frac{13}{4} \) and \( y = -\frac{3}{4}x + \frac{5}{4} \)
Example 2: \( \frac{y^2}{25} - \frac{x^2}{16} = 1 \)
Vertical transverse axis
Center: \( (0, 0) \), \( a = 5, b = 4 \)
Asymptotes: \( y = \pm\frac{5}{4}x \)
Finding the Foci
The Relationship Formula:
\( c^2 = a^2 + b^2 \)
⚠️ Critical: For hyperbolas, use ADDITION (unlike ellipses which use subtraction)
- \( c \) = distance from center to each focus
- \( a \) = distance from center to vertex
- \( b \) = distance from center to co-vertex
- Foci are always on the transverse axis
- For hyperbolas: \( c > a \) (foci are outside the vertices)
📝 Examples - Finding Foci:
Example 1: \( \frac{(x - 2)^2}{9} - \frac{(y + 1)^2}{16} = 1 \)
Horizontal transverse axis
Center: \( (2, -1) \)
\( a^2 = 9 \), so \( a = 3 \); \( b^2 = 16 \), so \( b = 4 \)
\( c^2 = 9 + 16 = 25 \), so \( c = 5 \)
Foci: \( (2 + 5, -1) = (7, -1) \) and \( (2 - 5, -1) = (-3, -1) \)
Example 2: \( \frac{(y - 4)^2}{25} - \frac{(x + 3)^2}{9} = 1 \)
Vertical transverse axis
Center: \( (-3, 4) \)
\( a = 5, b = 3 \)
\( c^2 = 25 + 9 = 34 \), so \( c = \sqrt{34} \)
Foci: \( (-3, 4 + \sqrt{34}) \) and \( (-3, 4 - \sqrt{34}) \)
Writing Equations from Graphs
Steps:
- Identify the center \( (h, k) \) from the graph
- Determine orientation (which way the hyperbola opens)
- Find \( a \) by measuring from center to a vertex
- Find \( b \) by measuring from center to a co-vertex OR use asymptote slope
- Write equation with correct form based on orientation
📝 Example - From Graph:
A hyperbola has center at \( (1, -2) \), opens horizontally, vertices at \( (4, -2) \) and \( (-2, -2) \), and asymptotes with slopes \( \pm\frac{2}{3} \). Write the equation.
Step 1: Center: \( (1, -2) \)
Step 2: Opens horizontally
Step 3: Distance from center to vertex:
\( a = |4 - 1| = 3 \)
Step 4: From asymptote slope \( \frac{b}{a} = \frac{2}{3} \):
\( \frac{b}{3} = \frac{2}{3} \), so \( b = 2 \)
Equation: \( \frac{(x - 1)^2}{9} - \frac{(y + 2)^2}{4} = 1 \)
Writing Equations Using Properties
Given Vertices and Foci:
- Find center (midpoint of vertices or foci)
- Calculate \( a \) (distance from center to vertex)
- Calculate \( c \) (distance from center to focus)
- Use \( b^2 = c^2 - a^2 \) to find \( b \)
- Determine orientation and write equation
📝 Example - From Properties:
Write the equation of a hyperbola with vertices at \( (0, \pm 3) \) and foci at \( (0, \pm 5) \).
Step 1: Center is at origin \( (0, 0) \)
Step 2: \( a = 3 \) (distance from center to vertex)
Step 3: \( c = 5 \) (distance from center to focus)
Step 4: Find \( b \):
\( b^2 = c^2 - a^2 = 25 - 9 = 16 \), so \( b = 4 \)
Step 5: Vertical transverse axis (vertices on y-axis)
Equation: \( \frac{y^2}{9} - \frac{x^2}{16} = 1 \)
Converting from General to Standard Form
Method: Completing the Square
- Group x-terms and y-terms separately
- Factor out coefficients if needed
- Complete the square for both variables
- Move constant to right side
- Divide to get 1 on the right side
- Write in standard form
📝 Example - Completing the Square:
Convert \( 9x^2 - 4y^2 - 36x - 8y - 4 = 0 \) to standard form
Step 1: Group terms:
\( (9x^2 - 36x) - (4y^2 + 8y) = 4 \)
Step 2: Factor out coefficients:
\( 9(x^2 - 4x) - 4(y^2 + 2y) = 4 \)
Step 3: Complete the square:
For x: \( (\frac{-4}{2})^2 = 4 \)
For y: \( (\frac{2}{2})^2 = 1 \)
\( 9(x^2 - 4x + 4) - 4(y^2 + 2y + 1) = 4 + 9(4) - 4(1) \)
\( 9(x - 2)^2 - 4(y + 1)^2 = 36 \)
Step 4: Divide by 36:
\( \frac{(x - 2)^2}{4} - \frac{(y + 1)^2}{9} = 1 \)
Center: \( (2, -1) \), \( a = 2, b = 3 \), horizontal
Finding Properties from General Form
Quick Method for Center:
From \( Ax^2 - By^2 + Cx + Dy + E = 0 \):
\( h = -\frac{C}{2A}, \quad k = -\frac{D}{2B} \)
Note: For other properties, convert to standard form first using completing the square.
⚡ Quick Summary
| Property | Formula/Value |
|---|---|
| Horizontal Form | \( \frac{(x-h)^2}{a^2} - \frac{(y-k)^2}{b^2} = 1 \) |
| Vertical Form | \( \frac{(y-k)^2}{a^2} - \frac{(x-h)^2}{b^2} = 1 \) |
| Center | \( (h, k) \) |
| Transverse Axis | \( 2a \) |
| Conjugate Axis | \( 2b \) |
| Foci Relationship | \( c^2 = a^2 + b^2 \) |
- The POSITIVE term determines transverse axis direction
- For hyperbolas: \( c^2 = a^2 + b^2 \) (ADD, not subtract!)
- Foci are always OUTSIDE the vertices (\( c > a \))
- Asymptotes pass through center with slopes \( \pm\frac{b}{a} \) or \( \pm\frac{a}{b} \)
- Hyperbola has TWO separate branches
- Unlike ellipses, \( a \) is NOT necessarily larger than \( b \)
📚 Key Differences: Hyperbola vs Ellipse
| Feature | Hyperbola | Ellipse |
|---|---|---|
| Operation | Subtraction (-) | Addition (+) |
| Foci Formula | \( c^2 = a^2 + b^2 \) | \( c^2 = a^2 - b^2 \) |
| Shape | Two branches | One closed curve |
| Asymptotes | Has asymptotes | No asymptotes |