When a sphere floats, its weight is equal to the buoyant force acting on it. This is because the sphere reaches an equilibrium where the upward buoyant force from the fluid equals the downward force of gravity acting on the sphere.
When an object floats, the buoyant force acting on it is equal to the weight of the fluid that the object displaces. This principle is known as Archimedes' principle. The buoyant force is able to counteract the weight of the object, allowing it to float.
An object floats when the buoyant force acting on it is greater than its weight, causing it to stay on the surface of a fluid. Conversely, an object sinks when its weight is greater than the buoyant force, causing it to submerge in the fluid.
When an object floats, the buoyant force acting on it is equal to the weight of the displaced fluid. This force opposes the weight of the object, allowing it to remain buoyant and stay afloat in the fluid.
Yes, when a hydrometer floats in water, it is buoyant. Buoyancy is the upward force exerted on an object when it is partially or fully submerged in a fluid, in this case water. This force is equal to the weight of the fluid displaced by the hydrometer.
If you know the weight of an object that floats, you can determine the buoyant force acting on it, which is equal to the weight of the fluid it displaces. This information allows you to calculate the object's density, as it will be equal to the density of the fluid it displaces.
If the object is floating, then the buoyant force is equal to the object's weight.
When an object floats, the buoyant force acting on it is equal to the weight of the fluid that the object displaces. This principle is known as Archimedes' principle. The buoyant force is able to counteract the weight of the object, allowing it to float.
An object floats when the buoyant force acting on it is greater than its weight, causing it to stay on the surface of a fluid. Conversely, an object sinks when its weight is greater than the buoyant force, causing it to submerge in the fluid.
When an object floats, the buoyant force acting on it is equal to the weight of the displaced fluid. This force opposes the weight of the object, allowing it to remain buoyant and stay afloat in the fluid.
it is the gravity of difference buoyat force
Yes, when a hydrometer floats in water, it is buoyant. Buoyancy is the upward force exerted on an object when it is partially or fully submerged in a fluid, in this case water. This force is equal to the weight of the fluid displaced by the hydrometer.
If you know the weight of an object that floats, you can determine the buoyant force acting on it, which is equal to the weight of the fluid it displaces. This information allows you to calculate the object's density, as it will be equal to the density of the fluid it displaces.
The buoyancy force is typically larger than the weight of a floating block because the buoyant force is equal to the weight of the fluid displaced by the block. This relationship allows objects to float when the buoyant force exceeds their weight.
To test if something is buoyant, you can place it in a liquid and see if it floats. Buoyancy is a force that opposes the weight of an object in a fluid, causing it to rise. If the object floats, it is buoyant; if it sinks, it is not buoyant.
When a body floats in a liquid, it displaces an amount of liquid equal to its own weight, leading to an upward buoyant force that counteracts the force of gravity pulling it down. If the buoyant force is greater than the weight of the body, it will float; if it is less, the body will sink. This is governed by Archimedes' principle.
No, but the difference between the buoyant force and the weight of the object will determine whether it floats or sinks.
The buoyant force is equal to the weight of the liquid displaced by the object. When an object floats in a liquid, it displaces a volume of liquid equal to its own volume, and the buoyant force acting on the object is equal to the weight of this displaced liquid, which is equal to the weight of the object. This is why the object stays afloat.