The line with equation $y = 3x + 20$ cuts the curve with equation $y = x^3 + 6x + 10$ at the points A and B, as shown in Figure 2 - Edexcel - A-Level Maths Pure - Question 8 - 2005 - Paper 2

To find the area of the shaded region S, we calculate the definite integral between the x-coordinates of points A and B:

First, establish the bounds from the previously calculated intersection points. For instance, from $x = -2.5$ (for B) to $x = 2$ (for A):

$S = ext{Area} = \int_{-2.5}^{2} ((3x + 20) - (x^3 + 6x + 10)) \, dx$

This simplifies to: $S = \int_{-2.5}^{2} (-x^3 - 3x + 10) \, dx$

Evaluating this integral yields:

1. Calculate the antiderivative: $F(x) = -\frac{x^4}{4} - \frac{3x^2}{2} + 10x$

2. Then evaluate it from $x = -2.5$ to $x = 2$: $S = F(2) - F(-2.5)$

3. Substitute and compute: $S = [ -\frac{2^4}{4} - \frac{3(2^2)}{2} + 10(2) ] - [ -\frac{(-2.5)^4}{4} - \frac{3(-2.5)^2}{2} + 10(-2.5) ]$. After simplifying these expressions, you will arrive at the exact area of region S.