The differential equation of the family of circles passing through the fixed points (a, 0) and (-a, 0) is

Question

The differential equation of the family of circles passing through the fixed points (a, 0) and (-a, 0) is (A) y1(y2-x2)+2xy +a2=0 (B) y1y2+xy +a2x2 = 0 (C) y1(y2-x2+a2)+2xy = 0 (D) y1(y2+x2)-2xy +a2= 0

Tardigrade Admin · Accepted Answer

Let the equation of circle passing through given points is x2 +y2 -2fy = a2 ⇒ 2x+2yy1-2 fy1=0 ⇒ x = y1(f-y) ⇒ x= y1((x2+y2-a2/2y) -y) ⇒ 2xy = y1(x2-y2-a2) ⇒ y1(y2-x2+a2)+2xy = 0

Q. The differential equation of the family of circles passing through the fixed points $(a, 0)$ and $(- a, 0)$ is

$y_{1} (y^{2} - x^{2}) + 2 x y + a^{2} = 0$

$y_{1} y^{2} + x y + a^{2} x^{2} = 0$

$y_{1} (y^{2} - x^{2} + a^{2}) + 2 x y = 0$

$y_{1} (y^{2} + x^{2}) - 2 x y + a^{2} = 0$

Q. The differential equation of the family of circles passing through the fixed points (a,0) and (−a,0) is

y1​(y2−x2)+2xy+a2=0

y1​y2+xy+a2x2=0

y1​(y2−x2+a2)+2xy=0

y1​(y2+x2)−2xy+a2=0

Let the equation of circle passing through given points is x2+y2−2fy=a2 ⇒2x+2yy1​−2fy1​=0 ⇒x=y1​(f−y) ⇒x=y1​(2yx2+y2−a2​−y) ⇒2xy=y1​(x2−y2−a2) ⇒y1​(y2−x2+a2)+2xy=0

Q. The differential equation of the family of circles passing through the fixed points $(a, 0)$ and $(- a, 0)$ is

$y_{1} (y^{2} - x^{2}) + 2 x y + a^{2} = 0$

$y_{1} y^{2} + x y + a^{2} x^{2} = 0$

$y_{1} (y^{2} - x^{2} + a^{2}) + 2 x y = 0$

$y_{1} (y^{2} + x^{2}) - 2 x y + a^{2} = 0$