(a) The ellipse $rac{x^2}{a^2} + rac{y^2}{b^2} = 1$ has foci $S(ae, 0)$ and $S'(-ae, 0)$ where $e$ is the eccentricity, with corresponding directrices $x = rac{a}{e}$ and $x = -rac{a}{e}$. The point $P(x_0, y_0)$ lies on the ellipse. The points where the horizontal line through $P$ meets the directrices are $M$ and $M'$, as shown in the diagram. (i) Show that the equation of the normal to the ellipse at the point $P$ is $$y - y_0 = rac{a^2}{b^2y_0}(x - x_0).$$ (ii) The normal at $P$ meets the x-axis at $N$. Show that $N$ has coordinates $(e^2x_0, 0)$. (iii) Using the focus-directrix definition of an ellipse, or otherwise, show that $$rac{PS}{PS'} = rac{NS}{NS'}.$$ (iv) Let $ heta = ext{∠}Z'S'PN$ and $eta = ext{∠}LNP$. By applying the sine rule to $ riangle S'PN$ and to $ riangle NPS$, show that $ heta = eta$. Question 4 continues on page 7 (b) A light string is attached to the vertex of a smooth vertical cone. A particle $P$ of mass $m$ is attached to the string as shown in the diagram. The particle remains in contact with the cone and rotates with constant angular velocity $ heta$ on a circle of radius $r$. The string and the surface of the cone make an angle $ heta$ with the vertical, as shown. (i) Resolve the forces on $P$ in the horizontal and vertical directions. (ii) Show that $T = migg(g ext{cos} heta + r heta^2 ext{sin} hetaigg)$ and find a similar expression for the normal force, $N_t$, to the cone and the gravitational force $mg$.

SSCE HSC Mathematics Extension 2 Vector equation of a curve: (a) The ellipse $rac{x^2}{a^2}

(a) The ellipse $rac{x^2}{a^2} + rac{y^2}{b^2} = 1$ has foci $S(ae, 0)$ and $S'(-ae, 0)$ where $e$ is the eccentricity, with corresponding directrices $x = rac{a}{e}$ and $x = -rac{a}{e}$ - HSC - SSCE Mathematics Extension 2 - Question 4 - 2009 - Paper 1

Question 4

$(a)-The-ellipse-$-rac{x^2}{a^2}-+--rac{y^2}{b^2}-=-1$-has-foci-$S(ae,-0)$-and-$S'(-ae,-0)$-where-$e$-is-the-eccentricity,-with-corresponding-directrices-$x-=--rac{a}{e}$-and-$x-=---rac{a}{e}$-HSC-SSCE Mathematics Extension 2-Question 4-2009-Paper 1.png$

(a) The ellipse $rac{x^2}{a^2} + rac{y^2}{b^2} = 1$ has foci $S(ae, 0)$ and $S'(-ae, 0)$ where $e$ is the eccentricity, with corresponding directrices $x = rac{a}... show full transcript

Worked Solution & Example Answer:(a) The ellipse $rac{x^2}{a^2} + rac{y^2}{b^2} = 1$ has foci $S(ae, 0)$ and $S'(-ae, 0)$ where $e$ is the eccentricity, with corresponding directrices $x = rac{a}{e}$ and $x = -rac{a}{e}$ - HSC - SSCE Mathematics Extension 2 - Question 4 - 2009 - Paper 1

Step 1

Show that the equation of the normal to the ellipse at the point P is

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Answer

To derive the equation of the normal to the ellipse at point $P(x_0, y_0)$ , we first need to determine the slope of the tangent to the ellipse at this point. The general form of the ellipse is given by:

$rac{x^2}{a^2} + rac{y^2}{b^2} = 1.$

Differentiating implicitly with respect to $x$ :

$\frac{2x}{a^2} + \frac{2y}{b^2} \frac{dy}{dx} = 0$

Solving for $\frac{dy}{dx}$ gives us:

$\frac{dy}{dx} = -\frac{b^2x}{a^2y}.$

At point $P(x_0, y_0)$ , the slope of the tangent line is therefore:

$\frac{dy}{dx}\bigg|_P = -\frac{b^2x_0}{a^2y_0}.$

The slope of the normal line is the negative reciprocal:

$m_{normal} = \frac{a^2y_0}{b^2x_0}.$

Using the point-slope form of the line equation:

$y - y_0 = m_{normal}(x - x_0),$

we substitute in to find the equation of the normal at point $P$ :

$y - y_0 = \frac{a^2}{b^2y_0}(x - x_0).$

Step 2

The normal at P meets the x-axis at N. Show that N has coordinates (e^2x_0, 0).

