A-Level Edexcel Maths Pure Sequences & Series: Circle $C

Circle $C_1$ has equation $x^2 + y^2 = 100$\nCircle $C_2$ has equation $(x - 15)^2 + y^2 = 40$\nThe circles meet at points $A$ and $B$ as shown in Figure 3.\n\n(a) Show that angle $AOB = 0.635$ radians to 3 significant figures, where $O$ is the origin.\n(b) The region shown shaded in Figure 3 is bounded by $C_1$ and $C_2$\n\n(b) Find the perimeter of the shaded region, giving your answer to one decimal place. - Edexcel - A-Level Maths Pure - Question 13 - 2020 - Paper 1

Question 13

$Circle-$C_1$-has-equation-$x^2-+-y^2-=-100$\nCircle-$C_2$-has-equation-$(x---15)^2-+-y^2-=-40$\nThe-circles-meet-at-points-$A$-and-$B$-as-shown-in-Figure-3.\n\n(a)-Show-that-angle-$AOB-=-0.635$-radians-to-3-significant-figures,-where-$O$-is-the-origin.\n(b)-The-region-shown-shaded-in-Figure-3-is-bounded-by-$C_1$-and-$C_2$\n\n(b)-Find-the-perimeter-of-the-shaded-region,-giving-your-answer-to-one-decimal-place.-Edexcel-A-Level Maths Pure-Question 13-2020-Paper 1.png$

Circle $C_1$ has equation $x^2 + y^2 = 100$\nCircle $C_2$ has equation $(x - 15)^2 + y^2 = 40$\nThe circles meet at points $A$ and $B$ as shown in Figure 3.\n\n(a) S... show full transcript

Worked Solution & Example Answer:Circle $C_1$ has equation $x^2 + y^2 = 100$\nCircle $C_2$ has equation $(x - 15)^2 + y^2 = 40$\nThe circles meet at points $A$ and $B$ as shown in Figure 3.\n\n(a) Show that angle $AOB = 0.635$ radians to 3 significant figures, where $O$ is the origin.\n(b) The region shown shaded in Figure 3 is bounded by $C_1$ and $C_2$\n\n(b) Find the perimeter of the shaded region, giving your answer to one decimal place. - Edexcel - A-Level Maths Pure - Question 13 - 2020 - Paper 1

Step 1

Show that angle AOB = 0.635 radians to 3 significant figures

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Answer

To find angle $AOB$ , we first need the coordinates of the intersection points of the circles.\n1. Set the equations of the circles equal to find $x$ and $y$ : \n
From $C_1$ : $y^2 = 100 - x^2$ \n From $C_2$ : $(x - 15)^2 + y^2 = 40$ \n
Substitute $y^2$ : $(x - 15)^2 + (100 - x^2) = 40$ \n
Expanding gives: $x^2 - 30x + 225 + 100 - x^2 = 40$ . \n So, we solve \n [ -30x + 325 = 40 ] \n [ -30x = -285 ] \n [ x = 9.5 ] \n
Substituting back, \n [ y^2 = 100 - (9.5)^2 = 100 - 90.25 = 9.75 ] \n Thus $y = rac{- adical{39}}{2}$ or $y ext{ and from } C_1$ : this gives coordinates of intersection points as \n $A(9.5, rac{ adical{39}}{2})$ and $B(9.5, - rac{ adical{39}}{2})$ .\n2. With triangle $AOB$ , use trigonometry: consider cosine rule\n We know $OA = OB = 10$ (radius of $C_1$ ) and $AB = adical{39}$ . \n [ ext{Thus, cos}(AOB) = \frac{OA^2 + OB^2 - AB^2}{2 imes OA imes OB} ] \n [ = \frac{10^2 + 10^2 - (\radical{39})^2}{2 \times 10 \times 10} ] \n [ = \frac{200 - 39}{200} = \frac{161}{200} ] \n Hence, \n [ angle AOB = 2 \cdot \arccos\left(\frac{161}{200}\right) \approx 0.635\text{ radians} ]

Step 2

Find the perimeter of the shaded region

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Answer

To calculate the perimeter of the shaded region, we first find the circular arcs from points $A$ to $B$ in circles $C_1$ and $C_2$ .\n1. For circle $C_1$ with radius 10, the central angle $\theta = 0.635$ radians where $P = r\theta$ \n[ \text{Arc length } AB = 10 \times 0.635 = 6.35 ] \n\n2. For circle $C_2$ , determine the remaining angle: [ angle AXB = \frac{\pi}{2} - \theta = 0.635 ]. The radius here is $\text{radius}= \radical{40} = 6.32$ and the arc length is: \n[ \text{Arc length } AB = r\theta = \radical{40} \cdot 0.635 \approx 3.81 ] \n3. Add these lengths to get the total perimeter: \n[ P = 6.35 + 3.81 = 10.16 \text{ (round to one decimal place: 10.2)}]

Show that angle AOB = 0.635 radians to 3 significant figures

Find the perimeter of the shaded region

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