solve for xy'' + 2y' + x = 1, y(1)=2, y'(1)=1

how to soleve this equation:

xy'' + 2y' + x = 1, y(1)=2, y'(1)=1
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1 Answer

y"+2y'/x=1/x-1 after dividing through by x.

e∫2dx/x=eln(x²)=x2. This is an integrating factor:

x2y"+2xy'=x-x2,

d(x2y')/dx=x-x2,

x2y'=½x2-⅓x3+c1, where c1 is a constant, divide through by x2:

dy/dx=½-⅓x+c1x-2,

y=½x-⅙x2-c1/x+c2.

y'(1)=1 so ½-⅓+c1=1, c1=⅚; y(1)=2 so:

y=½-⅙-⅚+c2=2, c2=5/2.

y=½x-⅙x2-5/(6x)+5/2.

CHECK

y'=½-⅓x+⅚x-2; y"=-⅓-5/(3x3).

xy"=-⅓x-5/(3x2); 2y'=1-⅔x+5/(3x)2;

xy"+2y'+x=-⅓x-5/(3x2)+1-⅔x+5/(3x)2+x=1✔️

by Top Rated User (1.2m points)

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