Groundwater dynamics across scales.

Connecting flow through pores, fractures, and conduits to aquifer and catchment response.

01 · Surface–subsurface coupling

Water enters the subsurface unevenly.

Recharge is organized by soil, rock structure, wetting conditions, and the pathways that activate during an event.

02 · Deep vadose pathways

Films, droplets, and intersections become connected paths.

Local flow physics determine partitioning, travel times, matrix exchange, and the activation of connected fracture networks.

03 · Karst groundwater & conduit networks

Connected pathways shape the groundwater signal.

Numerical network and aquifer-scale models connect recharge forcing with transient flow, transport, storage, and observable spring or groundwater response.

One multiscale question

How do local flow pathways shape groundwater systems?

Why it matters

Groundwater response depends on pathways that averages can miss.

In soils and fractured-porous aquifers, including karst systems, groundwater response depends on how flow pathways connect and when they activate.

Experiments resolve local processes, geology constrains the relevant structure, and numerical models test the consequences from aquifer to catchment scale.

  • Recharge timingWhen water reaches storage
  • Transport & vulnerabilityHow rapidly solutes move
  • Climate & water resourcesHow systems respond to change

Recent activity.

Software

Official openKARST release

An open-source simulator for transient flow and transport in complex karst conduit networks.

Milestone

Habilitation in Hydrogeology

Defended in 2024, bringing together multiscale work on fractured-porous media and karst systems.