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

Revision as of 08:48, 28 February 2017

The region bounded by the parabola $y=x^{2}$ and the line $y=2x$ in the first quadrant is revolved about the $y$ -axis to generate a solid.

(a) Sketch the region bounded by the given functions and find their points of intersection.

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

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

Foundations:
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 given functions.
Insert graph here.

Step 2:
Setting the equations equal, we have $x^{2}=2x.$
Solving for $x,$ we get
${\begin{array}{rcl}\displaystyle {0}&=&\displaystyle {x^{2}-2x}\\&&\\&=&\displaystyle {x(x-2).}\end{array}}$
So, $x=0$ and $x=2.$
If we plug these values into our functions, we get the intersection points
$(0,0)$ and $(2,4).$
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 $h=2x-x^{2}.$

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

(c)

Step 1:
We need to integrate
$\int _{0}^{2}2\pi x(2x-x^{2})~dx~=~2\pi \int _{0}^{2}2x^{2}-x^{3}~dx.$

Step 2:
We have
${\begin{array}{rcl}\displaystyle {\int _{0}^{2}2\pi x(2x-x^{2})~dx}&=&\displaystyle {2\pi \int _{0}^{2}2x^{2}-x^{3}~dx}\\&&\\&=&\displaystyle {2\pi {\bigg (}{\frac {2x^{3}}{3}}-{\frac {x^{4}}{4}}{\bigg )}{\bigg \|}_{0}^{2}}\\&&\\&=&\displaystyle {2\pi {\bigg (}{\frac {2^{4}}{3}}-{\frac {2^{4}}{4}}{\bigg )}-2\pi (0)}\\&&\\&=&\displaystyle {{\frac {8\pi }{3}}.}\\\end{array}}$

Final Answer:
(a) $(0,0),(2,4)$ (See Step 1 for the graph)
(b) $\int _{0}^{2}2\pi x(2x-x^{2})~dx$
(c) ${\frac {8\pi }{3}}$

Return to Sample Exam

@@ Line 37: / Line 37: @@
 !Step 2: &nbsp;
 |-
-|Setting the equations equal, we have &nbsp;<math style="vertical-align: 0px">x^2=2x</math>.
+|Setting the equations equal, we have &nbsp;<math style="vertical-align: 0px">x^2=2x.</math>
 |-
 |Solving for &nbsp;<math>x,</math>&nbsp; we get
@@ Line 61: / Line 61: @@
 !Step 1: &nbsp;
 |-
-|We proceed using cylindrical shells. The radius of the shells is given by <math style="vertical-align: 0px">r=x</math>.
+|We proceed using cylindrical shells. The radius of the shells is given by &nbsp;<math style="vertical-align: 0px">r=x.</math>
 |-
-|The height of the shells is given by <math style="vertical-align: 0px">h=e^x-ex</math>.
+|The height of the shells is given by &nbsp;<math style="vertical-align: 0px">h=2x-x^2.</math>
 |}
@@ Line 72: / Line 72: @@
 |-
 |
-::<math style="vertical-align: -14px">\int 2\pi rh\,dx\,=\,\int_0^1 2\pi x(e^x-ex)\,dx.</math>
+&nbsp; &nbsp; &nbsp; &nbsp;<math style="vertical-align: -14px">\int 2\pi rh~dx~=~\int_0^2 2\pi x(2x-x^2)~dx.</math>
 |}
@@ Line 83: / Line 83: @@
 |-
 |
-::<math>\int_0^1 2\pi x(e^x-ex)\,dx\,=\,2\pi\int_0^1 xe^x\,dx-2\pi\int_0^1ex^2\,dx.</math>
+&nbsp; &nbsp; &nbsp; &nbsp; <math>\int_0^2 2\pi x(2x-x^2)~dx~=~2\pi\int_0^2 2x^2-x^3~dx.</math>
 |}
@@ Line 89: / Line 89: @@
 !Step 2: &nbsp;
 |-
-|For the first integral, we need to use integration by parts.
+|We have
-|-
-|Let <math style="vertical-align: 0px">u=x</math> and <math style="vertical-align: 0px">dv=e^xdx</math>. Then, <math style="vertical-align: 0px">du=dx</math> and <math style="vertical-align: 0px">v=e^x</math>.
-|-
-|So, the integral becomes
 |-
 |
-::<math>\begin{array}{rcl}
+&nbsp; &nbsp; &nbsp; &nbsp;<math>\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^xdx\bigg)-\frac{2\pi ex^3}{3}\bigg|_0^1}\\
+\displaystyle{\int_0^2 2\pi x(2x-x^2)~dx} & = & \displaystyle{2\pi\int_0^2 2x^2-x^3~dx}\\
 &&\\
-& = & \displaystyle{2\pi\bigg(xe^x-e^x\bigg)\bigg|_0^1-\frac{2\pi e}{3}}\\
+& = & \displaystyle{2\pi\bigg(\frac{2x^3}{3}-\frac{x^4}{4}\bigg)\bigg|_0^2}\\
 &&\\
-& = & \displaystyle{2\pi(e-e-(-1))-\frac{2\pi e}{3}}\\
+& = & \displaystyle{2\pi\bigg(\frac{2^4}{3}-\frac{2^4}{4}\bigg)-2\pi(0)}\\
 &&\\
-& = & \displaystyle{2\pi-\frac{2\pi e}{3}}.\\
+& = & \displaystyle{\frac{8\pi}{3}.}\\
 \end{array}</math>
 |}
@@ Line 113: / Line 109: @@
 |'''(a)''' &nbsp;<math style="vertical-align: -5px">(0,0),(2,4)</math> (See Step 1 for the graph)
 |-
-|'''(b)''' &nbsp;<math style="vertical-align: -15px">\int_0^1 2\pi x(e^x-ex)~dx</math>
+|'''(b)''' &nbsp;<math style="vertical-align: -15px">\int_0^2 2\pi x(2x-x^2)~dx</math>
 |-
-|'''(c)''' &nbsp;<math style="vertical-align: -14px">2\pi-\frac{2\pi e}{3}</math>
+|'''(c)''' &nbsp;<math style="vertical-align: -14px">\frac{8\pi}{3}</math>
 |}
 [[009B_Sample_Final_1|'''<u>Return to Sample Exam</u>''']]

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

Revision as of 08:48, 28 February 2017

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