Solve [xsin^2(y/x)-y]dx+x dy=0; y=pi/4 w...

Solve `[xsin^2(y/x)-y]dx+x dy=0; y=pi/4` when `x=1.`

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Verified by Experts

The correct Answer is:

`cot(y/x)=log_(e)|ex|`

`[xsin^(2)(y/x)-y]dx+xdy=0`
or `(dy)/(dx)=v+(xdv)/(dx)`
Therefore, given equation reduces to
`v+x(dv)/(dx)=v-sin^(2)v`
or `x(dv)/(dx) = -sin^(2)v`
or `"cosec "^(2)vdv=-(dx)/(x)`
Integrating both sides, we get
`-cotv=-log|x|-logC`
or `cot(y/x)=log|Cx|`...............(2)
Now, `y=pi/4` at `x=1`.
`therefore cot(pi/4) = log|C|`
or `1=log C`
or C=e
Substituting C=e in equation (2), we get
`cot(y/x)=log|ex|`
This is the required solution of the given differential equation

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