SL 1.8 Question Bank

SUM OF INFINITE CONVERGENT GEOMETRIC SEQUENCES

This question bank contains 12 questions covering infinite convergent geometric series, distributed across different paper types according to IB AAHL curriculum standards.

📌 Multiple Choice Questions (2 Questions)

MCQ 1. What is the sum to infinity of $\frac{1}{2} + \frac{1}{8} + \frac{1}{32} + \frac{1}{128} + \cdots$?

A) $\frac{1}{2}$ B) $\frac{2}{3}$ C) $\frac{4}{7}$ D) 1

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Solution:

First term: $a = \frac{1}{2}$

Common ratio: $r = \frac{1/8}{1/2} = \frac{1}{8} \times \frac{2}{1} = \frac{1}{4}$

Since $|r| = \frac{1}{4} < 1$, the series converges.

$S_\infty = \frac{a}{1-r} = \frac{1/2}{1-1/4} = \frac{1/2}{3/4} = \frac{1}{2} \times \frac{4}{3} = \frac{2}{3}$

✅ Answer: B) $\frac{2}{3}$

MCQ 2. For which values of k does the series $3 + 3k + 3k^2 + 3k^3 + \cdots$ converge?

A) $k > 1$ B) $|k| < 1$ C) $k < 1$ D) $k \neq 1$

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Solution:

This is a geometric series with first term $a = 3$ and common ratio $r = k$.

For convergence of a geometric series, we need $|r| < 1$.

Therefore, we need $|k| < 1$.

When $|k| < 1$, the sum is $\frac{3}{1-k}$.

✅ Answer: B) $|k| < 1$

📌 Paper 1 Questions (No Calculator) – 4 Questions

Paper 1 – Q1. Find the sum to infinity of the series: $6 + 2 + \frac{2}{3} + \frac{2}{9} + \cdots$

[4 marks]

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Solution:

Step 1: Identify first term and common ratio

First term: $a = 6$

Common ratio: $r = \frac{2}{6} = \frac{1}{3}$

Step 2: Verify common ratio

Check: $2 \times \frac{1}{3} = \frac{2}{3}$ ✓

Check: $\frac{2}{3} \times \frac{1}{3} = \frac{2}{9}$ ✓

Step 3: Check convergence

$|r| = \frac{1}{3} < 1$, so the series converges

Step 4: Apply sum formula

$S_\infty = \frac{a}{1-r} = \frac{6}{1-\frac{1}{3}} = \frac{6}{\frac{2}{3}} = 6 \times \frac{3}{2} = 9$

✅ Answer: 9

Paper 1 – Q2. Express the recurring decimal $0.181818…$ as a fraction in its simplest form.

[5 marks]

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Solution:

Step 1: Express as infinite series

$0.181818… = 0.18 + 0.0018 + 0.000018 + \cdots$

$= \frac{18}{100} + \frac{18}{10000} + \frac{18}{1000000} + \cdots$

Step 2: Identify geometric series parameters

First term: $a = \frac{18}{100}$

Common ratio: $r = \frac{18/10000}{18/100} = \frac{18}{10000} \times \frac{100}{18} = \frac{1}{100}$

Step 3: Apply sum formula

Since $|r| = \frac{1}{100} < 1$, the series converges

$S_\infty = \frac{18/100}{1-1/100} = \frac{18/100}{99/100} = \frac{18}{100} \times \frac{100}{99} = \frac{18}{99}$

Step 4: Simplify

$\frac{18}{99} = \frac{18 ÷ 9}{99 ÷ 9} = \frac{2}{11}$

✅ Answer: $\frac{2}{11}$

Paper 1 – Q3. Does the series $4 – 2 + 1 – \frac{1}{2} + \frac{1}{4} – \cdots$ converge or diverge? If it converges, find its sum.

[4 marks]

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Solution:

Step 1: Identify the pattern

This is an alternating geometric series.

First term: $a = 4$

Common ratio: $r = \frac{-2}{4} = -\frac{1}{2}$

Step 2: Verify the pattern

Check: $4 \times (-\frac{1}{2}) = -2$ ✓

Check: $-2 \times (-\frac{1}{2}) = 1$ ✓

Check: $1 \times (-\frac{1}{2}) = -\frac{1}{2}$ ✓

Step 3: Test for convergence

$|r| = |-\frac{1}{2}| = \frac{1}{2} < 1$

The series converges.

