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Algebraic Relationships · L6 of 6 ~50 min MST-12-S2-01 ⚡ +90 XP available

Reciprocal Relationships and Inverse Variation

When two quantities are inversely related — one doubles as the other halves — their product is always the same constant $k$. This is inverse variation, modelled by $y = \frac{k}{x}$, and its graph is a hyperbola.

Today's hook — A task takes 12 worker-hours to complete. If you add more workers, each person's share decreases. With 6 workers, each works 2 hours. With 3 workers, each works 4 hours. What's the pattern, and what equation models this?

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Recall — your gut answer first

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A task takes 12 worker-hours. With $n$ workers, each person works $h$ hours. Complete the pattern: $n = 1 \Rightarrow h = 12$; $n = 2 \Rightarrow h = 6$; $n = 3 \Rightarrow h = 4$; $n = 4 \Rightarrow h = ?$; $n = 6 \Rightarrow h = ?$.

Without a formula — fill in the missing values and guess what the equation might be. What do you notice about $n \times h$?

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The key formula you need to own

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Inverse variation exists when $x \times y$ is constant. That constant is $k$ (the constant of variation), and the relationship is $y = \frac{k}{x}$. As $x$ increases, $y$ decreases proportionally.

The graph of $y = \frac{k}{x}$ is a hyperbola — two smooth curves, one in each of the quadrants dictated by the sign of $k$. If $k > 0$: curves in quadrants 1 and 3. If $k < 0$: curves in quadrants 2 and 4.

Inverse variation: $x \times y = k$ (constant product) → $y = \dfrac{k}{x}$

Constant product test

If $x \times y$ gives the same value for every pair in a table, the relationship is inverse variation. Find $k$ = any $x \times y$ pair, then write $y = k/x$.

Two asymptotes

The hyperbola $y = k/x$ has two asymptotes: the $x$-axis ($y = 0$) and the $y$-axis ($x = 0$). The graph approaches but never touches either axis.

$x \neq 0$ always

$y = k/x$ is undefined at $x = 0$ (division by zero). In practical models, this translates to a physical constraint — e.g. you can't have zero workers, zero speed, or zero distance.

What you'll master

Know

Key facts

Inverse variation: $y = \frac{k}{x}$ where $k$ is the constant of variation
Identifying inverse variation: constant product $x \times y = k$
Graph is a hyperbola with two branches; asymptotes at $x = 0$ and $y = 0$
$k > 0$: branches in Q1 and Q3; $k < 0$: branches in Q2 and Q4

Understand

Concepts

Why $x \times y = k$ means "as one doubles, the other halves"
Why the graph can never touch the axes (two asymptotes)
How to construct a reciprocal model from a practical scenario
Why the model breaks down near $x = 0$ and has practical limitations

Can do

Skills

Identify inverse variation from a table (constant product test)
Graph $y = k/x$ using a table of values or graphing technology
Write the equation $y = k/x$ given any one $(x, y)$ pair
Solve inverse variation problems graphically or algebraically
Explain limitations of the reciprocal model in context

Key terms

Inverse variationA relationship where the product $xy = k$ is constant — as one quantity increases, the other decreases proportionally. Modelled by $y = k/x$.

Constant of variation ($k$)The constant product in inverse variation: $k = x \times y$ for any point on the curve. Found by multiplying any known pair of values.

HyperbolaThe two-branched curve produced by $y = k/x$. Each branch lies in opposite quadrants and approaches the axes without touching them.

AsymptoteA line the graph approaches but never reaches. For $y = k/x$: the $x$-axis ($y = 0$) and $y$-axis ($x = 0$) are both asymptotes.

Direct variationFor contrast: direct variation is $y = kx$ (a straight line through the origin). In inverse variation, $y = k/x$, the relationship is the opposite type.

Recognising and Graphing $y = \frac{k}{x}$

core concept

Inverse variation is identified by the constant product test: if $x \times y$ gives the same value for every pair in a table, the relationship is $y = k/x$. The graph is a hyperbola — two curved branches, one in Q1 (for $k > 0$) and one in Q3.

Identifying from a table:

For $k = 12$: $x$ = 1, 2, 3, 4, 6, 12 and $y$ = 12, 6, 4, 3, 2, 1. Check: $1 \times 12 = 2 \times 6 = 3 \times 4 = 12$ — constant. This confirms $y = 12/x$.

