Answer to Question #294062 in Differential Equations for iman munaim

Question #294062

a)solve dy/dx - 3ye^3x =y. Given that y=1 when x=0

b)find the solution of sinx dy/dx + y cosx = sin^3 x cosx

Expert's answer

a)

"y'-3ye^{3x}=y"

"y'=y(1+3e^{3x})"

"\\dfrac{dy}{y}=(1+3e^{3x})dx"

Integrate

"\\int \\dfrac{dy}{y}=\\int (1+3e^{3x})dx"

"\\ln (|y|)=x+e^{3x}+\\ln C"

"y=Ce^{x+e^{3x}}"

"1(0)=1"

"1=Ce^{0+e^{3(0)}}=>C=e^{-1}"

"y=e^{x+e^{3x}-1}"

b)

"d(y\\sin x)=\\sin^3x\\cos xdx"

Integrate

"\\int d(y\\sin x)=\\int \\sin^3x\\cos xdx"

"y\\sin x=\\dfrac{\\sin^4 x}{4}+C"

"y=\\dfrac{\\sin^3 x}{4}+\\dfrac{C}{\\sin x}"

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