Gegee: $f(x) = 2x^2 - x$ Bepaal $f'(x)$ vanuit cerste beginsels - NSC Mathematics - Question 7 - 2017 - Paper 1

To determine the derivative of the function $(x+1)(3x-7)$, we first apply the product rule:

The product rule states that if $u(x) = (x+1)$ and $v(x) = (3x-7)$, then:

$D_f[uv] = u'v + uv'$

1. Find $u'$ and $v'$:

   $u' = 1 \\ v' = 3$

2. Substitute and simplify:

   $D_f[(x+1)(3x-7)] = (1)(3x - 7) + (x + 1)(3)$

   Distributing gives:

   $3x - 7 + 3x + 3 = 6x - 4$

To differentiate the function y = rac{ ext{sqrt}(5 - rac{5}{x})}{2rac{ ext{pi}}{2}}, we start by rewriting it for clarity:

Let k = 2rac{ ext{pi}}{2}. Therefore, the function can be expressed as:

y = rac{ ext{sqrt}(5 - 5x^{-1})}{k}

1. Differentiate using the chain rule:

   rac{dy}{dx} = rac{1}{k} rac{1}{2 ext{sqrt}(5 - 5x^{-1})} rac{d}{dx}(5 - 5x^{-1})

2. Differentiating $5 - 5x^{-1}$:

   rac{d}{dx}(5 - 5x^{-1}) = 5x^{-2}

3. Substituting back into our derivative:

   rac{dy}{dx} = rac{5x^{-2}}{2k ext{sqrt}(5 - 5x^{-1})}

This is the final form of the derivative.