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The curve satisfying the differential equation, $(x^2 - y^2) dx + 2xydy = 0$ and passing through the point $(1, 1)$ is :
The curve satisfying the differential equation, $(x^2 - y^2) dx + 2xydy = 0$ and passing through the point $(1, 1)$ is :
Updated On: Aug 21, 2024
- a circle of radius one.
- a hyperbola.
- an ellipse.
- a circle of radius two.
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The Correct Option is A
Solution and Explanation
Given $ \left(x^{2}-y^{2}\right) d x+2 x y d y =0 $
$\Rightarrow \frac{d y}{d x} =-\frac{\left(x^{2}-y^{2}\right)}{2 x y} $
Let $ y =v x, \frac{d y}{d x}=v+x \frac{d v}{d x} $
$\int \frac{2 v}{1+v^{2}} d v =-\int \frac{d x}{x}+\ln c$
$ \ln \left(1+y^{2}\right) =-\ln x+\ln c=\ln (c / x) $
$1+v^{2} =c / x $
$ x^{2}+y^{2} =e x $
It is passing through $(1,1)$ and $c=2$. So, $x^{2}+y^{2}-2 x=0$.
Therefore, the curve is circle.
$\Rightarrow \frac{d y}{d x} =-\frac{\left(x^{2}-y^{2}\right)}{2 x y} $
Let $ y =v x, \frac{d y}{d x}=v+x \frac{d v}{d x} $
$\int \frac{2 v}{1+v^{2}} d v =-\int \frac{d x}{x}+\ln c$
$ \ln \left(1+y^{2}\right) =-\ln x+\ln c=\ln (c / x) $
$1+v^{2} =c / x $
$ x^{2}+y^{2} =e x $
It is passing through $(1,1)$ and $c=2$. So, $x^{2}+y^{2}-2 x=0$.
Therefore, the curve is circle.
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Concepts Used:
General Solutions to Differential Equations
A relation between involved variables, which satisfy the given differential equation is called its solution. The solution which contains as many arbitrary constants as the order of the differential equation is called the general solution and the solution free from arbitrary constants is called particular solution.
For example,
Read More: Formation of a Differential Equation
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