Topic 3 of 4
Brownian motion
The irregular movement of a small suspended particle provides evidence for the random motion of the surrounding fluid's molecules.
A fluid is a liquid or gas. In the particle model, its molecules move randomly. A Brownian-motion experiment links that model to an observable effect.
What the smoke-cell experiment shows
A transparent smoke cell holds small smoke particles suspended in air. Light shines into it from the side, and a microscope is focused on the illuminated region. Light scattered by the smoke particles makes them appear as small bright specks.
Observe a speck over time. It moves irregularly, with changing direction and speed, rather than following one smooth straight path. This irregular motion of a small particle suspended in a fluid is Brownian motion.
Keep the observation separate from its explanation
1. Apparatus: illuminate the smoke from the side
2. Observation: bright specks move irregularly
This is a schematic trace. In the experiment, look for irregular jiggling, and distinguish it from a shared drift of many specks.
3. Model: unseen air molecules collide with the speck
The explanation uses molecules too small to see in the experiment. The large speck and small molecules are not drawn to a true size ratio.
Visible specks are not air molecules
The bright objects are smoke particles, each much larger than an air molecule. Individual air molecules are not seen in this microscope view. Their motion is inferred from what happens to the suspended particles.
- Air molecules move randomly and continually collide with a suspended smoke particle.
- At a particular instant, the collisions are not exactly balanced on all sides, so there is a resultant force on the smoke particle.
- The imbalance changes from one instant to the next, changing the smoke particle's motion and producing the irregular observed path.
Worked explanation
A speck turns without meeting another visible speck
Observation: the smoke speck changes direction, although no other visible smoke particle touches it.
Explanation: unseen air molecules still bombard it. A changing imbalance in these collisions changes the force and the speck's motion. A visible collision between two smoke specks is not required.
Inference: the air molecules are moving randomly. The experiment gives evidence through their effects; it does not show their individual paths directly.
Small particles suspended in water can also show Brownian motion. In that case, changing unequal collisions from water molecules explain the suspended particles' irregular movement. The inference concerns random molecular motion in a liquid rather than in a gas.
Distinguish jiggling from a common drift
Focus sharply enough to follow individual illuminated specks, and observe several over time. A speck moving out of focus has not necessarily stopped moving; it may have left the focused region.
If many specks travel together steadily in one direction, the fluid itself may be flowing. That common drift alone does not establish the random-collision explanation. Reduce bulk movement and look for irregular changes superimposed on any drift.
Say what is seen and what is inferred. The suspended specks are observed. Random molecular motion is inferred. A drawing or animation can illustrate the model but is not itself experimental evidence.