The first three terms of a geometric series are (k + 4), k and (2k - 15) respectively, where k is a positive constant - Edexcel - A-Level Maths Pure - Question 2 - 2009 - Paper 2

To solve the quadratic equation k² - 7k - 60 = 0, we can factor it: $(k - 12)(k + 5) = 0$ Therefore, the possible values of k are: $k - 12 = 0 \Rightarrow k = 12$ $k + 5 = 0 \Rightarrow k = -5$ Since k is a positive constant, we choose: $k = 12$

We now use k = 12 to find the common ratio (r): $r = \frac{k}{k + 4} = \frac{12}{12 + 4} = \frac{12}{16} = \frac{3}{4}$ Thus, the common ratio of the series is: $r = \frac{3}{4}$

The formula for the sum to infinity (S) of a geometric series with common ratio r where |r| < 1 is given by: $S = \frac{a}{1 - r}$ Substituting for a and r: $S = \frac{12 + 4}{1 - \frac{3}{4}} = \frac{16}{\frac{1}{4}} = 16 \times 4 = 64$ Therefore, the sum to infinity of this series is: $S = 64$