Question

How do you find the equations of the two tangents to the circle `x^2 + y^2 - 2x - 6y + 6 = 0` which pass through the point P(-1,2)?

Answer 1

`3x+4y-5=0\ \` & `\ \ x+1=0`

Explanation:

Given equation of circle: `x^2+y^2-2x-6y+6=0` can re-written as

`(x-1)^2+(y-3)^2=4`

The above circle has center at `(1, 3)` & radius `2`

Let tangent passing through the point `(-1, 2)` be drawn at the point `(h, k)` on the circle: `x^2+y^2-2x-6y+6=0` then the point `(h, k)` will satisfy the equation of circle as follows

`h^2+k^2-2h-6k+6=0\ ...........(1)`

Now, the line joining points `(h, k)` & center `(1, 3)` will be perpendicular to the line joining the points `(h, k)` & `(-1, 2)` hence by condition of perpendicular lines we have

`\frac{k-3}{h-1}\times {k-2}/{h-(-1)}=-1`

`h^2+k^2-5k+5=0\ .............(2)`

Now, subtracting (2) from (1) we get

`h^2+k^2-2h-6k+6-(h^2+k^2-5k+5)=0-0`

`k=1-2h\ ...........(3)`

Substituting `k=1-2h` in (2), we get

`h^2+(1-2h)^2-5(1-2h)+5=0`

`5h^2+6h+1=0`

`(5h+1)(h+1)=0`

`h=-1/5, -1`

Substituting the values of `h` in (3), we get corresponding values of `k` as follows

`k=1-2(-1/5), k=1-2(-1)`

`k=7/5, 3`

Hence, the points at which tangents are drawn are `(-1/5, 7/5)` & `(-1, 3)` Thus there are two tangents drawn from external point `(-1, 2)`

Now, the equation of tangent line joining `(-1, 2)` & `(-1/5, 7/5)` is given as

`y-2=\frac{2-7/5}{-1-(-1/5)}(x-(-1))`

`3x+4y-5=0`

Similarly, the equation of tangent line joining `(-1, 2)` & `(-1, 3)` is given as

`y-2=\frac{2-3}{-1-(-1)}(x-(-1))`

`x+1=0`

hence, the equations of tangent lines drawn from the external point to the given circle are

`3x+4y-5=0` & `x+1=0`

Answer 2

`x+1=0, and, 3x+4y-5=0`.

Explanation:

Let us solve the Problem using Geometry.

For this, we suppose that the point of contact of the required

tangent through `P(-1,2)` is `Q(h,k)` on the circle

`S : x^2+y^2-2x-6y+6=0`.

`S : (x-1)^2+(y-3)^2=2^2`, we see that the centre is `C(1,3).`

From Geometry, we know that, `CQ bot PQ`.

Hence, `"(the slope of CQ)"xx("the slope of "PQ)=-1`.

`:. {(k-3)/(h-1)}xx{(k-2)/(h+1)}=-1`.

`:. (k^2-5k+6)+(h^2-1)=0,`

`i.e., h^2+k^2-5k+5=0...................................(star^1)`.

Also, `Q in S. :. h^2+k^2-2h-6k+6=0...........(star^2)`.

`:. (star^1)-(star^2) rArr 2h+k-1=0, or, k=1-2h...(star^3)`.

Then, by `(star^1), h^2+(1-2h)^2-5(-2h)=0`.

`:. 5h^2+6h+1=0 rArr h=-1, or, h=-1/5`.

`:. k=1-2h=3, or, k=7/5`.

Thus, there are two tangents through `P(-1,2)` that touch `S`

at `Q_1(-1,3) and Q_2(-1/5,7/5)`.

Their eqns. are, `PQ_1:x=-1, and,`

`PQ_2:(y-2)/(7/5-2)=(x+1)/(-1/5+1), i.e., 3x+4y-5=0`.