I have first-order differential equation y=xy′+\frac{1}{2}(y′)^2 Maybe, with this someone will find

Brittney Cuevas

Brittney Cuevas

Answered question

2022-02-18

I have first-order differential equation
y=xy+12(y)2
Maybe, with this someone will find way to solve it
12y(2x+y)=y
I thought I can use x2+y=t for subtitution and when I derivate, I have t=2x+y which is acctualy the
(t2x)t=2t=2x2
same as previous. Who knows?

Answer & Explanation

Vikki Chapman

Vikki Chapman

Beginner2022-02-19Added 8 answers

Rewrite like this:
2y=2xy+y2
so adding x2 on both sides we get
2y+x2=x2+2xy+y2
or
2y+x2=(x+y)2
Let z=2y+x2 then z=2y+2x, so
4z=(z)2  z=±2z  z=(c±x)2
So
y=12(zx2)=12c2±cx

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