Graphing $y = k/x$:

Choose several $x$ values (avoid $x = 0$); include both positive and negative values for the full picture.
Calculate corresponding $y = k/x$ values.
Plot and draw smooth curves through each branch. Do not connect the two branches.
Show asymptotes as dashed lines along the $x$- and $y$-axes.

Key graph features of $y = k/x$ ($k > 0$): The graph is in Q1 (positive $x$, positive $y$) and Q3 (negative $x$, negative $y$). It is symmetric about the line $y = x$. It never crosses either axis. As $x$ gets very large, $y$ approaches 0 but remains positive.

In practical contexts: Physical models often use only the Q1 branch (positive $x$ and $y$), since negative times, speeds, or workers make no sense. State this restriction when describing the valid domain.

What to write in your book

Identify inverse variation: constant product $x \times y = k$.
Find $k$: multiply any known pair of values.
Graph: two branches, asymptotes at $x = 0$ and $y = 0$. For $k > 0$: Q1 and Q3 only.

Quick check: A table shows: $x$ = 2, 4, 5, 10 and $y$ = 10, 5, 4, 2. What is the constant of variation $k$, and what is the equation?

Constructing and Solving Inverse Variation Models

core concept

Any situation where two quantities have a constant product is an inverse variation problem. Write $y = k/x$, find $k$ from one known pair, and use the equation to find unknown values.

Steps to construct and solve:

Identify the two varying quantities — call them $x$ and $y$ with their units.
Find $k$ — multiply any known pair: $k = x \times y$. Verify with a second pair if possible.
Write the equation: $y = \frac{k}{x}$.
Solve by substituting the known value of $x$ (or $y$) to find the unknown.
Verify graphically: plot the point on the curve to confirm it lies on the hyperbola.

Worker example: Task takes 12 worker-hours. Let $n$ = workers, $h$ = hours each. $k = 1 \times 12 = 12$. Equation: $h = 12/n$. How many workers to finish in 3 hours? Substitute $h = 3$: $3 = 12/n \Rightarrow n = 4$ workers. Verify: $4 \times 3 = 12$ ✓

Algebraic solution: Given $y = k/x$, to find $x$ when $y$ is known, rearrange: $x = k/y$. Or multiply both sides by $x$: $xy = k$, then divide by $y$. Both approaches give the same result.

What to write in your book

$k = x \times y$ (constant product). $y = k/x$.
To find $x$ given $y$: rearrange to $x = k/y$, or use $xy = k$ directly.
Always verify: substitute both values and check the product equals $k$.

True or false: In the equation $y = 24/x$, when $x = 8$ the value of $y$ is 3, and you can verify this by checking that $8 \times 3 = 24$.

Limitations of Reciprocal Models

core concept

The reciprocal model is powerful but has specific limitations. Because $y = k/x$ approaches infinity as $x \to 0$ and approaches zero as $x \to \infty$, practical situations will always impose constraints that the model doesn't capture.

Key limitations:

$x = 0$ is undefined — but in practice, some minimum value of $x$ must apply (e.g. you can't have zero workers; a machine can't have zero speed).
Prediction of extreme values is unrealistic — as $x$ gets very small, $y$ theoretically approaches infinity. In practice, this isn't possible (adding 1 million workers to a 12-hour task doesn't make it finish instantaneously).
Non-integer solutions may be invalid — if $x$ must be a whole number (workers, items), fractional answers from the model don't apply in practice.
The product may not remain exactly constant — real situations have inefficiencies, setup costs, diminishing returns. The model assumes a perfectly constant product.

Valid domain in context: For a workers-to-hours problem with $h = 12/n$, the valid domain is $n \geq 1$ (can't have fewer than one worker) and $n \leq 12$ (with 12 workers, each works 1 hour — adding more doesn't help if the minimum task unit is 1 hour). State such constraints explicitly.

What to write in your book

Limitation 1: $x = 0$ undefined — physical minimum must exist.
Limitation 2: extreme values (very small $x$) give unrealistically large $y$.
Limitation 3: model assumes constant product — real situations have inefficiencies.
State the valid domain of the practical model (not all real $x$).

Fill the blanks: For $y = k/x$, as $x$ increases, $y$ . The graph has asymptotes at $y = $ and $x = $ . The constant of variation is found by $x$ and $y$.

Worked examples · 3 problems

PROBLEM 1 · CONSTRUCTING A MODEL FROM A TABLE

A car travels a fixed distance. The time $T$ (hours) depends on the average speed $s$ (km/h). The table shows: $s$ = 40, 60, 80, 120 and $T$ = 3, 2, 1.5, 1. (a) Show this is inverse variation. (b) Find $k$ and write the equation. (c) How long does the journey take at 100 km/h?

