If $x + \dfrac{1}{x} = 4$, find the values of:

(i) $\Big(x^3 + \dfrac{1}{x^3}\Big)$

(ii) $\Big(x - \dfrac{1}{x}\Big)$

(iii) $\Big(x^3 - \dfrac{1}{x^3}\Big)$

(i) Given,

$x + \dfrac{1}{x} = 4$

Using identity,

$\Rightarrow \Big(x + \dfrac{1}{x}\Big)^3 = x^3 + \dfrac{1}{x^3} + 3\Big(x + \dfrac{1}{x}\Big) \\[1em] \Rightarrow 4^3 = x^3 + \dfrac{1}{x^3} + 3 \times 4 \\[1em] \Rightarrow 64 = x^3 + \dfrac{1}{x^3} + 12 \\[1em] \Rightarrow x^3 + \dfrac{1}{x^3} = 64 - 12 = 52.$

Hence, $x^3 + \dfrac{1}{x^3} = 52.$

(ii) Given,

$x + \dfrac{1}{x} = 4$

Using identity,

$\Rightarrow \Big(x + \dfrac{1}{x}\Big)^2 - \Big(x - \dfrac{1}{x}\Big)^2 = 4 \\[1em] \Rightarrow (4)^2 - \Big(x - \dfrac{1}{x}\Big)^2 = 4 \\[1em] \Rightarrow 16 - \Big(x - \dfrac{1}{x}\Big)^2 = 4 \\[1em] \Rightarrow \Big(x - \dfrac{1}{x}\Big)^2 = 16 - 4 \\[1em] \Rightarrow \Big(x - \dfrac{1}{x}\Big)^2 = 12 \\[1em] \Rightarrow \Big(x - \dfrac{1}{x}\Big) = \sqrt{12}\\[1em] \Rightarrow \Big(x - \dfrac{1}{x}\Big) = \pm 2\sqrt{3}.$

Hence, $\Big(x - \dfrac{1}{x}\Big) = \pm 2\sqrt{3}.$

(iii) Given,

$\Big(x - \dfrac{1}{x}\Big) = \pm 2\sqrt{3}$

Case 1:

$\Big(x - \dfrac{1}{x}\Big) = 2\sqrt{3}$

We know that,

$\Rightarrow \Big(x^3 - \dfrac{1}{x^3}\Big) = \Big(x - \dfrac{1}{x}\Big)^3 + 3\Big(x - \dfrac{1}{x}\Big)$

Substituting values we get :

$\Rightarrow \Big(x^3 - \dfrac{1}{x^3}\Big) = (2\sqrt{3})^3 + 3(2\sqrt{3}) \\[1em] \Rightarrow \Big(x^3 - \dfrac{1}{x^3}\Big) = (8 \times 3\sqrt{3}) + (6\sqrt{3}) \\[1em] \Rightarrow \Big(x^3 - \dfrac{1}{x^3}\Big) = (24\sqrt{3}) + (6\sqrt{3}) \\[1em] \Rightarrow \Big(x^3 - \dfrac{1}{x^3}\Big) = 30\sqrt{3} \\[1em]$

Case 1:

$\Big(x - \dfrac{1}{x}\Big) = -2\sqrt{3}$

We know that,

$\Rightarrow \Big(x^3 - \dfrac{1}{x^3}\Big) = \Big(x - \dfrac{1}{x}\Big)^3 + 3\Big(x - \dfrac{1}{x}\Big)$

Substituting values we get :

$\Rightarrow \Big(x^3 - \dfrac{1}{x^3}\Big) = (-2\sqrt{3})^3 + 3(-2\sqrt{3}) \\[1em] \Rightarrow \Big(x^3 - \dfrac{1}{x^3}\Big) = (-8 \times 3\sqrt{3}) + (-6\sqrt{3}) \\[1em] \Rightarrow \Big(x^3 - \dfrac{1}{x^3}\Big) = (-24\sqrt{3}) - (6\sqrt{3}) \\[1em] \Rightarrow \Big(x^3 - \dfrac{1}{x^3}\Big) = -30\sqrt{3} \\[1em]$

Hence, $\Big(x^3 - \dfrac{1}{x^3}\Big) = \pm 30\sqrt{3}.$