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Question

Equation of curve which passes through point (1,1) and satisfies the differential equation 3xy2dy=(x2+2y3)dx is

A
y3=xln(ex2)
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B
y6=x4ln(x2e)
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C
y3=x2ln(ex)
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D
y=ln(xe)
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Solution

The correct option is C y3=x2ln(ex)
3xy2dy=(x2+2y3)dx
3y2dydx2xy3=x (1)
Put y3=t
3y2dydx=dtdx
From equation (1)
dtdx2tx=x
I.F.=e 2xdx=eln1x2=1x2
y31x2=x1x2dx
y3x2=lnx+c
Equation satisfies point (1,1)
1=c
y3x2=lnx+1
y3=x2ln(ex)

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