Enter Object Information
Provide the object's mass and the volume of fluid it displaces. Select the appropriate units for each value.
Calculate buoyant force using Archimedes' principle and determine whether an object will float, sink, or remain neutrally buoyant in a selected fluid.
Enter the object's mass, displaced volume, and fluid properties.
| Fluid density | 0 kg/m³ |
|---|---|
| Displaced volume | 0 m³ |
| Mass of displaced fluid | 0 kg |
| Object average density | Available in full-volume mode |
| Relative density | Available in full-volume mode |
| Estimated submerged percentage | Available in full-volume mode |
| Force direction | Not calculated |
A buoyancy calculator determines the upward force that a fluid applies to a partially or completely submerged object. This force is called the buoyant force or upthrust.
The calculator compares buoyant force with the object's gravitational weight. That comparison helps determine whether the object has an upward tendency, a downward tendency, or neutral buoyancy.
Archimedes' principle states that the buoyant force acting on an object equals the weight of the fluid displaced by that object. The principle applies to liquids and gases.
Provide the object's mass and the volume of fluid it displaces. Select the appropriate units for each value.
Choose water, seawater, oil, ethanol, air, or another preset. You can also enter a custom fluid density.
The tool calculates buoyant force, object weight, apparent weight, net force, and the expected floating condition.
When the maximum available buoyant force is greater than the object's weight, the object has an upward tendency. A freely floating object rises until it displaces only enough fluid for buoyant force to equal its weight.
An object sinks when its weight is greater than the buoyant force produced by the displaced fluid. This commonly occurs when the object's average density is greater than the fluid density.
Neutral buoyancy occurs when buoyant force and object weight are approximately equal. The object can remain suspended at a stable depth when other forces are negligible.
Buoyancy calculations are useful in marine engineering, shipbuilding, underwater robotics, diving, aviation, fluid mechanics, material testing, and classroom physics.
Buoyant force is the upward force exerted by a fluid on an object that is partially or fully immersed in that fluid. Its magnitude equals the weight of the displaced fluid.
Multiply the fluid density by gravitational acceleration and the displaced fluid volume. In SI units, the result is expressed in newtons.
No. An object's total mass alone does not determine whether it sinks. Its average density, shape, displaced volume, and the density of the surrounding fluid are also important.
Seawater is denser than fresh water. The same displaced volume therefore has more mass and weight, producing a greater buoyant force.
Apparent weight is the object's gravitational weight minus the buoyant force acting on it. A negative result indicates that the upward buoyant force exceeds the object's weight.
Yes. Air is a fluid and produces buoyancy. Select the air density preset or enter a custom density based on the temperature, pressure, and altitude.
Enter the actual volume below the fluid surface. For a completely submerged object, this usually equals the full external object volume. For a floating object, only part of its volume is submerged.