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4.5.6.1.4Distance–time graphs

AQA GCSE Physics Foundation (8463), Foundation tier · Forces › Forces and motion › Describing motion along a line

Practise Distance–time graphs. 10 exam-style questions plus unlimited generated ones on this subtopic, at up to four difficulty levels, with full mark schemes and a progress tracker. Free, no account needed.

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Revision notes

A distance–time graph shows how far an object is from a point as time goes on. You need to draw them from measurements, describe motion from their shape and find speed from the gradient.

Key facts

  • Distance–time graph: gradient = speed
  • Horizontal line = stationary
  • Straight sloping line = constant speed
  • Steeper line = greater speed
  • Curve getting steeper = accelerating; getting less steep = decelerating
  • Average speed = total distance ÷ total time

Notes

Reading a distance–time graph

diagram
  • Distance is on the y-axis and time is on the x-axis.
  • A horizontal line means the object is stationary: its distance is not changing.
  • A straight sloping line means the object is moving at a constant speed. The steeper the line, the greater the speed.
  • If distance is measured from a starting point, a line sloping back down towards the time axis means the object is moving back towards the start.
  • 0TimeDistance from startsteep: faststationaryless steep:slowermovingback tostart
    Reading a distance–time graph: the gradient is the speed.

Speed from the gradient

  • Speed = gradient = change in distance ÷ change in time.
  • Use two points far apart on a straight section and draw a large triangle.
  • Example: from (2 s, 10 m) to (6 s, 34 m), speed = (34 − 10) ÷ (6 − 2) = 24 ÷ 4 = 6 m/s.
  • Average speed for a whole journey = total distance ÷ total time, read from the start and end of the graph.

Curved lines: changing speed

  • A curve that gets steeper shows that the object is accelerating.
  • A curve that gets less steep shows that the object is decelerating.

Drawing the graph

  • Put time on the x-axis and distance on the y-axis. Label both axes with units.
  • Choose scales that use more than half the grid, plot the points accurately, then draw a line of best fit (a straight line or a smooth curve).

How to answer each type of question

Describe the motion shown by a graph

2 to 3 marksGrade 3
  1. Describe each section in turn.
  2. Use the words stationary, constant speed, accelerating or decelerating.
  3. Compare sections: 'faster than', 'slower than'.

Example. A distance–time graph for a jogger has three sections. A: a steep straight line. B: a horizontal line. C: a straight line that is less steep than A.
Describe the motion of the jogger in each section.

Show the model answerHide the model answer
A: constant speed (1)
B: stationary (1)
C: constant speed, slower than in A (1)

Calculate speed from the gradient

2 marksGrade 5
  1. Read two points on the straight line, far apart.
  2. Speed = change in distance ÷ change in time.
  3. Give the unit (usually m/s).

Example. The distance–time graph for a cyclist is a straight line from 0 m at 0 s to 450 m at 90 s.
Calculate the speed of the cyclist.

Show the model answerHide the model answer
speed = 450 ÷ 90 (1)
speed = 5.0 m/s (1)

Don’t lose marks

  • Mixing up distance–time and velocity–time graphs: on a distance–time graph a horizontal line means stationary.
  • Using a time axis in minutes but giving the gradient in m/s without converting.

More tips

Memory tricks

  • Flat = stopped. Steep = fast.
  • Gradient = rise ÷ run = distance ÷ time = speed.
  • Use a big triangle for gradients: it reduces reading errors.

Exam technique

  • Draw your gradient triangle on the graph and write down the values you read.
  • When describing motion, use the key words stationary, constant speed, accelerating and decelerating, and compare sections.
  • Check the axis units: time may be in minutes or hours, and distance in km.

What each grade needs

What you need to be able to do, from the first marks up to the top grade.

  1. Grade 3
    Describe motion from a distance–time graphA horizontal line means stationary; a straight sloping line means constant speed.
  2. Grade 4
    Plot a distance–time graph from dataTime on the x-axis, distance on the y-axis, labelled axes with units and sensible scales.
  3. Grade 5
    Calculate speed from the gradientSpeed = change in distance ÷ change in time for a straight section.

Quick recall

Cover the answers and test yourself. The app has these as flashcards that come back just before you'd forget them.

Suggest one advantage of this method over a student using a stopwatch and metre rule to record distance manually at intervals.
It records far more, and more precise, data points than manual timing could.
A student walks at a constant speed and covers 350 m in 250 s.
Calculate their speed.
1.4 m/s

Sample questions

Written for this site in the style of AQA exam questions. They are not taken from real past papers.

Question 1Easy3 marks
(a) On a distance–time graph, what does a steeper gradient represent?
Tick (✓) one box.[1]
  • A greater distance
  • A greater speed
  • A longer time
  • A smaller speed
(b) A student walks at a constant speed and covers 350 m in 250 s.
Calculate their speed.[2]
Show the answer and mark scheme
(a) Answer: A greater speed
(b) Answer: 1.4 m/s
  • v = 350 ÷ 250
  • 1.4 (m/s)
Question 2Medium4 marks
A student wants to obtain a distance–time graph for a toy car as it moves across the floor.
(a) Describe how the student could use an ultrasonic position sensor connected to a data logger to obtain a distance–time graph for the car.[3]
(b) Suggest one advantage of this method over a student using a stopwatch and metre rule to record distance manually at intervals.[1]
Show the answer and mark scheme
(a) Answer: Point a position sensor at the car; the data logger records distance at frequent regular intervals and plots it against time automatically.
  • set up the position sensor so that it faces the car and can detect the car throughout its motion
  • the sensor (and data logger) automatically records the car’s distance from the sensor at very short, regular time intervals
  • the data logger (or connected computer) plots this distance and time data directly as a distance–time graph
(b) Answer: It records far more, and more precise, data points than manual timing could.
  • it can record many more data points, much more frequently and precisely, than would be possible by hand, giving a smoother and more detailed graph

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