Question 4 (15 marks) Use a SEPARATE writing booklet - HSC - SSCE Mathematics Extension 2 - Question 4 - 2011 - Paper 1

The locus of the complex numbers $z$ satisfying the equation
$|z - a|^2 - |z - b|^2 = 1$
represents a vertical line in the complex plane. This line can be derived from part (i), where the expression for $x$ yields a constant value. The resulting line is vertical and intersects the real axis at the point
$x = \frac{a+b}{2} + \frac{1}{2(b-a)}.$

A cyclic quadrilateral is one where all points lie on the circumference of a circle. To demonstrate that quadrilateral FADG is cyclic, we can show that opposite angles sum to 180 degrees.
Using the properties of cyclic quadrilaterals and the angles formed by the chords AD and FG, we state that ∠FAD + ∠FGD = 180° (since they subtend the same arc). Thus, we conclude that FADG is cyclic.

The angles ∠GFD and ∠AED are equal because they are angles subtended by the same chord (AD) in the cyclic quadrilateral formed by points A, B, C, D, and E. Therefore, by the properties of cyclic quadrilaterals, we can state that these angles are equal.

To prove that GA is a tangent, we show that the angle between the tangent GA and the radius drawn to the point of tangency (point A) is 90 degrees. By the circle's properties, we note that angle ∠GAB must equal ∠EAD, which are subtended by arc AD. Therefore, from the cyclic nature of quadrilateral FADG, GA is indeed a tangent to the circle.

Given that both functions y = f(t) and y = g(t) satisfy the differential equation
$\frac{d^2y}{dt^2} + \frac{dy}{dt} + 2y = 0,$
we substitute y with Af(t) + Bg(t). Taking the relevant derivatives, we find:
$y' = Af'(t) + Bg'(t)$
$y'' = Af''(t) + Bg''(t).$
Substituting these into the original equation leads to each term combining to show that
$Af''(t) + Bg''(t) + Af'(t) + Bg'(t) + 2(Af(t) + Bg(t)) = 0,$
confirming that y = Af(t) + Bg(t) is indeed a solution.

Given the solution of the differential equation as y = e^(kt), we differentiate twice:
$y' = ke^{kt},$
$y'' = k^2e^{kt}.$
Substituting into the original equation yields:
$k^2e^{kt} + ke^{kt} + 2e^{kt} = 0.$
Factoring out e^(kt) gives us:
$(k^2 + k + 2) = 0.$
The roots of this equation can be calculated using the quadratic formula, leading to the possible values of k as k = -1 and k = -2.

Given the function y = Ae^(-2t) + Be^(-t) and the conditions that y(0) = 0 and dy/dt at t = 0 = 1, we substitute t = 0 into the equation:
$A + B = 0.$
Additionally, by computing the derivative:
$dy/dt = -2Ae^{-2t} - Be^{-t},$
setting t = 0 gives us:
$-2A - B = 1.$
We solve the simultaneous equations:

1. A + B = 0
2. -2A - B = 1.
   Substituting B from equation 1 into equation 2 yields A = -1, hence B = 1. Therefore, the values are A = -1 and B = 1.