The water mobility in single crystals of MgCl2 hydrates has been investigated with molecular dynamics. Standard force fields have been benchmarked for molecular dynamics simulations of MgCl2 hydrates. To provide a reliable molecular mechanics model, force fields are selected on their ability to reproduce the structure of MgCl2·6H2O at 300 K. The selected force fields are then tested on their ability to also reproduce the structures of the different hydrates (n = 12, 8, 6, 4, 2, 1) and available thermodynamic data. For the currently best force-field available, constant-temperature, constant-pressure molecular dynamics simulations are preformed to elucidate the mechanisms of hydrate water mobility in perfect single crystals of the tetra- and ...
Thermochemical heat-storage applications, based on the reversible endo-/exothermic hydration reactio...
Solar energy is one of the important pillar of renewable energy systems. The main challenge in explo...
Salt hydrates have promising potential as heat storage materials by use of their hydration/dehydrati...
The water mobility in single crystals of MgCl2 hydrates has been investigated with molecular dynamic...
Mixed salt hydrates recently proved to be promising potential candidates for long-term heat storage....
MgCl2 hydrates are considered as high-potential candidates for seasonal heat storage materials. Thes...
Pure Magnesium chloride hydrates are exceptional materials for long term thermochemical heat storage...
This molecular dynamics simulations study elucidates how water diffusion in MgCl2·nH2O (n=4 and 6) i...
Mixed salt hydrates recently proved to be promising potential candidates for long-term heat storage....
Magnesium chloride hydrates are characterized as promising energy storage materials in the builtenvi...
In general, phase change materials reduce energy consumption in different structures by increasing t...
Thermochemical heat-storage applications, based on the reversible endo-/exothermic hydration reactio...
Solar energy is one of the important pillar of renewable energy systems. The main challenge in explo...
Salt hydrates have promising potential as heat storage materials by use of their hydration/dehydrati...
The water mobility in single crystals of MgCl2 hydrates has been investigated with molecular dynamic...
Mixed salt hydrates recently proved to be promising potential candidates for long-term heat storage....
MgCl2 hydrates are considered as high-potential candidates for seasonal heat storage materials. Thes...
Pure Magnesium chloride hydrates are exceptional materials for long term thermochemical heat storage...
This molecular dynamics simulations study elucidates how water diffusion in MgCl2·nH2O (n=4 and 6) i...
Mixed salt hydrates recently proved to be promising potential candidates for long-term heat storage....
Magnesium chloride hydrates are characterized as promising energy storage materials in the builtenvi...
In general, phase change materials reduce energy consumption in different structures by increasing t...
Thermochemical heat-storage applications, based on the reversible endo-/exothermic hydration reactio...
Solar energy is one of the important pillar of renewable energy systems. The main challenge in explo...
Salt hydrates have promising potential as heat storage materials by use of their hydration/dehydrati...