Step 4: Find the sum

$S_\infty = \frac{a}{1-r} = \frac{4}{1-(-\frac{1}{2})} = \frac{4}{1+\frac{1}{2}} = \frac{4}{\frac{3}{2}} = 4 \times \frac{2}{3} = \frac{8}{3}$

✅ Answer: Converges to $\frac{8}{3}$

Paper 1 – Q4. The third term of an infinite geometric series is 12 and the fifth term is 3. Find the sum to infinity.

[5 marks]

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Solution:

Step 1: Set up equations using $u_n = ar^{n-1}$

Third term: $u_3 = ar^2 = 12$

Fifth term: $u_5 = ar^4 = 3$

Step 2: Find the common ratio

$\frac{u_5}{u_3} = \frac{ar^4}{ar^2} = r^2 = \frac{3}{12} = \frac{1}{4}$

Therefore: $r = \pm\frac{1}{2}$

Step 3: Find the first term

Using $ar^2 = 12$:

If $r = \frac{1}{2}$: $a \times \frac{1}{4} = 12$, so $a = 48$

If $r = -\frac{1}{2}$: $a \times \frac{1}{4} = 12$, so $a = 48$

Step 4: Check convergence and find sum

Since $|r| = \frac{1}{2} < 1$, both series converge

For both cases: $S_\infty = \frac{48}{1-(\pm\frac{1}{2})}$

If $r = \frac{1}{2}$: $S_\infty = \frac{48}{1-\frac{1}{2}} = \frac{48}{\frac{1}{2}} = 96$

If $r = -\frac{1}{2}$: $S_\infty = \frac{48}{1+\frac{1}{2}} = \frac{48}{\frac{3}{2}} = 32$

✅ Answer: 96 (if r > 0) or 32 (if r < 0)

📌 Paper 2 Questions (Calculator Allowed) – 3 Questions

Paper 2 – Q1. A ball is dropped from a height of 8 meters. After each bounce, it reaches 75% of its previous height. Find the total vertical distance traveled by the ball.

[6 marks]

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Solution:

Step 1: Analyze the motion

• Initial drop: 8m downward

• First bounce: 6m up, then 6m down

• Second bounce: 4.5m up, then 4.5m down

• Third bounce: 3.375m up, then 3.375m down

Step 2: Set up the series

Total distance = Initial drop + Sum of all up distances + Sum of all down distances

Heights after bounces: 6, 4.5, 3.375, …

Total distance = 8 + 2(6 + 4.5 + 3.375 + …)

Step 3: Find sum of bounce heights

Series: 6 + 4.5 + 3.375 + …

First term: a = 6, Common ratio: r = 0.75

Since |r| = 0.75 < 1, the series converges

Sum = $\frac{6}{1-0.75} = \frac{6}{0.25} = 24$

Step 4: Calculate total distance

Total distance = 8 + 2(24) = 8 + 48 = 56m

✅ Answer: 56 meters

Paper 2 – Q2. A perpetual scholarship fund is established by making an initial deposit such that $5000 can be withdrawn at the end of each year forever. If the fund earns 4% annual interest, what initial deposit is required?

[5 marks]

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Solution:

Step 1: Set up present value calculation

Present value of future payments:

• Year 1: $\frac{5000}{1.04}$

• Year 2: $\frac{5000}{(1.04)^2}$

• Year 3: $\frac{5000}{(1.04)^3}$

• And so on…

Step 2: Express as geometric series

PV = $5000\left(\frac{1}{1.04} + \frac{1}{(1.04)^2} + \frac{1}{(1.04)^3} + \cdots\right)$

First term: $a = \frac{1}{1.04}$

Common ratio: $r = \frac{1}{1.04} = 0.9615$

Step 3: Calculate sum of series

Since |r| < 1, the series converges

Sum = $\frac{1/1.04}{1-1/1.04} = \frac{1/1.04}{(1.04-1)/1.04} = \frac{1/1.04}{0.04/1.04} = \frac{1}{0.04} = 25$

Step 4: Calculate required deposit

Required deposit = 5000 × 25 = $125,000

✅ Answer: $125,000

Paper 2 – Q3. A geometric series has first term 20 and sum to infinity 80. Find the fourth term of the series.

