Difference between revisions of "009B Sample Final 3, Problem 2"

Revision as of 16:22, 1 March 2017

Evaluate the following integrals.

(a) $\int _{0}^{\frac {\sqrt {3}}{4}}{\frac {1}{1+16x^{2}}}~dx$

(b) $\int {\frac {x^{2}}{(1+x^{3})^{2}}}~dx$

(c) $\int _{1}^{e}{\frac {\cos(\ln(x))}{x}}~dx$

Foundations:
1.
$\int {\frac {1}{1+x^{2}}}~dx=\arctan(x)+C$
2. How would you integrate $\int {\frac {\ln x}{x}}~dx?$
You could use $u$ -substitution.
Let $u=\ln(x).$
Then, $du={\frac {1}{x}}dx.$
Thus,
${\begin{array}{rcl}\displaystyle {\int {\frac {\ln x}{x}}~dx}&=&\displaystyle {\int u~du}\\&&\\&=&\displaystyle {{\frac {u^{2}}{2}}+C}\\&&\\&=&\displaystyle {{\frac {(\ln x)^{2}}{2}}+C.}\end{array}}$

Solution:

(a)

Step 1:
First, we notice
$\int _{0}^{\frac {\sqrt {3}}{4}}{\frac {1}{1+16x^{2}}}~dx=\int _{0}^{\frac {\sqrt {3}}{4}}{\frac {1}{1+(4x)^{2}}}~dx.$
Now, we use $u$ -substitution.
Let $u=4x.$
Then, $du=4dx$ and ${\frac {du}{4}}=dx.$
Also, we need to change the bounds of integration.
Plugging in our values into the equation $u=4x,$
we get $u_{1}=4(0)=0$ and $u_{2}=4{\bigg (}{\frac {\sqrt {3}}{4}}{\bigg )}={\sqrt {3}}.$
Therefore, the integral becomes
${\frac {1}{4}}\int _{0}^{\sqrt {3}}{\frac {1}{1+u^{2}}}~du.$

Step 2:

We now have

${\begin{array}{rcl}\displaystyle {\int _{0}^{\frac {\sqrt {3}}{4}}{\frac {1}{1+16x^{2}}}~dx}&=&\displaystyle {{\frac {1}{4}}\int _{0}^{\sqrt {3}}{\frac {1}{1+u^{2}}}~du}\\&&\\&=&\displaystyle {{\frac {1}{4}}\arctan(u){\bigg |}_{0}^{\sqrt {3}}}\\&&\\&=&\displaystyle {{\frac {1}{4}}\arctan({\sqrt {3}})-{\frac {1}{4}}\arctan(0)}\\&&\\&=&\displaystyle {{\frac {1}{4}}{\bigg (}{\frac {\pi }{3}}{\bigg )}-0}\\&&\\&=&\displaystyle {{\frac {\pi }{12}}.}\end{array}}$

(b)

Step 1:
We use $u$ -substitution. Let $u=1+x^{3}.$
Then, $du=3x^{2}dx$ and ${\frac {du}{3}}=x^{2}dx.$
Therefore, the integral becomes
${\frac {1}{3}}\int {\sqrt {u}}~du.$

Step 2:
We now have
${\begin{array}{rcl}\displaystyle {\int x^{2}{\sqrt {1+x^{3}}}~dx}&=&\displaystyle {{\frac {1}{3}}\int {\sqrt {u}}~du}\\&&\\&=&\displaystyle {{\frac {2}{9}}u^{\frac {3}{2}}+C}\\&&\\&=&\displaystyle {{\frac {2}{9}}(1+x^{3})^{\frac {3}{2}}+C.}\end{array}}$

(c)

Step 1:

Step 2:

Final Answer:
(a) ${\frac {\pi }{12}}$
(b)
(c)

Return to Sample Exam

@@ Line 3: / Line 3: @@
 <span class="exam">(a) &nbsp;<math>\int_0^{\frac{\sqrt{3}}{4}} \frac{1}{1+16x^2}~dx</math>
-<span class="exam">(b) &nbsp;<math>\int \frac{x^2}{(1+x^3)^2}</math>
+<span class="exam">(b) &nbsp;<math>\int \frac{x^2}{(1+x^3)^2}~dx</math>
 <span class="exam">(c) &nbsp;<math>\int_1^e \frac{\cos(\ln(x))}{x}~dx</math>
@@ Line 92: / Line 92: @@
 !Step 1: &nbsp;
 |-
-|
+|We use &nbsp;<math style="vertical-align: 0px">u</math>-substitution. Let &nbsp;<math style="vertical-align: -2px">u=1+x^3.</math>
+|-
+|Then, &nbsp;<math style="vertical-align: 0px">du=3x^2dx</math>&nbsp; and &nbsp;<math style="vertical-align: -13px">\frac{du}{3}=x^2dx.</math>
+|-
+|Therefore, the integral becomes
+|-
+|&nbsp; &nbsp; &nbsp; &nbsp; <math style="vertical-align: -13px">\frac{1}{3}\int \sqrt{u}~du.</math>
 |-
 |
@@ Line 100: / Line 106: @@
 !Step 2: &nbsp;
 |-
-|
+|We now have
+|-
+|&nbsp; &nbsp; &nbsp; &nbsp; <math>\begin{array}{rcl}
+\displaystyle{\int x^2\sqrt{1+x^3}~dx} & = & \displaystyle{\frac{1}{3}\int \sqrt{u}~du}\\
+&&\\
+& = & \displaystyle{\frac{2}{9}u^{\frac{3}{2}}+C}\\
+&&\\
+& = & \displaystyle{\frac{2}{9}(1+x^3)^{\frac{3}{2}}+C.}
+\end{array}</math>
 |-
 |

Difference between revisions of "009B Sample Final 3, Problem 2"

Revision as of 16:22, 1 March 2017

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