a larger object
The buoyant force acting on an object is determined by its volume displaced in a fluid, not its size or weight. Therefore, a larger object that displaces more fluid will experience a greater buoyant force compared to a smaller object of the same shape and material.
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.
A greater surface area allows for greater energy transfer.
What is the buoyancy force on an object which displaces 10,300 kg of water?100,940 NAbout how many pounds is this? (Remember, a one kilogram mass weighs 2.2 pounds at sea level.)22,660 lbssources AOA
Yes , because a large object takes up more space than a smaller object larger object has more space inside it. It will depend on if the ball is flat.
Yes, greater mass in an object results in a higher resistance to a change in movement, which is known as inertia. This means that more force is needed to accelerate or decelerate an object with greater mass compared to an object with less mass.
that they are greater than the forces keeping the rock from moving...
Wind Tunnel
When you apply a force to a mass you produce acceleration. "Tiny" and "large" are not well defined here, but the basic equation is F = ma, so if the forces are proportional to the masses in each case (for example, a 0.1 N force applied to a 0.1 g object and a 1000 N force applied to a 1000 g object) then you will produce the same acceleration for both objects.
density will decreas.becuse is greater than larger
No. A planet can't be perfectly spherical because of tidal forces. Tidal forces happen when an object is large enough, that the gravitational pull on one side of the object is considerably larger than the gravitational pull on the other side of the object. To be classified as a planet, an object will be large enough that it will experience enough tidal force to alter the shape of the planet. Because of these forces, planets become shaped like distorted ellipsoids.
An object with a large surface area experiences greater air resistance because there is more surface for the air to push against as the object moves. This can slow down the object's motion more significantly compared to an object with a smaller surface area.