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#start of lecture 2
Homogenous equations:
\frac{dy}{dt}=f\left( \frac{y}{t} \right)I'm calling this #de_h_type1
let u=\frac{y}{t} y=tu \quad \frac{dy}{dt}=u+t\frac{du}{dt}
so \frac{dy}{dt}=f(u)=u+t{\frac{du}{dt}}
The homogenous equation has been converted into a separable DE!
\frac{du}{dt}=\frac{f(u)-u}{t}
\frac{du}{f(u)-u}=\frac{dt}{t}
Another way you can write a homogenous equation:
\frac{dy}{dx}=G(ax+by)\quad \text{where a, b }\in \mathbb{R}I'm calling this #de_h_type2
Then, let u=ax+by
\frac{du}{dx}=a+b{\frac{dy}{dx}}
\frac{dy}{dx}=\frac{1}{b}{\frac{du}{dx}}-\frac{a}{b}=G(u)
Again, the homogenous equation has been converted to a separable DE!
dx=\frac{du}{b{G(u)+\frac{a}{b}}}
Just integrate both sides as usual and you're chilling.
Examples of homogenous equations:
#ex #de_h_type1
$\frac{dy}{dx}=\frac{{x+y}}{x-y} \quad x>y\quad\text{This condition is added so the denominator}\ne but \frac{{x+y}}{x-y}\ne f(\frac{y}{x})... Or is it? How can this be written as a homogenous equation?
divide the top and bottom by x:
\frac{dy}{dx}=\frac{{1+\frac{y}{x}}}{1-\frac{y}{x}}
Yay! now it's a function of \frac{y}{x}
let u=\frac{y}{x} \quad \frac{dy}{dx}=u+x{\frac{du}{dx}}
\frac{dy}{dx}=\frac{1+u}{1-u}=u+x{\frac{du}{dx}}
\frac{dx({f(u)-u})}{x}=du
\frac{dx}{x}=\frac{du}{{f(u)-u}}
That's odd, why is it not
\frac{du}{f(u)-u}=\frac{x}{dx}? I got this by moving the top over. (it's because you must move all multiplicative factors when using this technique of moving the top. Be careful!)
\int\frac{dx}{x}=\int\frac{du}{{f(u)-u}}
\ln\mid x\mid=\int \frac{du}{\frac{{1+u}}{1-u}-u}
\ln\mid x\mid=\int \frac{du}{\frac{{1+u-u+u^2}}{1-u}}
\ln\mid x\mid=\int \frac{1-u}{{1+u^2}}du
let
1+u^2=v \quad dv=2udu=\int \frac{{1-u}}{v} \, duGah, doesn't work. I didn't notice I could split the integral up first.
\ln\mid x\mid=\int \frac{1}{{1+u^2}}\,du-\int \frac{u}{1+u^2} \, du=\arctan\left( \frac{y}{x} \right)+C-I_{0}
for I_{0} let v=1+u^2 \quad dv=2udu
I_{0}=\int \frac{u}{v} \, \frac{dv}{2u}=\frac{1}{2}\int \frac{dv}{v}=\frac{1}{2}\ln(1+u^2)
^Note no abs value needed in the
\ln()as1+u^2is always +
\ln\mid x\mid=\arctan\left( \frac{y}{x} \right)+C-\frac{1}{2}\ln(1+u^2)
\ln\mid x\mid=\arctan\left( \frac{y}{x} \right)+C-\frac{1}{2}\ln\left( 1+\frac{y^2}{x^2} \right)
\mid x\mid=e^{\arctan(\frac{y}{x})+C-\ln(\sqrt{ 1+y^2/x^2 })}
x=\frac{e^{\arctan(y/x)}A}{\sqrt{ 1+\frac{y^2}{x^2} }}
x\sqrt{ 1+\frac{y^2}{x^2}} ={e^{\arctan(y/x)}A}
So the final general solution to the problem is:
#ex #de_h_type2 (2x-2y-1)dx+(x-y+1)dy=0$$
Can we write it in the form \frac{dy}{dx}=G(ax+by)?
(x-y+1)dy=-(2x-2y-1)dx
\frac{dy}{dx}=\frac{{2y+1-2x}}{x-y+1}
factor out a -2?
\frac{dy}{dx}=-2\frac{{x-y-\frac{1}{2}}}{x-y+1}
Yep! looks like a #de_h_type2
let u=x-y
\frac{du}{dx}=1-\frac{dy}{dx}
1-\frac{du}{dx}=\frac{dy}{dx}=-2\frac{{x-y-\frac{1}{2}}}{x-y+1}
Obviously we don't work with x and y as I was entailing above, substitute
u=x-yin you silly goose.
1-\frac{du}{dx}=-2\frac{{u-\frac{1}{2}}}{u+1}
\frac{du}{dx}=2\frac{{u-\frac{1}{2}}}{u+1}+1
\frac{du}{dx}=\frac{2u-1}{u+1}+1
\frac{du}{dx}=\frac{{2u-1+u+1}}{u+1}
\frac{du}{dx}=\frac{3u}{u+1}
\frac{(u+1)du}{3u}=dx
\int \frac{(u+1)du}{3u}=\int dx
\int \frac{du}{3}+\frac{1}{3}\int \frac{du}{u}=\ln\mid x\mid+CAh, I made a mistake.\int dx \ne \ln\mid x\mid+C
\int \frac{du}{3}+\frac{1}{3}\int \frac{du}{u}=x+C
Okay, now that we have integrated, we can start talking in terms of x and y again
\frac{x-y}{3}+\frac{1}{3}\ln\mid x-y\mid = x+C
x-y+\ln\mid x-y\mid=3x+C
\ln\mid x-y\mid=C+y+2x < this is where he moved the C to the left
\mid x-y\mid=e^Ce^ye^{2x}
x-y=Ae^ye^{2x}
A(x-y)=e^{y+2x}
I know that above step looks illegal, but the prof did this (indirectly, he moved C to the LHS in a prior step without regarding it's sign). I wonder what happens if A was 0 though? Do we get divide by zero errors? Thinking about it more, we are changing
x-y=0toe^{y+2x}=0whenA=0The first one has a solution (y=x) the second loses that solution because of\ln(0)issues (gives a function that's undefined for allx). when checkingy(x)=xin the DE, it is a valid solution. So perhaps it is an illegal step! Because we lost a valid solution. I'll have to check with the prof. Interestingly, if we act likee^{y+2x}=0is defined, we get\frac{dy}{dx}=-2Proof:
\lim_{ n \to 0 }e^{y+2x}=n\lim_{ n \to 0 }\ln(n)=y+2x\lim_{ n \to 0 }\frac{d}{dx}\ln(n)=0=\frac{dy}{dx}+2\frac{dy}{dx}=-2\quad \Boxplugging into the equation(2x-2y-1)dx+(x-y+1)dy=0yields:1=\frac{2(x-y+1)}{2x-2y-1}2x-2y-1=2(x-y+1)-1=2So what does this all mean? I think it means that even if we imagine that\frac{dy}{dx}exists, the equation is not satisfied ande^{y+2x}=0is definitely not a solution even when we try to cheat a little.
We can rearrange to our liking, but we have found the general solution to the DE: