The equation of that diameter of the circle x2+y2-6x+2y-8=0 which passes through the origin is

Question

The equation of that diameter of the circle x2+y2-6x+2y-8=0 which passes through the origin is (A) 6x - y = 0 (B) 3x + 2y = 0 (C) x + 3y = 0 (D) 3x - y = 0

Tardigrade Admin · Accepted Answer

Given equation of a circle is x2+y2-6 x+2 y-8=0 ∴ Centre =(3,-1) Now, the diameter also passes through the origin O(0,0). So, the required equation of the diameter is y-0 =(-1-0/3-0)(x-0) ⇒ y=-(1/3)(x-0) ⇒ 3 y=-x ⇒ x+3 y=0

Q. The equation of that diameter of the circle $x^{2} + y^{2} - 6 x + 2 y - 8 = 0$ which passes through the origin is

$6 x - y = 0$

$3 x + 2 y = 0$

$x + 3 y = 0$

$3 x - y = 0$

Q. The equation of that diameter of the circle x2+y2−6x+2y−8=0 which passes through the origin is

6x−y=0

3x+2y=0

x+3y=0

3x−y=0

Given equation of a circle is x2+y2−6x+2y−8=0 ∴ Centre =(3,−1) Now, the diameter also passes through the origin O(0,0). So, the required equation of the diameter is y−0=3−0−1−0​(x−0) ⇒y=−31​(x−0) ⇒3y=−x ⇒x+3y=0

Q. The equation of that diameter of the circle $x^{2} + y^{2} - 6 x + 2 y - 8 = 0$ which passes through the origin is

$6 x - y = 0$

$3 x + 2 y = 0$

$x + 3 y = 0$

$3 x - y = 0$