Velocity and Time
Calculate average acceleration from the change in velocity divided by the elapsed time. This is the most common method for basic motion problems.
Calculate acceleration from velocity and time, force and mass, or velocity and distance. The calculator converts different units automatically and provides results in m/s², ft/s², and g-force.
Select a calculation method and enter the known values below.
Select the equation that matches the information available in your physics, engineering, or motion problem.
Calculate average acceleration from the change in velocity divided by the elapsed time. This is the most common method for basic motion problems.
Use Newton's second law to calculate acceleration when the net force and mass of an object are known.
Find constant acceleration when initial velocity, final velocity, and displacement are available but time is unknown.
The calculator handles unit conversions automatically, so you can enter values in the units provided by your problem.
Choose velocity and time, force and mass, or velocity and distance.
Add each value carefully, including negative velocities when direction matters.
Select the correct velocity, time, force, mass, and distance units.
Get acceleration in m/s², ft/s², and standard gravitational acceleration.
Acceleration describes how quickly an object's velocity changes over time. Velocity includes both speed and direction, so an object can accelerate when it speeds up, slows down, or changes direction.
The standard SI unit for acceleration is meters per second squared, written as m/s². An acceleration of 3 m/s² means that the object's velocity changes by 3 meters per second during each second of motion.
Average acceleration is calculated by subtracting the initial velocity from the final velocity and dividing the difference by elapsed time.
A car increases its velocity from 10 m/s to 30 m/s in 5 seconds. Its acceleration is (30 − 10) ÷ 5 = 4 m/s².
Newton's second law states that net force equals mass multiplied by acceleration. Rearranging this equation allows acceleration to be calculated from force and mass.
For example, applying a net force of 100 newtons to a 20-kilogram object produces an acceleration of 5 m/s².
When time is unavailable, constant acceleration can be calculated from initial velocity, final velocity, and displacement.
This equation assumes acceleration remains constant throughout the measured distance. It is commonly used in vehicle motion and introductory kinematics problems.
A positive result indicates acceleration in the positive direction of the selected coordinate system. A negative result indicates acceleration in the opposite direction. Negative acceleration is often called deceleration, but the correct interpretation depends on the object's direction of motion.
For example, an object moving forward that has negative acceleration may be slowing down. However, an object moving backward with negative acceleration may actually be increasing its speed.
| Acceleration unit | Equivalent value | Common use |
|---|---|---|
| 1 m/s² | 3.28084 ft/s² | Science and engineering |
| 1 ft/s² | 0.3048 m/s² | Imperial motion calculations |
| 1 g | 9.80665 m/s² | Aviation and vehicle performance |
| 1 km/h per second | 0.277778 m/s² | Vehicle speed changes |
Acceleration calculations are important in physics, automotive engineering, aerospace design, sports science, robotics, industrial machinery, and transportation safety. They help describe vehicle performance, falling objects, machinery movement, braking behavior, and changes in direction.
Review the answers to frequently asked questions about acceleration, equations, units, and negative results.
Acceleration is the rate at which velocity changes over time. Because velocity includes direction, acceleration can result from a change in speed, direction, or both.
Subtract initial velocity from final velocity and divide the result by elapsed time. The equation is a = (v − u) ÷ t.
Yes. A negative value means acceleration acts in the negative direction of the chosen coordinate system. It may indicate slowing down, but the object's direction must also be considered.
The SI unit is meters per second squared, written as m/s². It describes the change in meters per second of velocity during every second.
Standard gravitational acceleration near Earth's surface is approximately 9.80665 m/s². In basic calculations, it is commonly rounded to 9.81 m/s².
Speed measures how fast an object moves, while velocity measures both speed and direction. Acceleration is based on the change in velocity.
Yes. The calculator converts the selected velocity, time, distance, mass, and force units into standard SI values before calculating acceleration.