Difference between revisions of "022 Exam 2 Sample B, Problem 7"

Revision as of 17:33, 15 May 2015

Find the antiderivatives:

(a)

\int xe^{3x^{2}+1}\,dx.

(b)

\int _{2}^{5}4x-5\,dx.

Foundations:
This problem requires Integration by substitution (u - sub): If $u=g(x)$ is a differentiable functions whose range is in the domain of $f$ , then
$\int g'(x)f(g(x))dx\,=\,\int f(u)du.$
We also need our power rule for integration:
$\int x^{n}dx\,=\,{\frac {x^{n+1}}{n+1}}+C,$ for $n\neq 0$ .

Solution:

Step 1:
(a) Use a u-substitution with $u=3x^{2}+1.$ This means $du=6x\,dx$ , or $dx=du/6$ . After substitution we have $\int xe^{3x^{2}+1}\,dx={\frac {1}{6}}\int e^{u}\,du.$
(b) We need to use the power rule to find that $\int _{2}^{5}4x-5\,dx=2x^{2}-5x{\Bigr \|}_{2}^{5}$

Step 2:
(a) ${\frac {1}{6}}\int e^{u}\,du={\frac {1}{6}}e^{u}.$
(b) We just need to evaluate at the endpoints to finish the problem: ${\begin{array}{rcl}2x^{2}-5x{\Bigr \|}_{2}^{5}&=&2(5^{2})-5(5)-(2(2)^{2}-5(2)\\&=&50-25-(8-10)\\&=&25+2\\&=&27\end{array}}$

Step 3:
(a) Now we need to substitute back into our original variables using our original substitution $u=3x^{2}+1$
to find ${\frac {1}{6}}e^{u}={\frac {e^{3x^{2}+1}}{6}}.$

Step 4:
Since this integral is an indefinite integral we have to remember to add a constant $C$ at the end.

Final Answer:
(a) ${\frac {e^{3x^{2}+1}}{6}}+C.$
(b) $27$

@@ Line 25: / Line 25: @@
 |-
 |(a) Use a ''u''-substitution with <math style="vertical-align: -8%">u = 3x^2 + 1.</math> This means <math style="vertical-align: 0%">du = 6x\,dx</math>, or <math style="vertical-align: -20%">dx=du/6</math>. After substitution we have
-::<math>\int x e^{3x^2+1} dx = \frac{1}{6} \int e^{u} du. </math>
+::<math>\int x e^{3x^2+1}\,dx = \frac{1}{6} \int e^{u}\, du. </math>
 |-
 |(b) We need to use the power rule to find that <math>\int_2^5 4x - 5 \, dx = 2x^2 - 5x \Bigr|_2^5</math>
@@ Line 64: / Line 64: @@
 ::<math>\frac{e^{3x^2 + 1}}{6} + C.</math>
 |-
-|(b) 27
+|(b) <math>27</math>
 |}
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