3 (12 marks) Use a SEPARATE writing booklet - HSC - SSCE Mathematics Extension 1 - Question 3 - 2008 - Paper 1

To solve the inequality $|2x - 1| \leq |x - 3|$, consider the critical points where each expression changes:

1. The critical points are $\frac{1}{2}$ and $3$.
2. Test intervals:
   • For $x < \frac{1}{2}$, we have $-(2x - 1) \leq -(x - 3)$.
   • For $\frac{1}{2} \leq x < 3$, we have $2x - 1 \leq -(x - 3)$.
   • For $x \geq 3$, we have $2x - 1 \leq x - 3$.
3. Solve each case and find the solution set by combining results from all intervals.

To prove this by induction:

1. Base case ($n = 1$):

   • Left hand side: $1 \cdot 3 = 3$.
   • Right hand side: $\frac{1}{6}(1+1)(2 \cdot 1 + 7) = 3$.
   • Hence, base case holds true.

2. Induction step: Assume true for $n=k$; prove for $n = k + 1$.

   • Left hand side for $k + 1$: $1 \cdot 3 + 2 \cdot 4 + \cdots + k(k + 2) + (k + 1)(k + 3)$.
   • Use induction hypothesis: $\frac{k}{6}(k + 1)(2k + 7) + (k + 1)(k + 3)$.
   • After simplification, show it equals $\frac{k + 1}{6}(k + 2)(2k + 9)$, confirming the induction hypothesis.

To find $\frac{d\theta}{dt}$, use the chain rule:

1. From geometric considerations, use the relationship: $\tan(\theta) = \frac{x}{\ell}$.
2. Differentiate both sides: (rac{d\theta}{dt} = \frac{1}{\ell} \frac{dx}{dt}) with respect to time, where $\frac{dx}{dt} = v$.
3. Hence, $\frac{d\theta}{dt} = \frac{v}{\ell^{2} + x^{2}}$.

To determine the maximum value of $\frac{d\theta}{dt}$, set conditions:

1. Consider the expression $\frac{d\theta}{dt} = \frac{v}{\ell^2 + x^2}$. Since $v$ is constant, maximize by minimizing $\ell^2 + x^2$.
2. The minimum occurs when $x = 0$, leading to a maximum value of $\frac{d\theta}{dt} = \frac{v}{\ell^2}$.

Using the previous maximum value, we set:

1. $\frac{v}{\ell^{2}} = \frac{m}{4}$, leading to $m = \frac{4v}{\ell^2}$.
2. Substitute this into $\tan(\theta) = \frac{x}{\ell}$ to express values of $\theta$ in terms of $x$.
3. Solve for $\theta$ considering the conditions for $x$ to find two valid angles, likely through trigonometric identities.