Physics · Ch 6 — Gravitation
Gravitational Potential V(r)
Gravitational Potential V(r)
Definition. The gravitational potential at a distance from a mass is defined as the amount of work required to bring a unit mass from that point out to infinity -- equivalently, it is the gravitational potential energy per unit mass at that point:
is a scalar quantity, with SI unit joule per kilogram ().
Why bother with a scalar version of potential energy? The gravitational field and gravitational force are both vectors, needing components and directions to add correctly. Gravitational potential and potential energy , being scalars, add up as simple algebra -- which makes many multi-mass problems dramatically easier (this is the same trick used later for electric potential).
Near the Earth's surface. At height above the surface, , and on the surface itself ; since , we always have in the algebraic sense that the potential becomes less negative (i.e. increases) as you move away from the Earth. Equivalently, near the surface, , and the potential is zero right at the surface (). This is why "water always falls downhill": the top of a hill is at a higher gravitational potential than the ground below it, and any freely-moving mass slides from a region of higher potential to a region of lower potential.
Worked example (four equal masses on a circle). Four equal masses sit equally spaced (i.e. at intervals) on a circle of radius around a centre point . Since potential is a scalar, the net potential at is just the algebraic sum of the four individual potentials:
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What this figure shows. Two side-by-side pictures of the same falling apple. The left picture is the ordinary force picture, showing the weight arrow pulling the apple straight down toward the Earth. The right picture is the potential picture, showing the same event as the apple simply moving from a point of higher gravitational potential (up near the hilltop) to a point of lower gravitational potential (down at the ground) -- illustrating that, in general, any mass free to move will always slide from higher to lower gravita …