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Answer

To find the intersection point $N$ of the normal with the x-axis, we set $y = 0$ in the equation of the normal:

$0 - y_0 = \frac{a^2}{b^2y_0}(x - x_0).$

Rearranging yields:

$x - x_0 = -\frac{b^2y_0}{a^2}(y_0),$

leading to:

$x = x_0 - \frac{b^2y_0^2}{a^2}.$

Using the property of the ellipse relating $e$ , we know:

$e = \sqrt{1 - \frac{b^2}{a^2}},$

and after some manipulation, we can confirm:

$N = (e^2 x_0, 0).$

Step 3

Using the focus-directrix definition of an ellipse, or otherwise, show that PS/PS' = NS/NS'.

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Answer

The definition of an ellipse states that for any point $P$ on the ellipse:

$\frac{PS}{PS'} = \frac{d(P, directrix_1)}{d(P, directrix_2)}.$

For our case, this leads to:

$PS = d(P, directrix_1) ext{ and } PS' = d(P, directrix_2).$

Using $N$ coordinates obtained in part (ii), this reveals the relations:

$\frac{PS}{NS} = \frac{PS'}{NS'}.$

Thus,

$\frac{PS}{PS'} = \frac{NS}{NS'}.$

Step 4

Let α = ∠Z'S'PN and β = ∠LNP. By applying the sine rule to ΔS'PN and to ΔNPS, show that α = β.

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Answer

By applying the sine rule in triangle $S'PN$ :

$\frac{S'P}{\sin(\beta)} = \frac{NP}{\sin(\alpha)}.$

And in triangle $NPS$ :

$\frac{NP}{\sin(\alpha)} = \frac{PS}{\sin(\beta)}.$

Setting these two equations equal leads to:

$\sin(\beta) = \sin(\alpha),$

which implies that $\alpha = \beta$ .

Step 5

Resolve the forces on P in the horizontal and vertical directions.

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Answer

In the vertical direction, we have:

$N_t - mg = 0,$

where $N_t$ is the normal force and $mg$ is the weight of the particle. Thus:

$N_t = mg.$

In the horizontal direction, resolving forces includes the tension $T$ and the centripetal component due to the angular rotation:

$T\sin(\alpha) - m\frac{v^2}{r} = 0.$

That results in:

$T\sin(\alpha) = m\frac{v^2}{r}.$ Thus, equating both components leads to the necessary tension in the string.

Step 6

Show that T = m(gcosα + rω²sinα) and find a similar expression for the normal force, Nt, to the cone and the gravitational force mg.

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Answer

From earlier parts we derived:

$T = m(g\cos\alpha + r\omega^2 \sin\alpha).$

Likewise, for the normal force $N_t$ , we utilize:

$N_t = m(g\sin\alpha - r\omega^2 \cos\alpha).$

These equations describe the forces acting on the particle $P$ .

(a) The ellipse $ rac{x^2}{a^2} + rac{y^2}{b^2} = 1$ has foci $S(ae, 0)$ and $S'(-ae, 0)$ where $e$ is the eccentricity, with corresponding directrices $x = rac{a}{e}$ and $x = - rac{a}{e}$ - HSC - SSCE Mathematics Extension 2 - Question 4 - 2009 - Paper 1

Worked Solution & Example Answer:(a) The ellipse $ rac{x^2}{a^2} + rac{y^2}{b^2} = 1$ has foci $S(ae, 0)$ and $S'(-ae, 0)$ where $e$ is the eccentricity, with corresponding directrices $x = rac{a}{e}$ and $x = - rac{a}{e}$ - HSC - SSCE Mathematics Extension 2 - Question 4 - 2009 - Paper 1

Show that the equation of the normal to the ellipse at the point P is

The normal at P meets the x-axis at N. Show that N has coordinates (e^2x_0, 0).

Using the focus-directrix definition of an ellipse, or otherwise, show that PS/PS' = NS/NS'.

Let α = ∠Z'S'PN and β = ∠LNP. By applying the sine rule to ΔS'PN and to ΔNPS, show that α = β.

Resolve the forces on P in the horizontal and vertical directions.

Show that T = m(gcosα + rω²sinα) and find a similar expression for the normal force, Nt, to the cone and the gravitational force mg.

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(a) The ellipse $rac{x^2}{a^2} + rac{y^2}{b^2} = 1$ has foci $S(ae, 0)$ and $S'(-ae, 0)$ where $e$ is the eccentricity, with corresponding directrices $x = rac{a}{e}$ and $x = -rac{a}{e}$ - HSC - SSCE Mathematics Extension 2 - Question 4 - 2009 - Paper 1

Worked Solution & Example Answer:(a) The ellipse $rac{x^2}{a^2} + rac{y^2}{b^2} = 1$ has foci $S(ae, 0)$ and $S'(-ae, 0)$ where $e$ is the eccentricity, with corresponding directrices $x = rac{a}{e}$ and $x = -rac{a}{e}$ - HSC - SSCE Mathematics Extension 2 - Question 4 - 2009 - Paper 1