What is the general solution of the differential equation? : $Acosx + Bsinx -sinxln|cscx+cotx|$

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What is the general solution of the differential equation? : $Acosx + Bsinx -sinxln|cscx+cotx|$

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Answer 1 · 2017-08-06T21:03:34

$Acosx + Bsinx -sinxln|cscx+cotx|$

Explanation:

We have:

$y'' + y = cot(x)$ ..... [A]

This is a second order linear non-Homogeneous Differentiation Equation. The standard approach is to find a solution, $y_c$ of the homogeneous equation by looking at the Auxiliary Equation, which is the quadratic equation with the coefficients of the derivatives, and then finding an independent particular solution, $y_p$ of the non-homogeneous equation.

Complementary Function

The homogeneous equation associated with [A] is

$y'' + 9y = 0$

And it's associated Auxiliary equation is:

$m^2 + 1 = 0$

Which has pure imaginary solutions $m=+-i$

Thus the solution of the homogeneous equation is:

$y_c = e^0(Acos(1x) + Bsin(1x))$
$\ \ \ = Acosx + Bsinx$

Particular Solution

With this particular equation [A], the interesting part is find the solution of the particular function. We would typically use practice & experience to "guess" the form of the solution but that approach is likely to fail here. Instead we must use the Wronskian. It does, however, involve a lot more work:

Once we have two linearly independent solutions say $y_1(x)$ and $y_2(x)$ then the particular solution of the general DE;

$ay'' +by' + cy = p(x)$

is given by:

$y_p = v_1y_1 + v_2y_2 \ \$ , which are all functions of $x$

Where:

$v_1 = -int \ (p(x)y_2)/(W[y_1,y_2]) \ dx$
$v_2 = \ \ \ \ \ int \ (p(x)y_1)/(W[y_1,y_2]) \ dx$

And, $W[y_1,y_2]$ is the wronskian; defined by the following determinant:

$W[y_1,y_2] = | ( y_1,y_2), (y'_1,y'_2) |$

So for our equation [A]:

$p(x) = cotx$
$y_1 \ \ \ = cosx => y'_1 = -sinx$
$y_2 \ \ \ = sinx => y'_2 = cosx$

So the wronskian for this equation is:

$W[y_1,y_2] = | ( cosx,,sinx), (-sinx,,cosx) |$

$" " = (cosx)(cosx) - (sinx)(-sinx)$
$" " = cos^2 x + sin^2 x$
$" " = 1$

So we form the two particular solution function:

$v_1 = -int \ (p(x)y_2)/(W[y_1,y_2]) \ dx$

$\ \ \ = -int \ (cotx sinx)/1 \ dx$
$\ \ \ = -int \ cosx/sinx sinx \ dx$
$\ \ \ = -int \ cosx \ dx$
$\ \ \ = -sinx$

And;

$v_2 = \ \ \ \ \ int \ (p(x)y_1)/(W[y_1,y_2]) \ dx$

$\ \ \ = int \ (cotx cosx )/1\ dx$
$\ \ \ = int \ cosx/sinx cosx \ dx$
$\ \ \ = int \ cos^2x/sinx \ dx$
$\ \ \ = int \ (1-sin^2x)/sinx \ dx$
$\ \ \ = int \ cscx-sinx \ dx$
$\ \ \ = -ln|cscx+cotx|+cosx$

And so we form the Particular solution:

$y_p = v_1y_1 + v_2y_2$
$\ \ \ = (-sinx)(cosx) + (cosx-ln|cscx+cotx|)sinx$

Which then leads to the GS of [A}

$y(x) = y_c + y_p$
$\ \ \ \ \ \ \ = Acosx + Bsinx -sinxcosx + sinxcosx-sinxln|cscx+cotx|$
$\ \ \ \ \ \ \ = Acosx + Bsinx -sinxln|cscx+cotx|$

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What is the general solution of the differential equation? : $Acosx + Bsinx -sinxln|cscx+cotx|$

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What is the general solution of the differential equation? : Acosx + Bsinx -sinxln|cscx+cotx| Acosx + Bsinx -sinxln|cscx+cotx|

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Explanation:

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What is the general solution of the differential equation? : $Acosx + Bsinx -sinxln|cscx+cotx|$