[4 marks]

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Solution:

Step 1: Find the common ratio

Given: $a = 20$ and $S_\infty = 80$

Using $S_\infty = \frac{a}{1-r}$:

$80 = \frac{20}{1-r}$

Step 2: Solve for r

$80(1-r) = 20$

$80 – 80r = 20$

$80r = 80 – 20 = 60$

$r = \frac{60}{80} = \frac{3}{4} = 0.75$

Step 3: Verify convergence

Since $|r| = 0.75 < 1$, the series converges ✓

Step 4: Find the fourth term

$u_4 = ar^3 = 20 \times (0.75)^3 = 20 \times 0.421875 = 8.4375$

✅ Answer: 8.44 (to 3 significant figures)

📌 Paper 3 Questions (Extended Response) – 3 Questions

Paper 3 – Q1. Consider the Koch snowflake fractal. Starting with an equilateral triangle of side length 1, at each stage, the middle third of each side is replaced by two sides of an equilateral triangle pointing outward.

(a) Find the perimeter after n iterations. [3 marks]

(b) Show that the perimeter approaches infinity as n → ∞. [2 marks]

(d) Find the total area of the Koch snowflake. [3 marks]

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Complete solution:

(a) Perimeter after n iterations:

Initial triangle: perimeter = 3, sides = 3

After 1st iteration: each side becomes 4/3 of original length

Number of sides: $3 \times 4^0 = 3, 3 \times 4^1 = 12, 3 \times 4^2 = 48, …$

Side length: $1, \frac{1}{3}, \frac{1}{9}, \frac{1}{27}, …$

After n iterations: Perimeter = $3 \times 4^n \times \frac{1}{3^n} = 3 \times \left(\frac{4}{3}\right)^n$

(b) Perimeter as n → ∞:

Since $\frac{4}{3} > 1$, as n → ∞, $\left(\frac{4}{3}\right)^n → ∞$

Therefore, the perimeter approaches infinity.

At each iteration, small triangles are added.

At iteration n: number of new triangles = $3 \times 4^{n-1}$

Side length of each small triangle = $\frac{1}{3^n}$

Area of each small triangle = $\frac{\sqrt{3}}{4} \times \left(\frac{1}{3^n}\right)^2 = \frac{\sqrt{3}}{4 \times 9^n}$

Total area added at iteration n: $3 \times 4^{n-1} \times \frac{\sqrt{3}}{4 \times 9^n} = \frac{3\sqrt{3}}{4} \times \frac{4^{n-1}}{9^n} = \frac{3\sqrt{3}}{16} \times \left(\frac{4}{9}\right)^n$

(d) Total area:

Initial triangle area = $\frac{\sqrt{3}}{4}$

Total added area = $\sum_{n=1}^{\infty} \frac{3\sqrt{3}}{16} \times \left(\frac{4}{9}\right)^n$

This is a geometric series with first term $a = \frac{3\sqrt{3}}{16} \times \frac{4}{9} = \frac{\sqrt{3}}{12}$

Common ratio $r = \frac{4}{9}$

Sum = $\frac{\sqrt{3}/12}{1-4/9} = \frac{\sqrt{3}/12}{5/9} = \frac{\sqrt{3}}{12} \times \frac{9}{5} = \frac{3\sqrt{3}}{20}$

Total area = $\frac{\sqrt{3}}{4} + \frac{3\sqrt{3}}{20} = \frac{5\sqrt{3} + 3\sqrt{3}}{20} = \frac{8\sqrt{3}}{20} = \frac{2\sqrt{3}}{5}$

✅ Final Answers:
(a) Perimeter = $3\left(\frac{4}{3}\right)^n$
(b) Perimeter → ∞ as n → ∞
(c) Area added = $\frac{3\sqrt{3}}{16}\left(\frac{4}{9}\right)^n$
(d) Total area = $\frac{2\sqrt{3}}{5}$

Paper 3 – Q2. A company’s annual profit follows a pattern where each year’s profit is 90% of the previous year’s profit plus a fixed bonus of $10,000.

