1.3 Representing Motion
- Syllabus
- 2024
- Topic
- 1.3
- Level
- —
A motion diagram, graph, equation, figure or narrative can describe the same motion. A valid translation preserves the signs, changes and time interval represented by position x, velocity vx and acceleration ax.
| Use when the unknown is… | Constant-acceleration relationship |
|---|---|
| Final velocity after time t | vx=vx0+axt |
| Position after time t | x=x0+vx0t+21axt2 |
| Velocity after a displacement, with no time needed | vx2=vx02+2ax(x−x0) |
| Representation | Read this feature | It gives… |
|---|---|---|
| Position–time graph | Tangent slope | Instantaneous velocity |
| Velocity–time graph | Tangent slope | Instantaneous acceleration |
| Velocity–time graph | Signed area over an interval | Displacement |
| Acceleration–time graph | Signed area over an interval | Change in velocity |
Hypothetical example: a point object starts at x0=1m with vx0=0 and constant ax=+2ms−2 for t=3s. Then vx=0+(2)(3)=+6ms−1 and x=1+0+21(2)(32)=10m. Its displacement is +9m, equal to the area under its velocity–time graph.
The three equations require constant acceleration. AP Physics 1 treats nonuniform acceleration quantitatively only at a qualitative graph level. Near Earth, gravitational acceleration is downward with magnitude g≈10ms−2; its component is negative if upward is chosen positive.