Find the solution to the differential equation dx/dy+y/3=0 subject to the initial conditions y(0)=12.

QAmmunity.org

My account
Edit my Profile
Private messages
My favorites

Ask a Question
Questions
Unanswered
Tags
Categories
Ask a Question

asked Jun 20, 2018 67.5k views

4 votes

Find the solution to the differential equation dx/dy+y/3=0 subject to the initial conditions y(0)=12.

Mathematics
high-school

Fireburn asked

by Fireburn

7.4k points

0 Comments

Please log in or register to add a comment.

Please log in or register to answer this question.

1 Answer

4 votes

$(\mathrm dx)/(\mathrm dy)+\frac y3=0\iff\mathrm dx=-\frac y3\,\mathrm dy$

$\implies\displaystyle\int\mathrm dx=-\frac13\int\mathrm y\,dy$

$\implies x=-\frac16y^2+C$

Given that
y(0)=12

, we have

$0=-\frac16(12)^2+C\implies C=24$

So the particular solution to the initial value problem is

$x=-\frac16y^2+24\iff y^2=144-6x$

Edmond Burnett answered Jun 25, 2018

by Edmond Burnett

8.2k points

0 Comments

Please log in or register to add a comment.

Ask a Question

Welcome to QAmmunity.org, where you can ask questions and receive answers from other members of our community.

9.5m questions

12.2m answers

0 Comments

Please log in or register to add a comment.

Please log in or register to answer this question.

1 Answer

0 Comments

Please log in or register to add a comment.

Other Questions