What is the integral of #int sin(3x+4)dx #?

1 Answer
mason m
Apr 26, 2016

#-1/3cos(3x+4)+C#

Explanation:

We will want to use the following rule:

#intsin(u)du=-cos(u)+C#

So, when integrating

#intsin(3x+4)dx#

We let:

#u=3x+4" "=>" "(du)/dx=3" "=>" "du=3dx#

Notice that in the integral, we only have a #dx# term, but we want a #3dx# term. To achieve this, multiply the interior on the integral by #3#. Balance this by multiplying the exterior of the integral by #1/3#.

#intsin(3x+4)dx=1/3intsin(3x+4)*3dx#

Substituting in what we know, which are #3x+4=u# and #3dx=du#.

#1/3intsin(3x+4)*3dx=1/3intsin(u)du#

Using the initial rule, this becomes

#1/3intsin(u)du=-1/3cos(u)+C=-1/3cos(3x+4)+C#

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