Related Experiment Video
Updated: Apr 1, 2026

Hybrid µCT-FMT imaging and image analysis
Published on: June 4, 2015
Combining 3D Hydraulic Tomography with Tracer Tests for Improved Transport Characterization
E Sanchez-León1, C Leven2, C P Haslauer3
1Center for Applied Geoscience, University of Tübingen, Hölderlinstrasse 12, Tübingen, 72074, Germany; eduardoemilio.sanchez-leon@student.uni-tuebingen.de; carsten.leven-pfister@uni-tuebingen.de; claus.haslauer@uni-tuebingen.de; olaf.cirpka@uni-tuebingen.de. eduardoemilio.sanchez-leon@student.uni-tuebingen.de.
This study combines hydraulic tomography (HT) with tracer tests to improve solute transport predictions in heterogeneous aquifers. The new method enhances accuracy without requiring complex, multi-tracer field tests.
Area of Science:
- Hydrogeology
- Geophysics
- Environmental Science
Background:
- Hydraulic tomography (HT) offers partial resolution of aquifer hydraulic parameters, but often misses details crucial for accurate solute transport modeling.
- Unresolved aquifer heterogeneity significantly challenges the prediction of contaminant or solute movement.
Purpose of the Study:
- To develop and validate a methodology for enhancing solute transport predictions by integrating hydraulic tomography data with single forced-gradient tracer test breakthrough curves (BTCs).
- To improve the characterization of three-dimensional (3D) hydraulic conductivity fields and transport parameters in alluvial aquifers.
Main Methods:
- Estimated the 3D hydraulic conductivity field using pilot-point inversion of tomographic pumping tests.
- Validated the conductivity field with independent hydraulic head measurements and direct-push injection logging (DPIL) data.
- Estimated dual-domain transport parameters by fitting breakthrough curve data from a forced-gradient tracer test.
Main Results:
- Successfully estimated a 3D hydraulic conductivity field and validated it against independent measurements.
- Utilized dual-domain transport modeling to account for unresolved aquifer heterogeneity and accurately fit tracer breakthrough curve data.
- Demonstrated the predictive capability of the integrated approach by accurately forecasting a second, independent tracer test.
Conclusions:
- The proposed methodology provides an efficient and practical approach for predicting solute transport in complex, heterogeneous aquifers.
- Combining hydraulic tomography with tracer test data significantly improves solute transport predictions compared to using HT alone.
- This approach reduces the need for extensive and complex field tracer studies for reliable transport modeling.
More Related Videos
08:36Multi-Tracer Studies of Brain Oxygen and Glucose Metabolism Using a Time-of-Flight Positron Emission Tomography-Computed Tomography Scanner
Published on: June 7, 2024
09:57Development and Evaluation of 3D-Printed Cardiovascular Phantoms for Interventional Planning and Training
Published on: January 18, 2021