Answer to Question #300202 in Differential Equations for Joshua

Let us solve the differential equation

"\\frac{dy}{dx}=\\frac{3x+2y}{3x+2y+2},\\ \\ y(\u22121)=\u22121."

Let us use the transformation "u=3x+2y." Then "\\frac{du}{dx}=3+2\\frac{dy}{dx}," and hence "\\frac{dy}{dx}=\\frac{1}2(\\frac{du}{dx}-3)."

It follows that

"\\frac{1}2(\\frac{du}{dx}-3)=\\frac{u}{u+2}," and hence "\\frac{du}{dx}=\\frac{2u}{u+2}+3=\\frac{5u+6}{u+2}."

We get the equation "{dx}=\\frac{(u+2)du}{5u+6}," and hence "\\int{dx}=\\int\\frac{(u+2)du}{5u+6}=\\frac{1}5\\int\\frac{(5u+10)du}{5u+6}\n=\\frac{1}5\\int(1+\\frac{4}{5u+6})du=\\frac{u}5+\\frac{4}{25}\\ln|5u+6|+C."

Therefore,

"x=\\frac{3x+2y}5+\\frac{4}{25}\\ln|5(3x+2y)+6|+C"

Since "y(-1)=-1," we conclude that "-1=-1+\\frac{4}{25}\\ln 19+C," and thus "C=-\\frac{4}{25}\\ln 19."

We conclude that the solution of "\\frac{dy}{dx}=\\frac{3x+2y}{3x+2y+2},\\ \\ y(\u22121)=\u22121" is

"x=\\frac{3x+2y}5+\\frac{4}{25}\\ln|15x+10y+6|-\\frac{4}{25}\\ln 19."