Question:

Part of an integration Question?

by  |  earlier

0 LIKES UnLike

Integrate the the following

3sin2t - 2cos3t

 Tags:

   Report
Answer The Question I've Same Question Too

3 ANSWERS

Sort By: Date  |  Rating

  1. This is just an application of reversing the chain rule.

    You can use substitution to make the process easier to see and do.

    ∫ [ 3·sin(2·t) - 2·cos(3·t) ] dt

    = 3·∫ sin(2·t) dt - 2·∫cos(3·t) dt

    Let u = 2·t

    Then du = 2 dt

    And dt = du / 2

    Let v = 3·t

    Then dv = 3 dt

    And dt = dv / 3

    Substitute in u, du, v, and dv:

    → 3·∫ sin(u)du/2 - 2·∫cos(v)dv/3

    = -3·cos(u)/2 - 2·sin(v)/3 + C

    Reverse substitute:

    = -3·cos(2·t)/2 - 2·sin(3·t)/3 + C

    = -(3/2)·cos(2·t) - (2/3)·sin(3·t) + C


  2. Integral[(3sin2t - 2cos3t) dt] = Integral[3sin2t dt] - Integral[2cos3t dt] = (-3/2)cos2t - (2/3)sin3t + C.  

  3. -3/2  *   cos2t  -  2/3 . sin3t  + C

You're reading: Part of an integration Question?

Question Stats

Latest activity: earlier.
This question has 3 answers.

BECOME A GUIDE

Share your knowledge and help people by answering questions.
Register Now
Unanswered Questions