4. (a) Differentiate with respect to x (i) $x^2 e^{x^2}$ - Edexcel - A-Level Maths Pure - Question 5 - 2006 - Paper 5

To differentiate (y = \frac{\cos(2x)}{3x}), we will use the quotient rule, which states that if we have a function (\frac{u}{v}), then [ \frac{dy}{dx} = \frac{u'v - uv'}{v^2}. ] Let:

• (u = \cos(2x)) and (v = 3x)
• Differentiate (u:\ u' = -2 \sin(2x)) (using the chain rule)
• Differentiate (v:\ v' = 3)

Now apply the quotient rule: [ \frac{dy}{dx} = \frac{(-2 \sin(2x))(3x) - (\cos(2x))(3)}{(3x)^2} = \frac{-6x \sin(2x) - 3 \cos(2x)}{9x^2} = \frac{-2(2x \sin(2x) + \cos(2x))}{9x^2}. ]

To find (\frac{dy}{dx}), we first differentiate both sides of the equation with respect to (x).

Given: [x = 4 \sin(2y + 6)] We will use implicit differentiation: [\frac{dx}{dx} = 4 \cdot \cos(2y + 6) \cdot \frac{d(2y + 6)}{dx}]

Applying the chain rule: [1 = 4 \cos(2y + 6) \cdot 2 \frac{dy}{dx}]

Now solving for (\frac{dy}{dx}): [ \frac{dy}{dx} = \frac{1}{8 \cos(2y + 6)}.]

Now we have (\frac{dy}{dx}) in terms of y. To express it in terms of x, we need to find (y) in terms of (x) from our original equation. From (x = 4 \sin(2y + 6)), we can write: [2y + 6 = \arcsin\left(\frac{x}{4}\right)].

Thus: [2y = \arcsin\left(\frac{x}{4}\right) - 6 \text{, hence } y = \frac{1}{2}\arcsin\left(\frac{x}{4}\right) - 3.]

Substituting y back: [ \frac{dy}{dx} = \frac{1}{8 \cos(\arcsin(\frac{x}{4}))}.]

Since (\cos(\arcsin(z)) = \sqrt{1 - z^2}), we find: [\cos(\arcsin(\frac{x}{4})) = \sqrt{1 - \left(\frac{x}{4}\right)^2} = \sqrt{1 - \frac{x^2}{16}}.]

Finally, the derivative becomes: [ \frac{dy}{dx} = \frac{1}{8 \sqrt{1 - \frac{x^2}{16}}}.]