Each governing process changes the simulated tracer in a different way. Advection carries material with the flow, while diffusion and dispersion represent spreading through the system. Reaction changes the tracer as it moves, altering its persistence or concentration. Including these processes helps engineers distinguish transport caused by bulk flow from spreading and transformation occurring during transit.
Particle paths show how individual computational markers move through a flow field, whereas concentrations describe the collective distribution of tracer material. Path information can reveal source-to-receptor connections and route-specific travel behavior. Concentration results are more useful for evaluating mixing or changes across a system. Selecting either representation depends on the transport question being investigated.
Predictions depend on the simulated flow field and on which transport processes the model includes. Advection controls movement with the flow, while diffusion and dispersion influence spreading; reaction determines how the tracer changes during transport. Because these factors shape travel times, concentration patterns, and system connectivity, scenario results must be interpreted in relation to the modeled conditions.
An engineer first represents the relevant system with a numerical model and establishes its flow field. The computational tracer is then released at a selected location or source, after which the model transports it through the system using the chosen governing processes. Results can be examined over time to evaluate paths, concentrations, travel times, or downstream connections.
Tracking the simulated tracer over time can provide travel times and residence-time distributions, which describe how long material remains within a system. Its concentration pattern also helps evaluate mixing and identify how material spreads through fluids, porous media, waterways, or treatment systems. These outcomes support comparisons among designs or operating scenarios without requiring a physical tracer release.
They are useful when physical tracer experiments are costly, difficult, or impractical. Engineers can test contaminant-transport scenarios, examine source-to-receptor connections, optimize treatment processes, and assess alternative system designs within a numerical model. The approach also supports scenario testing across engineered and natural systems, including waterways, porous media, fluid systems, and treatment facilities.