Related Experiment Video
Updated: Feb 14, 2026

An Experimental Protocol for Studying Mineral Effects on Organic Hydrothermal Transformations
Published on: August 8, 2018
Experimental leaching of massive sulphide from TAG active hydrothermal mound and implications for seafloor mining
Emily K Fallon1, Ella Niehorster2, Richard A Brooker3
1Interface Analysis Centre, School of Physics, HH Wills Physics Laboratory, University of Bristol, Tyndall Ave., BS8 1TL, UK; School of Earth Sciences, University of Bristol, Wills Memorial Building, Queens Rd, BS8 1RJ, UK.
Abstract:
Seafloor massive sulphide samples from the Trans-Atlantic Geotraverse active mound on the Mid-Atlantic Ridge were characterised and subjected to leaching experiments to emulate proposed mining processes. Over time, leached Fe is removed from solution by the precipitation of Fe oxy-hydroxides, whereas Cu and Pb leached remained in solution at ppb levels. Results suggest that bulk chemistry is not the main control on leachate concentrations; instead mineralogy and/or galvanic couples between minerals are the driving forces behind the type and concentration of metals that remain in solution. Dissolved concentrations exceed ANZECC toxicity guidelines by 620 times, implying the formation of localised toxicity in a stagnant water column. Moreover, concentrations will be higher when scaled to higher rock-fluid ratios and finer grain sizes proposed for mining scenarios. The distance at which dilution is achieved to meet guidelines is unlikely to be sufficient, indicating a need for the refinement of the mining process.
Related Concept Videos
Tagging and Fusion Proteins
Experimental Determination of Chemical Formula
Experimental RNAi
Experimental Designs
Correlation of Experimental Data
For example, a spherical particle moving through a viscous fluid experiences drag. Dimensional analysis shows that the drag force depends on the particle's diameter, velocity,...
Comparing Experimental Results: Student's t-Test

