Difference between revisions of "009B Sample Final 1, Problem 5"

Revision as of 00:04, 26 February 2016

Consider the solid obtained by rotating the area bounded by the following three functions about the $y$ -axis:

x=0

,

y=e^{x}

, and

y=ex

.

a) Sketch the region bounded by the given three functions. Find the intersection point of the two functions:

y=e^{x}

and

y=ex

. (There is only one.)

b) Set up the integral for the volume of the solid.

c) Find the volume of the solid by computing the integral.

Foundations:
Recall:
1. You can find the intersection points of two functions, say $f(x),g(x),$
by setting $f(x)=g(x)$ and solving for $x$ .
2. The volume of a solid obtained by rotating an area around the $y$ -axis using cylindrical shells is given by
$\int 2\pi rh~dx,$ where $r$ is the radius of the shells and $h$ is the height of the shells.

Solution:

(a)

Step 1:
First, we sketch the region bounded by the three functions.
Insert graph here.

Step 2:
Setting the equations equal, we have $e^{x}=ex$ .
We get one intersection point, which is $(1,e)$ .
This intersection point can be seen in the graph shown in Step 1.

(b)

Step 1:
We proceed using cylindrical shells. The radius of the shells is given by $r=x$ .
The height of the shells is given by $h=e^{x}-ex$ .

Step 2:
So, the volume of the solid is
$\int 2\pi rh\,dx\,=\,\int _{0}^{1}2\pi x(e^{x}-ex)\,dx.$

(c)

Step 1:
We need to integrate
$\int _{0}^{1}2\pi x(e^{x}-ex)~dx=2\pi \int _{0}^{1}xe^{x}~dx-2\pi \int _{0}^{1}ex^{2}~dx$ .

Step 2:
For the first integral, we need to use integration by parts.
Let $u=x$ and $dv=e^{x}dx$ . Then, $du=dx$ and $v=e^{x}$ .
So, the integral becomes
${\begin{array}{rcl}\displaystyle {\int _{0}^{1}2\pi x(e^{x}-ex)~dx}&=&\displaystyle {2\pi {\bigg (}xe^{x}{\bigg \|}_{0}^{1}-\int _{0}^{1}e^{x}dx{\bigg )}-{\frac {2\pi ex^{3}}{3}}{\bigg \|}_{0}^{1}}\\&&\\&=&\displaystyle {2\pi {\bigg (}xe^{x}-e^{x}{\bigg )}{\bigg \|}_{0}^{1}-{\frac {2\pi e}{3}}}\\&&\\&=&\displaystyle {2\pi (e-e-(-1))-{\frac {2\pi e}{3}}}\\&&\\&=&\displaystyle {2\pi -{\frac {2\pi e}{3}}}\\\end{array}}$

@@ Line 57: / Line 57: @@
 |We proceed using cylindrical shells. The radius of the shells is given by <math style="vertical-align: 0px">r=x</math>.
 |-
-|The height of the shells is given by <math style="vertical-align: -1px">h=e^x-ex</math>.
+|The height of the shells is given by <math style="vertical-align: 0px">h=e^x-ex</math>.
 |}
@@ Line 66: / Line 66: @@
 |-
 |
-::<math>\int_0^1 2\pi x(e^x-ex)~dx</math>.
+::<math style="vertical-align: -14px">\int 2\pi rh\,dx\,=\,\int_0^1 2\pi x(e^x-ex)\,dx.</math>
 |}
 == 4 ==
 '''(c)'''