(a) If the first year’s profit is $100,000, write a recurrence relation for the profit. [2 marks]

(b) Solve the recurrence relation to find the profit in year n. [4 marks]

(d) Calculate the total profit over all years. [4 marks]

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Complete solution:

(a) Recurrence relation:

$P_1 = 100,000$

$P_n = 0.9P_{n-1} + 10,000$ for n ≥ 2

(b) Solving the recurrence relation:

Let $P_n = Q_n + k$ where k is chosen to eliminate the constant term

$Q_n + k = 0.9(Q_{n-1} + k) + 10,000$

$Q_n + k = 0.9Q_{n-1} + 0.9k + 10,000$

For this to become $Q_n = 0.9Q_{n-1}$, we need:

$k = 0.9k + 10,000$

$0.1k = 10,000$, so $k = 100,000$

Therefore: $Q_n = 0.9Q_{n-1}$ with $Q_1 = P_1 – k = 100,000 – 100,000 = 0$

This gives $Q_n = 0$ for all n

So $P_n = Q_n + k = 0 + 100,000 = 100,000$

Wait, let me recalculate. Actually:

$Q_1 = 100,000 – 100,000 = 0$

But we need $P_2 = 0.9(100,000) + 10,000 = 100,000$

Let me try a different approach: $Q_n = P_n – 100,000$

Then $Q_n = 0.9Q_{n-1}$ and $Q_1 = 0$

So $Q_n = 0 \times (0.9)^{n-1} = 0$

Therefore $P_n = 100,000$ for all n

As n → ∞, $P_n → 100,000$

(d) Total profit over all years:

Since $P_n = 100,000$ for all n, the series is:

$100,000 + 100,000 + 100,000 + \cdots$

This series diverges (sum is infinite)

✅ Final Answers:
(a) $P_n = 0.9P_{n-1} + 10,000$
(b) $P_n = 100,000$
(c) Long-term profit = $100,000
(d) Total profit is infinite

Paper 3 – Q3. Zeno’s paradox: Achilles runs a race against a tortoise. The tortoise has a 100m head start. Achilles runs at 10 m/s and the tortoise at 1 m/s.

(a) When Achilles reaches the tortoise’s starting point, how far has the tortoise moved? [1 mark]

(b) Set up an infinite series for the total distance Achilles must travel to catch the tortoise. [3 marks]

(d) Verify your answer by solving the problem using simultaneous equations. [3 marks]

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Complete solution:

(a) Tortoise’s movement:

Time for Achilles to cover 100m: $t = \frac{100}{10} = 10$ seconds

In 10 seconds, tortoise moves: $1 \times 10 = 10$ meters

(b) Setting up the infinite series:

Stage 1: Achilles covers 100m (initial gap)

Stage 2: Achilles covers 10m (new gap created)

Stage 3: Achilles covers 1m (next gap)

Stage 4: Achilles covers 0.1m

Pattern: Each gap is 1/10 of the previous gap

Total distance = $100 + 10 + 1 + 0.1 + 0.01 + \cdots$

This is a geometric series with $a = 100$ and $r = 0.1$

Since $|r| = 0.1 < 1$, the series converges

$S_\infty = \frac{a}{1-r} = \frac{100}{1-0.1} = \frac{100}{0.9} = \frac{1000}{9} ≈ 111.11$ meters

(d) Verification using simultaneous equations:

Let t be the time when Achilles catches the tortoise

Distance traveled by Achilles: $10t$

Distance traveled by tortoise: $100 + 1t$

At the meeting point: $10t = 100 + 1t$

$9t = 100$

$t = \frac{100}{9}$ seconds

Distance: $10 \times \frac{100}{9} = \frac{1000}{9}$ meters ✓

✅ Final Answers:
(a) 10 meters
(b) $100 + 10 + 1 + 0.1 + \cdots$
(c) $\frac{1000}{9}$ meters
(d) Verified: $\frac{1000}{9}$ meters