Express \( \frac{4x+3}{(x-1)^2} \) in the form \( \frac{A}{x-1} + \frac{B}{(x-1)^2} \) Show that \[ \int_{3}^{4} \frac{4x+3}{(x-1)^2} dx = p + \ln q \] where \( p \) and \( q \) are rational numbers. - AQA - A-Level Maths Mechanics - Question 7 - 2019 - Paper 3

We begin by substituting our expression into the integral:

[ \int_{3}^{4} \frac{4x + 3}{(x-1)^2} dx = \int_{3}^{4} \left( \frac{4}{x-1} + \frac{7}{(x-1)^2} \right) dx. ]

This can be separated into two parts:

1. ( \int \frac{4}{x-1} dx )
2. ( \int \frac{7}{(x-1)^2} dx )

Calculating the first integral:

[ \int \frac{4}{x-1} dx = 4\ln|x-1| + C. ]

Evaluating from 3 to 4:

[ 4\ln|4-1| - 4\ln|3-1| = 4\ln(3) - 4\ln(2) = 4\ln\left( \frac{3}{2} \right). ]

Now for the second integral:

[ \int \frac{7}{(x-1)^2} dx = -\frac{7}{x-1} + C. ]

Evaluating from 3 to 4:

[ -\frac{7}{4-1} + \frac{7}{3-1} = -\frac{7}{3} + \frac{7}{2}. ]

Finding a common denominator gives:

[ -\frac{14}{6} + \frac{21}{6} = \frac{7}{6}. ]

Putting it all together, we have:

[ 4\ln\left( \frac{3}{2} \right) + \frac{7}{6}. ]

Thus, we can express the result in the form ( p + \ln q ) where ( p = \frac{7}{6} ) and ( q = \frac{3}{2}. )