Question

Consider the circle `x^2+y^2-2x-14y+25=0`. For what values of m is the line y=mx tangent to this circle?

Answer 1

`m=-4/3` or `m=3/4`

Explanation:

`x^2+y^2-2x-14y+25=0`

`x^2-2x+y^2-14y=-25`

`x^2-2x+1+y^2-14y+49=-25+1+49`

`(x-1)^2+(y-7)^2=25`

Therefore, the centre is `(1,7)` and the radius is 5

For a line to be tangent to the circle, then we need to find using the perpendicular distance formula

Your line: `y=mx` --> `y-mx=0`
Your (x,y) --> (1,7)

`(abs(y-mx))/sqrt(a^2+b^2)=5`

`(abs(7-m))/sqrt(1^2+m^2)=5`

`(7-m)/sqrt(1^2+m^2)=5` or `(-1)(7-m)/sqrt(1^2+m^2)=5`
(you'll get the same answer in both cases so I'm just going to do one of them)

`(7-m)/sqrt(1^2+m^2)=5`

`7-m=5sqrt(1+m^2)`

`(7-m)^2=25(1+m^2)`

`49-14m+m^2=25+25m^2`

`24m^2+14m-24=0`

`12m^2+7m-12=0`

`(3m+4)(4m-3)=0`

`m=-4/3` or `m=3/4`