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AQA A Level Maths: Mechanics

Revision Notes

Home / A Level / Maths: Mechanics / AQA / Revision Notes / 2. Kinematics / 2.6 Projectiles / 2.6.3 Equation of a Trajectory


2.6.3 Equation of a Trajectory


Equation of a Trajectory

What is the trajectory of a projectile?

  •  The trajectory of a projectile is the path it follows during its motion
  • The modelling assumptions mean it is symmetrical
  • It follows a path called a parabola
  • So far, motion has been described using the suvat formulae and we have produced parametric equations with time as the parameter
  • A Cartesian equation links the horizontal (x ) and vertical (y) components of the displacement begin mathsize 16px style y space equals space straight f left parenthesis x right parenthesis end style

How do I find the equation for the trajectory of a projectile?

  •  U is the initial speed of the projectile at an angle of θ° to the horizontal
2.6.3 Equation of a Trajectory Diagram 1_1

2.6.3 Equation of a Trajectory Diagram 1_2

Worked Example

A particle is projected from a point on horizontal ground at a speed of V m s-1 at an angle α°  to the horizontal. The trajectory of the particle is given by the equation

begin mathsize 16px style y space equals space x tan space alpha minus fraction numerator g x squared over denominator 2 V squared space cos squared alpha end fraction end style 

where begin mathsize 16px style y end style is the vertical height of the particle and begin mathsize 16px style x end style is the horizontal distance travelled by the particle.

 (a)  State two assumptions that have been made.

 (b)  In the case when V = 16 m s-1 and α = 70°  find, to two significant figures, the height of the particle after it has travelled 12 m horizontally.

 (a)  State two assumptions that have been made.

 (b)  In the case when V = 16 m s-1 and α = 70°  find, to two significant figures, the height of the particle after it has travelled 12 m horizontally.

2-6-3-equation-of-a-trajectory-example-solution-aqa

Exam Tip

  • The steps are always the same so the only way the questions can be made difficult is for them to use confusing letters. They could use similar letters to suvat including capital letters. Alternatively, they could use unusual letters like a, instead of θ, for angles.
  • Make sure you show enough working out to convince the examiner that you know the steps especially if it is a "show that" question.
  • Sometimes you might have to use trigonometric identities from pure maths.


  • 1. Mechanics Toolkit
    • 1.1 Quantities, Units & Modelling
      • 1.1.1 Scalars & Vectors
        • 1.1.2 Fundamental Units
          • 1.1.3 Derived Units
            • 1.1.4 Types of Force
              • 1.1.5 Modelling Assumptions
              • 1.2 Working with Vectors
                • 1.2.1 Working with Vectors
              • 2. Kinematics
                • 2.1 Kinematics Graphs
                  • 2.1.1 Displacement-Time Graphs
                    • 2.1.2 Velocity-Time Graphs
                      • 2.1.3 Drawing Travel Graphs
                      • 2.2 Variable Acceleration - 1D
                        • 2.2.1 Using Calculus in 1D
                        • 2.3 Constant Acceleration - 1D
                          • 2.3.1 Deriving the suvat Formulae
                            • 2.3.2 suvat in 1D
                              • 2.3.3 Acceleration due to Gravity
                              • 2.4 Variable Acceleration - 2D
                                • 2.4.1 Using Calculus in 2D
                                • 2.5 Constant Acceleration - 2D
                                  • 2.5.1 suvat in 2D
                                  • 2.6 Projectiles
                                    • 2.6.1 Horizontal & Vertical Components
                                      • 2.6.2 Using suvat
                                        • 2.6.3 Equation of a Trajectory
                                          • 2.6.4 Deriving Projectile Formulae
                                        • 3. Forces & Newton's Laws
                                          • 3.1 Forces
                                            • 3.1.1 Force Diagrams
                                              • 3.1.2 Equilibrium in 1D
                                                • 3.1.3 Equilibrium in 2D
                                                  • 3.1.4 Forces in 2D - Vector Notation
                                                  • 3.2 Newton's Second Law
                                                    • 3.2.1 F = ma
                                                      • 3.2.2 Connected Bodies - Ropes & Tow Bars
                                                        • 3.2.3 Connected Bodies - The Lift Problem
                                                          • 3.2.4 Connected Bodies - Pulleys
                                                            • 3.2.5 F = ma - Vector Notation
                                                            • 3.3 Further Forces & Newton's Laws
                                                              • 3.3.1 Resolving Forces & Inclined Planes
                                                                • 3.3.2 Coefficient of Friction
                                                                  • 3.3.3 Coefficient of Friction - F = ma
                                                                    • 3.3.4 Coefficient of Friction - Inclined Planes
                                                                      • 3.3.5 Coefficient of Friction - Harder Problems
                                                                    • 4. Moments
                                                                      • 4.1 Moments
                                                                        • 4.1.1 Moments Diagrams
                                                                          • 4.1.2 Using Moments - Equilibrium
                                                                            • 4.1.3 Centres of Mass
                                                                              • 4.1.4 Tilting


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                                                                            Author: Daniel

                                                                            Dan graduated from the University of Oxford with a First class degree in mathematics. As well as teaching maths for over 8 years, Dan has marked a range of exams for Edexcel, tutored students and taught A Level Accounting. Dan has a keen interest in statistics and probability and their real-life applications.


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