# Question 8:

## Part (i):
| Answer/Working | Marks | Guidance |
|---|---|---|
| $\frac{dy}{d\theta} = 2\cos2\theta - 2\sin\theta$, $\frac{dx}{d\theta} = 2\cos\theta$ | B1, B1 | |
| $\frac{dy}{dx} = \frac{dy/d\theta}{dx/d\theta}$ | M1 | substituting for theirs |
| $\frac{dy}{dx} = \frac{2\cos2\theta - 2\sin\theta}{2\cos\theta} = \frac{\cos2\theta-\sin\theta}{\cos\theta}$ | A1 [4] | oe |

## Part (ii):
| Answer/Working | Marks | Guidance |
|---|---|---|
| When $\theta=\pi/6$, $\frac{dy}{dx} = \frac{\cos\pi/3-\sin\pi/6}{\cos\pi/6} = \frac{1/2-1/2}{\sqrt{3}/2} = 0$ | E1 | |
| Coords of B: $x = 2+2\sin(\pi/6)=3$ | M1 | for either |
| $y = 2\cos(\pi/6)+\sin(\pi/3) = 3\sqrt{3}/2$ | A1, A1 | exact |
| $BC = 2\times3\sqrt{3}/2 = 3\sqrt{3}$ | B1ft [5] | |

## Part (iii):
| Answer/Working | Marks | Guidance |
|---|---|---|
| $(A)\ y = 2\cos\theta+\sin2\theta = 2\cos\theta+2\sin\theta\cos\theta = 2\cos\theta(1+\sin\theta) = x\cos\theta$ * | M1, E1 | $\sin2\theta = 2\sin\theta\cos\theta$ |
| $(B)\ \sin\theta = \frac{1}{2}(x-2)$ | B1 | |
| $\cos^2\theta = 1-\sin^2\theta = 1-\frac{1}{4}(x-2)^2 = 1-\frac{1}{4}x^2+x-1 = (x-\frac{1}{4}x^2)$ * | M1, E1 | |
| $(C)\ y^2 = x^2\cos^2\theta = x^2(x-\frac{1}{4}x^2) = x^3-\frac{1}{4}x^4$ * | M1, E1 [7] | squaring and substituting for $x$ |

## Part (iv):
| Answer/Working | Marks | Guidance |
|---|---|---|
| $V = \int_0^4 \pi y^2\,dx$ | | |
| $= \pi\int_0^4(x^3-\frac{1}{4}x^4)dx$ | M1 | need limits |
| $= \pi\left[\frac{1}{4}x^4-\frac{1}{20}x^5\right]_0^4$ | B1 | $\left[\frac{1}{4}x^4-\frac{1}{20}x^5\right]$ |
| $= \pi(64-51.2) = 12.8\pi = 40.2\ (\text{m}^3)$ | A1 [3] | $12.8\pi$ or $40$ or better |

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# Comprehension: