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The centrifugal force is associated with the feeling of being pushed outward when moving in a circle, but it is a fictitious force arising from objects' tendency to move in straight lines.
Findings
Additional insights we found via NOVA PBS Official
As described in Newton's first law, objects in motion will continue along the same linear path with the same velocity—a property known as inertia—unless acted upon by an external force that changes their direction or speed.
If a force is applied to a moving object so that it turns and moves in a circle, such as the force of gravity on planets and the tension in the string of a spinning yo-yo, that force is labeled the centripetal force.
If the centripetal force cannot keep a contained object moving in a circular path, its inertia, per Newton's first law, will cause it to move in a straight line and bump into the walls of the container, as occurs in the spin cycle of a laundry machine, giving the impression that a force—called the centrifugal force—is pressing the object against the container when it's actually confined inertia.
Rather than the result of one object applying a force on another, the centrifugal force can be thought of as an insufficient centripetal force relative to an excess in inertia.
Physicists can change the frame of reference, or perspective, they are using when analyzing circular motion, such as modeling an orbit from the planet or from outside the planetary system, to calculate the effects of the centrifugal force and build various technologies, such as centrifuges.
In a hypothetical rotating cylindrical space station, the centrifugal force—that is, insufficient centripetal force—can cause inhabitants to feel pressed against the cylinder's walls, mimicking gravity.
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