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hey guys just need to know if my differential equation is right

the question is

b)$\frac{dy}{dx} = x + 6y.$

the question is :Find the general solutions to the following differential equations. Sketch at least 4 solution curves for each.

the answer that i have found is $y=\sqrt{\frac{x^2}{6}}$

please let me know if thats the right answer

thanks

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    It's not even differentiable at zero, how could you think this could be the right answer? Also if you want to check your answers you can use W|A: http://www.wolframalpha.com/input/?i=y%27+%3D+x+%2B+6y2012-02-05

4 Answers 4

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Your answer seems to be wrong. ($\sqrt{x^2}$ makes little sense as it is)

$y = \frac{(Ce^{6x})}{36} - \frac{x}{6} - \frac{1}{36}$ You can verify this: $\frac{dy}{dx} = \frac{(Ce^{6x})}{6} - \frac{1}{6}\cdots\cdots\cdots(A)$ Now, $6y = \frac{(Ce^{6x})}{6} - \frac{x}{1} - \frac{1}{6}$ $x+6y = \frac{(Ce^{6x})}{6} +x- \frac{x}{1} - \frac{1}{6}$ $x+6y = \frac{(Ce^{6x})}{36} -\frac{1}{6} \cdots\cdots\cdots (B)$ Compare (A) and (B) By putting various values of C, you can plot your graphs. What method did you use to solve the ODE?

One way of solving it (Laplace Transform): $\frac{dy}{dt} = t + 6y.$ (Just changed variable from x to t) $L(\frac{dy}{dt}) = L(t) + L(6y)$ sL(y) - f'(0) = \frac{1}{s^2} + 6 L(y) (s-6)L(y) = f'(0) + \frac{1}{s^2} L(y) = \frac{f'(0) + \frac{1}{s^2}}{s-6} y = L^{-1}(\frac{f'(0) + \frac{1}{s^2}}{s-6} ) y = f'(0)e^{-6t} + \frac{1}{s^2(s-6)} Then you can use partial fractions and solve for the other two terms

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    LOL i am not trying to get into IIT i just need to knw what is the right answer2012-02-05
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This is First Order Linear Differential Equation so general solution is given by :

$y=\frac{\int u(x) \cdot x \,dx+C}{u(x)} ,\text {where}~~ u(x)=e^{-6\int \,dx}$

Therefore solution is :

$ y=\frac{\int e^{-6x} \cdot x \,dx+C}{e^{-6x}} $

Integral from the last equation can be solved using Integration by parts .

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One of the first methods you learn to solve an equation like this is integrating factors. First let's subtract $6y$ from both sides to get.

y'-6y=x

The proper integrating factor here is $e^{-6x}$. Multiplying both sides of the equation by this gets us

e^{-6x}y'-6e^{-6x}y=xe^{-6x}

The left side can be rewritten to obtain

(e^{-6x}y)'=xe^{-6x}

Can you take it from there?

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    @Rohit Not sure how Kannappan's solution works, but the equation as it stands is not separable. I don't see any way to get this equation into the form $\int f(x)dx=\int g(y)dy$2012-02-06
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Here we'll use the variable seperable method:

Set $x+6y =t \implies 1+6\dfrac{\mathrm d y}{\mathrm {dx}}=\dfrac{\mathrm d t}{\mathrm{dx}}$. So, the equation transforms to the following:

$\begin{align*}1+6t = \dfrac{\mathrm dt}{\mathrm{dx}}& \implies \dfrac{\mathrm dt}{1+6t}=\mathrm{dx} \end{align*}$

Now, integrate on both sides to see what you get.

If this does not get you to the result, I'll help you a bit more!

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    @Rohit Add a sketch of steps in your question, if you would want to know where you are mistaken. But otherwise, isn't my solution clear?2012-02-06