The circle C with centre T and radius r has equation $x^2 + y^2 - 20x - 16y + 139 = 0$ (a) Find the coordinates of the centre of C. (b) Show that $r = 5$ The line L has equation $x = 13$ and crosses C at the points P and Q as shown in Figure 1. (c) Find the y coordinate of P and the y coordinate of Q. (d) Given that, to 3 decimal places, the angle PTQ is 1.855 radians, d) find the perimeter of the sector PTQ.

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The circle C with centre T and radius r has equation $x^2 + y^2 - 20x - 16y + 139 = 0$ (a) Find the coordinates of the centre of C - Edexcel - A-Level Maths Pure - Question 4 - 2012 - Paper 3

Question 4

The circle C with centre T and radius r has equation $x^2 + y^2 - 20x - 16y + 139 = 0$ (a) Find the coordinates of the centre of C. (b) Show that $r = 5$ The lin... show full transcript

Worked Solution & Example Answer:The circle C with centre T and radius r has equation $x^2 + y^2 - 20x - 16y + 139 = 0$ (a) Find the coordinates of the centre of C - Edexcel - A-Level Maths Pure - Question 4 - 2012 - Paper 3

Step 1

Find the coordinates of the centre of C.

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Answer

To find the coordinates of the center of the circle given by the equation

$x^2 + y^2 - 20x - 16y + 139 = 0,$
we can rearrange it into the standard form of a circle equation, which is

$(x - h)^2 + (y - k)^2 = r^2,$
where $(h, k)$ is the center of the circle.

We complete the square for both x and y:

For $x$ :
1. Take the coefficient of $x$ , which is -20, halve it to -10, and square it to get 100.
2. Adjust the equation accordingly: ( (x^2 - 20x + 100) \rightarrow (x - 10)^2 ).
For $y$ :
1. Take the coefficient of $y$ , which is -16, halve it to -8, and square it to get 64.
2. Adjust the equation accordingly: ( (y^2 - 16y + 64) \rightarrow (y - 8)^2 ).

Now rewrite the circle’s equation:

$(x - 10)^2 + (y - 8)^2 = 100 + 64 - 139$
$(x - 10)^2 + (y - 8)^2 = 25$
This reveals that the center of the circle C is at $(10, 8)$ .

Step 2

Show that r = 5

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Answer

From the completed square form, we derived that:

$r^2 = 25$
Taking the square root, we find:

$r = 5.$
Thus, we have shown that the radius r is indeed 5.

Step 3

Find the y coordinate of P and the y coordinate of Q.

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Answer

To find the y-coordinates of points P and Q where the line $x = 13$ intersects the circle, we substitute $x = 13$ into the equation of the circle:

$(13 - 10)^2 + (y - 8)^2 = 25$
This simplifies to:

$3^2 + (y - 8)^2 = 25$
$9 + (y - 8)^2 = 25$
Subtracting 9 from both sides gives:

$(y - 8)^2 = 16.$
Taking square roots, we derive:

$y - 8 = 4$
or
$y - 8 = -4$
Thus: $y = 12$
or
$y = 4.$
Therefore, the coordinates of P are (13, 12) and the coordinates of Q are (13, 4).

Step 4

Find the perimeter of the sector PTQ.

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Answer

The angle PTQ is given as 1.855 radians, and the radius r is 5. The perimeter of the sector PTQ consists of the arc PQ and the two radii PT and QT.

Arc length = $r \cdot \theta = 5 \cdot 1.855 = 9.275$
The total perimeter is calculated by adding the lengths of the two radii:

$\text{Perimeter} = 9.275 + 5 + 5 = 19.275.$
Thus, the perimeter of the sector PTQ is approximately 19.275.

The circle C with centre T and radius r has equation $x^2 + y^2 - 20x - 16y + 139 = 0$ (a) Find the coordinates of the centre of C - Edexcel - A-Level Maths Pure - Question 4 - 2012 - Paper 3

Worked Solution & Example Answer:The circle C with centre T and radius r has equation $x^2 + y^2 - 20x - 16y + 139 = 0$ (a) Find the coordinates of the centre of C - Edexcel - A-Level Maths Pure - Question 4 - 2012 - Paper 3

Find the coordinates of the centre of C.

Show that r = 5

Find the y coordinate of P and the y coordinate of Q.

Find the perimeter of the sector PTQ.

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