Skip to main content
Ch. 11 - Parametric Equations and Polar Coordinates
Hass - Thomas' Calculus 15th Edition
Hass15th EditionThomas' CalculusISBN: 9780137616077Non è quello che usi tu?Cambia libro di testo
Capitolo 11, Problema 11.1.18

Finding Cartesian from Parametric Equations


Exercises 1–18 give parametric equations and parameter intervals for the motion of a particle in the xy-plane. Identify the particle’s path by finding a Cartesian equation for it. Graph the Cartesian equation. (The graphs will vary with the equation used.) Indicate the portion of the graph traced by the particle and the direction of motion.


x = 2 sinh t, y = 2 cosh t, −∞<t<∞

Guida verificata passo dopo passo
1
Recall the definitions of hyperbolic sine and cosine: \(\sinh t = \frac{e^{t} - e^{-t}}{2}\) and \(\cosh t = \frac{e^{t} + e^{-t}}{2}\). These functions satisfy the identity \(\cosh^{2} t - \sinh^{2} t = 1\).
Given the parametric equations \(x = 2 \sinh t\) and \(y = 2 \cosh t\), express \(\sinh t\) and \(\cosh t\) in terms of \(x\) and \(y\): \(\sinh t = \frac{x}{2}\) and \(\cosh t = \frac{y}{2}\).
Use the hyperbolic identity \(\cosh^{2} t - \sinh^{2} t = 1\) and substitute the expressions for \(\sinh t\) and \(\cosh t\) to get \(\left(\frac{y}{2}\right)^{2} - \left(\frac{x}{2}\right)^{2} = 1\).
Simplify the equation to obtain the Cartesian form: \(\frac{y^{2}}{4} - \frac{x^{2}}{4} = 1\), which can be rewritten as \(\frac{y^{2}}{4} - \frac{x^{2}}{4} = 1\) or \(\frac{y^{2}}{4} - \frac{x^{2}}{4} = 1\).
Interpret the Cartesian equation as a hyperbola. The parameter \(t\) ranges over all real numbers, so the particle traces the entire hyperbola. The direction of motion corresponds to increasing \(t\), which can be analyzed by considering how \(x\) and \(y\) change as \(t\) increases.

Risposta video verificata per un problema simile:

Questa soluzione video è stata consigliata dai nostri tutor come utile per risolvere questo problema.
Durata del video:
11m

Concetti chiave

Ecco i concetti essenziali che devi comprendere per rispondere correttamente alla domanda.

Parametric Equations

Parametric equations express the coordinates of points on a curve as functions of a parameter, often denoted t. Instead of y as a function of x, both x and y depend on t, allowing the description of more complex paths and motions in the plane.
Video consigliato:
08:02
Parameterizing Equations

Hyperbolic Functions and Their Identities

Hyperbolic sine (sinh) and cosine (cosh) are analogs of trigonometric functions but relate to hyperbolas. They satisfy the identity cosh²(t) - sinh²(t) = 1, which is key to converting parametric equations involving sinh and cosh into a Cartesian equation.
Video consigliato:
7:17
Verifying Trig Equations as Identities

Eliminating the Parameter to Find Cartesian Equations

To find a Cartesian equation from parametric forms, the parameter t is eliminated by using algebraic manipulation and identities. This process yields a direct relationship between x and y, describing the particle’s path without reference to t.
Video consigliato:
04:11
Eliminate Parameter: Equations with Trig