If the equation of tangent to a circle at point (3, 5) is 2x-y-1=0 and its centre lies on x+y=5, then the equation of circle is

Question

If the equation of tangent to a circle at point (3, 5) is 2x-y-1=0 and its centre lies on x+y=5, then the equation of circle is (A)  x2+y2+6x-16y+28=0  (B)  x2+y2-6x-16y+28=0  (C)  x2+y2+6x+6y+28=0  (D)  x2+y2-6x-6y-28=0

Tardigrade Admin · Accepted Answer

Equation of line which is perpendicular to the tangent

2 x - y - 1 = 0

is

x + 2 y + k = 0

.
Equation of tangent passes through the point (3,5).

∴

3 + 2 \times 5 + k = 0

\Rightarrow

k = - 13

∴

Centre of circle will lie on the perpendicular line

x + 2 y = 13

.
Also, centre of circle lies on the line

x + y = 5

.
So, on solving these two equations, we get

x = - 3, y = 8

Centre

= (- 3, 8)

and radius

= (3 + 3)^{2} + (5 - 8)^{2}

= 6^{2} + 3^{2}

= 45

∴

Equation of circle is

(x + 3)^{2} + (y - 8)^{2} = (45)^{2}

\Rightarrow

x^{2} + 9 + 6 x + y^{2} + 64 - 16 y = 45

\Rightarrow

x^{2} + y^{2} + 6 x - 16 y + 28 = 0

Q. If the equation of tangent to a circle at point (3, 5) is $2 x - y - 1 = 0$ and its centre lies on $x + y = 5,$ then the equation of circle is

$x^{2} + y^{2} + 6 x - 16 y + 28 = 0$

$x^{2} + y^{2} - 6 x - 16 y + 28 = 0$

$x^{2} + y^{2} + 6 x + 6 y + 28 = 0$

$x^{2} + y^{2} - 6 x - 6 y - 28 = 0$

Q. If the equation of tangent to a circle at point (3, 5) is 2x−y−1=0 and its centre lies on x+y=5, then the equation of circle is

x2+y2+6x−16y+28=0

x2+y2−6x−16y+28=0

x2+y2+6x+6y+28=0

x2+y2−6x−6y−28=0

Q. If the equation of tangent to a circle at point (3, 5) is $2 x - y - 1 = 0$ and its centre lies on $x + y = 5,$ then the equation of circle is

$x^{2} + y^{2} + 6 x - 16 y + 28 = 0$

$x^{2} + y^{2} - 6 x - 16 y + 28 = 0$

$x^{2} + y^{2} + 6 x + 6 y + 28 = 0$

$x^{2} + y^{2} - 6 x - 6 y - 28 = 0$