Difference between revisions of "009B Sample Final 1, Problem 7"

Revision as of 11:10, 22 February 2016

a) Find the length of the curve

y=\ln(\cos x),~~~0\leq x\leq {\frac {\pi }{3}}

.

b) The curve

y=1-x^{2},~~~0\leq x\leq 1

is rotated about the $y$ -axis. Find the area of the resulting surface.

Foundations:
1. The formula for the length $L$ of a curve $y=f(x)$ where $a\leq x\leq b$ is
$L=\int _{a}^{b}{\sqrt {1+{\bigg (}{\frac {dy}{dx}}{\bigg )}^{2}}}~dx$ .
2. Recall that $\int \sec x~dx=\ln \|\sec(x)+\tan(x)\|+C$ .
3. The surface area $S$ of a function $y=f(x)$ rotated about the $y$ -axis is given by
$S=\int 2\pi xds$ where $ds={\sqrt {1+{\bigg (}{\frac {dy}{dx}}{\bigg )}^{2}}}$ .

Solution:

(a)

Step 1:
First, we calculate ${\frac {dy}{dx}}$ .
Since $y=\ln(\cos x),~{\frac {dy}{dx}}={\frac {1}{\cos x}}(-\sin x)=-\tan x$ .
Using the formula given in the Foundations section, we have
$L=\int _{0}^{\frac {\pi }{3}}{\sqrt {1+(-\tan x)^{2}}}~dx$ .

Step 2:
Now, we have:
${\begin{array}{rcl}L&=&\displaystyle {\int _{0}^{\frac {\pi }{3}}{\sqrt {1+\tan ^{2}x}}~dx}\\&&\\&=&\displaystyle {\int _{0}^{\frac {\pi }{3}}{\sqrt {\sec ^{2}x}}~dx}\\&&\\&=&\displaystyle {\int _{0}^{\frac {\pi }{3}}\sec x~dx}\\\end{array}}$

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

(b)

Step 1:
We start by calculating ${\frac {dy}{dx}}$ .
Since $y=1-x^{2},~{\frac {dy}{dx}}=-2x$ .
Using the formula given in the Foundations section, we have
$S=\int _{0}^{1}2\pi x{\sqrt {1+(-2x)^{2}}}~dx$ .

Step 2:
Now, we have $S=\int _{0}^{1}2\pi x{\sqrt {1+4x^{2}}}~dx$
We proceed by using trig substitution. Let $x={\frac {1}{2}}\tan \theta$ . Then, $dx={\frac {1}{2}}\sec ^{2}\theta d\theta$ .
So, we have
${\begin{array}{rcl}\displaystyle {\int 2\pi x{\sqrt {1+4x^{2}}}~dx}&=&\displaystyle {\int 2\pi {\bigg (}{\frac {1}{2}}\tan \theta {\bigg )}{\sqrt {1+\tan ^{2}\theta }}{\bigg (}{\frac {1}{2}}\sec ^{2}\theta {\bigg )}d\theta }\\&&\\&=&\displaystyle {\int {\frac {\pi }{2}}\tan \theta \sec \theta \sec ^{2}\theta d\theta }\\\end{array}}$

Step 3:
Now, we use $u$ -substitution. Let $u=\sec \theta$ . Then, $du=\sec \theta \tan \theta d\theta$ .
So, the integral becomes
${\begin{array}{rcl}\displaystyle {\int 2\pi x{\sqrt {1+4x^{2}}}~dx}&=&\displaystyle {\int {\frac {\pi }{2}}u^{2}du}\\&&\\&=&\displaystyle {{\frac {\pi }{6}}u^{3}+C}\\&&\\&=&\displaystyle {{\frac {\pi }{6}}\sec ^{3}\theta +C}\\&&\\&=&\displaystyle {{\frac {\pi }{6}}({\sqrt {1+4x^{2}}})^{3}+C}\\\end{array}}$

Step 4:
We started with a definite integral. So, using Step 2 and 3, we have
${\begin{array}{rcl}S&=&\displaystyle {\int _{0}^{1}2\pi x{\sqrt {1+4x^{2}}}~dx}\\&&\\&=&\displaystyle {{\frac {\pi }{6}}({\sqrt {1+4x^{2}}})^{3}}{\bigg \|}_{0}^{1}\\&&\\&=&\displaystyle {{\frac {\pi ({\sqrt {5}})^{3}}{6}}-{\frac {\pi }{6}}}\\&&\\&=&\displaystyle {{\frac {\pi }{6}}(5{\sqrt {5}}-1)}\\\end{array}}$

Final Answer:
(a) $\ln(2+{\sqrt {3}})$
(b) ${\frac {\pi }{6}}(5{\sqrt {5}}-1)$

@@ Line 17: / Line 17: @@
 ::<math>L=\int_a^b \sqrt{1+\bigg(\frac{dy}{dx}\bigg)^2}~dx</math>.
 |-
-|'''2.''' Recall that <math>\int \sec x~dx=\ln|\sec(x)+\tan(x)|+C</math>.
+|'''2.''' Recall that <math style="vertical-align: -14px">\int \sec x~dx=\ln|\sec(x)+\tan(x)|+C</math>.
 |-
 |'''3.''' The surface area <math style="vertical-align: 0px">S</math> of a function <math style="vertical-align: -4px">y=f(x)</math> rotated about the <math style="vertical-align: -3px">y</math>-axis is given by