Question

How do you write an equation for a circle with center (-8, -5) and tangent (touching at 1 point) to the y-axis?

Answer 1

Please see the explanation.

Explanation:

The standard form of the equation of a circle is:

`(x - h)^2 + (y - k)^2 = r^2`

where `(x,y)` is any point on the circle, `(h,k)` is the center and r is the radius.

Substitute the given center into the equation:

`(x - -8)^2 + (y - -5)^2 = r^2`

Because the radius drawn to the point of tangency is always perpendicular, the point of tangency with the y axis must be `(0, -5)`

Substitute this point into the circle:

`(x - -8)^2 + (-5 - -5)^2 = r^2`

`r = 8`

The equation for the circle is:

`(x - -8)^2 + (y - -5)^2 = 8^2`