Long Question 3

Posted on April 22, 2020 by user

Question 3:

The gradient function of a curve which passes through P(2, –14) is 6x² – 12x.

Find

(a) the equation of the curve,

(b) the coordinates of the turning points of the curve and determine whether each of the turning points is a maximum or a minimum.

Solution:
(a)

\begin{array}{l} Given gradient function of a curve \frac{d y}{d x} = 6 x^{2} - 12 x \\ The equation of the curve, \\ y = \int (6 x^{2} - 12 x) d x \\ y = \frac{6 x^{3}}{3} - \frac{12 x^{2}}{2} + c \\ y = 2 x^{3} - 6 x^{2} + c \\ - 14 = 2 {(2)}^{3} - 6 {(2)}^{2} + c, at point P (2, - 14) \\ - 14 = - 8 + c \\ c = - 6 \\ y = 2 x^{3} - 6 x^{2} - 6 \end{array}

(b)

\begin{array}{l} \frac{d y}{d x} = 6 x^{2} - 12 x \\ At turning points, \frac{d y}{d x} = 0 \\ 6 x^{2} - 12 x = 0 \\ 6 x (x - 2) = 0 \\ x = 0, x = 2 \\ x = 0, y = 2 {(0)}^{3} - 6 {(0)}^{2} - 6 = - 6 \\ x = 2, y = 2 {(2)}^{3} - 6 {(2)}^{2} - 6 = - 14 \\ \frac{d^{2} y}{d x^{2}} = 12 x - 12 \\ When x = 0, \frac{d^{2} y}{d x^{2}} = 12 (0) - 12 = - 12 < 0 \\ (0, - 6) is a maximum point . \\ When x = 2, \frac{d^{2} y}{d x^{2}} = 12 (2) - 12 = 12 > 0 \\ (2, - 14) is a minimum point . \end{array}