Pressure in Liquids and the Atmosphere
Pressure is force spread over area, and in a fluid it grows with depth and with the density of the fluid. The same reasoning gives upthrust, tells whether an object floats, and explains why air pressure drops with height.
What a learner can do afterwards
- Calculates pressure from force and area, and pressure at depth from depth, density and gravitational field strength
- Explains upthrust as the pressure difference between the bottom and top of a submerged object
- Predicts whether an object floats by comparing its density with the liquid's, and explains why air pressure falls with altitude
1 · Read
Pressure spreads a force over an area. Divide force by area to get pressure in pascals, where one pascal is one newton per square metre. The same weight on a stiletto heel presses far harder than on a snowshoe. Pins and knives work by shrinking the area.
Dive deeper and the pressure climbs. In a liquid it equals depth times density times gravitational field strength, so doubling depth doubles the extra pressure. Denser liquids pile it on faster than light ones. That is why a dam wall is thickest at its base.
Lena holds a block under water. The bottom face sits deeper and feels more pressure than the top face, leaving a net upward push called upthrust. She compares densities to call the result. An object less dense than the liquid floats, and a denser one sinks.
Car tires use gauge pressure, which counts only above the air around us. Absolute pressure adds the atmosphere on top. Air itself thins with height, since less air piles above you, so mountain air presses less.
Pressure is force over area, and depth piles it higher.
2 · Watch
Take it off screen
Where it sits
Where this leads
Jobs that lean on this skill. Follow one to see everything it is built on.
8 questions wait behind this lesson, each with its answer explained. Every answer feeds the sky: stars light as they are learned, and dim when it is time to come back.