Part (a) — constant product test
$40 \times 3 = 120$
$60 \times 2 = 120$
$80 \times 1.5 = 120$
$120 \times 1 = 120$
Constant product → inverse variation ✓

All products equal 120, confirming the relationship is $T = k/s$.

PROBLEM 2 · GRAPHING AND SOLVING

For $y = 30/x$: (a) Build a table for $x = 1, 2, 3, 5, 6, 10, 15, 30$. (b) Describe the shape and asymptotes of the graph. (c) Find $x$ when $y = 6$.

Part (a) — table of values
$x$: 1, 2, 3, 5, 6, 10, 15, 30
$y$: 30, 15, 10, 6, 5, 3, 2, 1
Note: each $x \times y = 30$ ✓

Divide 30 by each $x$-value. As $x$ increases, $y$ decreases at a decreasing rate.

PROBLEM 3 · LIMITATIONS IN CONTEXT

A gas is compressed in a sealed container. Pressure $P$ (kPa) and volume $V$ (L) follow $P = 400/V$ (Boyle's Law). (a) Find $P$ when $V = 5$ L. (b) What happens to $P$ as $V \to 0$? (c) State two limitations of this model.

Part (a) — pressure at $V = 5$ L
$P = 400/5 = 80$ kPa

Substitute $V = 5$. The gas exerts 80 kPa of pressure when compressed to 5 litres.

Match each relationship to its type:

Top 3 list: Name THREE ways an inverse variation model can break down in a real physical situation.

Revisit your thinking

Workers pattern: $n \times h = 12$ always. The equation is $h = 12/n$. At $n = 4$: $h = 3$ hours; at $n = 6$: $h = 2$ hours. The product is constant at 12 — that's the constant of variation. The model breaks down at very high $n$ (e.g. 100 workers each doing 0.12 hours = 7.2 minutes — in practice, setup time and coordination overhead mean you can't keep reducing time indefinitely).

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Short answer — exam-style questions

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ApplyBand 33 marks

SA 1. The table shows values of $x$ and $y$:

$x$	3	5	6	10
$y$	20	12	10	6

(a) Show that this is an inverse variation relationship. (b) Find the equation. (c) Find $y$ when $x = 15$. (3 marks)

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ApplyBand 44 marks

SA 2. A train takes $T$ hours to travel a fixed route at average speed $s$ km/h. When $s = 80$, $T = 3$. (a) Find the length of the route. (b) Write the equation for $T$ in terms of $s$. (c) What speed is required to complete the journey in 2 hours? (d) Why can the train not travel the route in 0 hours, according to this model? (4 marks)

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EvaluateBand 54 marks

SA 3. The cost $C$ per person for a group booking is modelled by $C = 960/n$ where $n$ is the number of people. (a) Find the cost per person for a group of 8. (b) How many people are needed to reduce the per-person cost to $\$40$? (c) State two limitations of this model and explain why they make the model unrealistic for very large or very small $n$. (4 marks)

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📖 Comprehensive answers (click to reveal)

SA 1 (3 marks): (a) Products: $3\times20=60$, $5\times12=60$, $6\times10=60$, $10\times6=60$ — constant product 60 confirms inverse variation [1]. (b) $y = 60/x$ [1]. (c) $y=60/15=4$ [1].

SA 2 (4 marks): (a) Distance $= s \times T = 80 \times 3 = 240$ km [1]. (b) $T = 240/s$ [1]. (c) $2 = 240/s \Rightarrow s = 120$ km/h [1]. (d) Setting $T = 0$ requires $s \to \infty$ — infinite speed is physically impossible; the model predicts $T = 0$ only when speed is infinite, which cannot occur in practice [1].

SA 3 (4 marks): (a) $C = 960/8 = \$120$ per person [1]. (b) $40 = 960/n \Rightarrow n = 24$ people [1]. (c) Limitation 1: for very small $n$ (e.g. $n=1$), the model gives $C = \$960$, but a single person may not be permitted to book or there may be a minimum booking fee — the model ignores minimum-booking constraints [1]. Limitation 2: for very large $n$, the model predicts near-zero costs per person, but venues have capacity limits and per-person costs include service charges that don't scale to zero — the constant product assumption breaks down at scale [1].

Boss battle · The Reciprocal Analyst

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Five timed inverse variation questions. Gold tier requires 90% + speed.

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