In this question you should show all stages of your working - Edexcel - A-Level Maths Pure - Question 7 - 2021 - Paper 1

We need to solve for $n$ in the following inequality, based on the geometric sequence model:

$20000 imes (1.08)^{(n-1)} > 65000$

First, divide both sides by 20000:

(1.08)^{(n-1)} > rac{65000}{20000} \rightarrow (1.08)^{(n-1)} > 3.25

Next, take the logarithm of both sides:

$ext{log}((1.08)^{(n-1)}) > ext{log}(3.25)$

Using the power property of logarithms:

$(n-1) imes ext{log}(1.08) > ext{log}(3.25)$

Now, isolate $n$:

n - 1 > rac{ ext{log}(3.25)}{ ext{log}(1.08)}

Calculating the right side gives:

ightarrow n - 1 > 15.37 $$ Thus, $$ n > 16.37 $$ Since $n$ must be a whole number, we round up to get: $$ n = 17 $$ Therefore, the first year when the yearly profit exceeds £65 000 is Year 17.

To find the total profit for the first 20 years, we use the formula for the sum of a geometric series:

S_n = rac{u_1 (1 - r^n)}{1 - r}

where:

• $n = 20$ (the number of years)
• $u_1 = £20000$ (the profit in Year 1)
• $r = 1.08$ (growth factor)

Substituting these values, we can calculate:

S_{20} = rac{20000 (1 - (1.08)^{20})}{1 - 1.08}

Calculating $(1.08)^{20}$:

$(1.08)^{20} = 4.6651$

Now substitute back:

S_{20} = rac{20000 (1 - 4.6651)}{-0.08} = rac{20000 imes -3.6651}{-0.08} = rac{20000 imes 3.6651}{0.08}

Calculating this results in:

$S_{20} = 91626.25$

Rounding to the nearest £1000 gives:

Total profit for the first 20 years is approximately £91,000.