Solve differential equation(x^2lnx)y'+xy=0

snowlovelydayM

snowlovelydayM

Answered question

2020-11-26

Solve differential equation (x2lnx)y+xy=0

Answer & Explanation

Bella

Bella

Skilled2020-11-27Added 81 answers

Use the variable separation method to solve the differential equation
1/xdx=ln(x)+c
(x2lnx)y+xy=0
(x2lnx)dy/dx=xy
dy/y=x/(x2lnx)dx
dy/y=1/(xlnx)dx
integrated both sides
ln(y)=ln(lnx)+ln(c)
ln(y)=ln(lnx)1+ln(c)=ln(1/(ln(x)))+ln(c) :lna+lnb=lnab
:(1/(xlnx)dx),(putlnx=t1/xdx=dt),(1/xdt=ln(t)+c),(put the value of t we get1/(xlnx)dx=ln(ln(x))+c):
y=c/(ln(x))

Jeffrey Jordon

Jeffrey Jordon

Expert2021-12-25Added 2605 answers

Answer is given below (on video)

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