Difference between revisions of "009C Sample Final 1, Problem 9"

Revision as of 11:31, 23 February 2016

A curve is given in polar coordinates by

r=\theta

0\leq \theta \leq 2\pi

Find the length of the curve.

Foundations:
1. The formula for the arc length $L$ of a polar curve $r=f(\theta )$ with $\alpha _{1}\leq \theta \leq \alpha _{2}$ is
$L=\int _{\alpha _{1}}^{\alpha _{2}}{\sqrt {r^{2}+{\bigg (}{\frac {dr}{d\theta }}{\bigg )}^{2}}}d\theta$ .
2. How would you integrate $\int {\sqrt {1+x^{2}}}~dx$ ? You could use trig substitution and let $x=\tan \theta$ .
3. Recall that $\int \sec ^{3}x~dx={\frac {1}{2}}\sec x\tan x+{\frac {1}{2}}\ln \|\sec x+\tan x\|+C$ .

Solution:

Step 1:
First, we need to calculate ${\frac {dr}{d\theta }}$ . Since $r=\theta ,~{\frac {dr}{d\theta }}=1$ .
Using the formula in Foundations, we have
$L=\int _{0}^{2\pi }{\sqrt {\theta ^{2}+1}}d\theta$ .

Step 2:
Now, we proceed using trig substitution. Let $\theta =\tan x$ . Then, $d\theta =\sec ^{2}xdx$ .
So, the integral becomes
${\begin{array}{rcl}\displaystyle {L}&=&\displaystyle {\int _{\theta =0}^{\theta =2\pi }{\sqrt {\tan ^{2}x+1}}\sec ^{2}xdx}\\&&\\&=&\displaystyle {\int _{\theta =0}^{\theta =2\pi }\sec ^{3}xdx}\\&&\\&=&\displaystyle {{\frac {1}{2}}\sec x\tan x+{\frac {1}{2}}\ln \|\sec x+\tan x\|{\bigg \|}_{\theta =0}^{\theta =2\pi }}\\\end{array}}$

Step 3:
Since $\theta =\tan x$ , we have $x=\tan ^{-1}\theta$ .
So, we have
${\begin{array}{rcl}\displaystyle {L}&=&\displaystyle {{\frac {1}{2}}\sec(\tan ^{-1}(\theta ))\theta +{\frac {1}{2}}\ln \|\sec(\tan ^{-1}(\theta ))+\theta \|{\bigg \|}_{0}^{2\pi }}\\&&\\&=&\displaystyle {{\frac {1}{2}}\sec(\tan ^{-1}(2\pi ))2\pi +{\frac {1}{2}}\ln \|\sec(\tan ^{-1}(2\pi ))+2\pi \|}\\\end{array}}$

Final Answer:
${\frac {1}{2}}\sec(\tan ^{-1}(2\pi ))2\pi +{\frac {1}{2}}\ln \|\sec(\tan ^{-1}(2\pi ))+2\pi \|$

@@ Line 8: / Line 8: @@
 !Foundations: &nbsp;
 |-
-|The formula for the arc length <math style="vertical-align: 0px">L</math> of a polar curve <math style="vertical-align: -5px">r=f(\theta)</math> with <math style="vertical-align: -4px">\alpha_1\leq \theta \leq \alpha_2</math> is
+|'''1.''' The formula for the arc length <math style="vertical-align: 0px">L</math> of a polar curve <math style="vertical-align: -5px">r=f(\theta)</math> with <math style="vertical-align: -4px">\alpha_1\leq \theta \leq \alpha_2</math> is
 |-
 |
 ::<math>L=\int_{\alpha_1}^{\alpha_2} \sqrt{r^2+\bigg(\frac{dr}{d\theta}\bigg)^2}d\theta</math>.
 |-
-|Review trig substitution.
+|'''2.''' How would you integrate <math style="vertical-align: -14px">\int \sqrt{1+x^2}~dx</math> ? You could use trig substitution and let <math style="vertical-align: -1px">x=\tan \theta </math>.
+|-
+|'''3.''' Recall that <math>\int \sec^3x~dx=\frac{1}{2}\sec x \tan x +\frac{1}{2}\ln|\sec x +\tan x|+C</math>.
 |}