Suppose $0 \leq x \leq \frac{1}{\sqrt{2}}$ - HSC - SSCE Mathematics Extension 2 - Question 8 - 2006 - Paper 1

From the result of part (i):

1. Starting with the left inequality:

   Since $\frac{2x^2}{1-x^2} \geq 0$, we can express it in terms of $t$ using the relation established in part (i) which yields similar bounds.

2. For the right side:

   Following from part (i), we use the inequalities to substitute $t$ and show that $\frac{1}{1+t} - 2 \leq 4x^2$ holds in the defined range.

To obtain this result, we integrate the inequalities established in part (ii):

1. Integrate:

   The left side becomes: $\int_0^x \left( 0 \right) dt = 0$

2. For the right side:

   Integrate the right: $\int_0^x 4x^2 dt = 4\left(\frac{x^3}{3}\right) = \frac{4x^3}{3}$

Hence, combining gives us the final result.

From the results of part (iii):

1. Left inequality: Applies directly based on the bounds shown provided by integration results. Thus: $\left( \frac{1+x}{1-x} \right) e^{2x} \geq 1$

2. Right inequality: Given the previous bound $\log(\frac{1+x}{1-x}) - 2x \leq \frac{4x^3}{3}$ we can exponentiate and derive the upper bound leading us to $\left( \frac{1+x}{1-x} \right) e^{2x} \leq e^{\frac{4}{3}}$.

To find the points of inflexion, we calculate the second derivative of $f(x)$ and set it to zero.

1. Solve for $x$ values where the inflection occurs. Let: $f''(x) = 0$ Solve this equation will yield $a$ and $b$ in terms of $n$.

Using definitions from above, with simplifications for $b$ and $a$ found in part (i), we substitute these values into: $\frac{f(b)}{f(a)} = \left( \frac{1+\sqrt{n}}{1-\sqrt{n}} \right)^{n} e^{2n/\sqrt{n}}$
to show their equivalency.

We’ll apply the exponential bounds from part (a)(iv) to our findings in part (ii). From the logarithmic relation with $f(b)$ and $f(a)$, it yields: $1 \leq \frac{f(b)}{f(a)} \leq e^{\frac{4n}{3}}$.

As $n$ approaches infinity, $\frac{f(b)}{f(a)}$ grows significantly and tends toward infinity since both the exponential and polynomial terms dominate the mathematical behavior of the function.