Air pressure acts in all directions, not just downward.
We do not normally feel atmospheric pressure because it acts equally on our bodies.
At sea level, atmospheric pressure is approximately 101 kPa.
Air pressure acts on objects from all sides.
Changes in air pressure can be felt in the ears during altitude changes.
Why Your Ears Pop On A Mountain Or In An Airplane
At a higher altitude, there is less air above you, so atmospheric pressure is lower.
Your ears pop as the pressure on either side of the eardrum equalizes.
Pressure Changes with Height
Atmospheric pressure decreases with increasing altitude.
There is less air above you at higher altitudes, so the weight of air is lower.
This causes pressure to drop as height increases.
Tip
Always explain lower pressure at high altitude using the idea of less air above.
How can atmospheric pressure be measured?
Atmospheric pressure is measured using a barometer.
A traditional mercury barometer uses a column of mercury in a tube with a vacuum at the top.
Atmospheric pressure pushes mercury up until the pressure from the mercury column matches the air pressure.
Using $P=h\rho g$, a height of about $760\ \mathrm{mm}$ corresponds to approximately 1 atmosphere.
Tip
Older units like mmHg are based on the barometer idea.
They are less common today because SI units (Pa, kPa) make calculations and communication more consistent across science and engineering.
Pressure In Fluids Comes From The Weight Of The Fluid Above
In a fluid (liquid or gas), pressure at a point increases with the height (or depth) of fluid above it because the fluid has weight. $$P=h\rho g$$
where $h$ is the height of fluid above the point (or depth below the surface), $\rho$ is the density of the fluid, and $g$ is the gravitational field strength.
Note
This equation gives the pressure due to a column of fluid.
In water problems at depth, you often calculate the additional pressure $\Delta P=\rho g h$ and then add atmospheric pressure if asked for the total pressure.
Pressure in Liquids
Pressure in a liquid increases with depth.
Pressure depends on the density of the liquid and the depth below the surface.
Pressure is the same at the same depth, regardless of container shape.
Underwater Pressure
Water pressure increases rapidly with depth.
For every 10 m increase in depth, pressure increases by about one atmosphere.
Example
Divers experience much higher pressures underwater than at the surface.
Divers must ascend slowly to avoid injury caused by rapid pressure changes.
Example
A free diver reaches $160\ \mathrm{m}$ depth in seawater of density $1025\ \mathrm{kg\ m^{-3}}$. The additional pressure is
$$\Delta P=\rho g h=1025\times 9.8\times 160\approx 1.61\times 10^6\ \mathrm{Pa}=1607\ \mathrm{kPa}.$$
In atmospheres ($1\ \mathrm{atm}=101.325\ \mathrm{kPa}$):
On a graph of pressure near $100{,}000\ \mathrm{Pa}$, do not start the $y$-axis at zero, or the line will look almost flat and the gradient will be hard to measure accurately.
Active recall
Define pressure and state its equation with units.
Explain how changing area affects pressure for the same force.
Explain why large buildings need wide foundations.
Describe why atmospheric pressure decreases with altitude.