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In our work, we represented in a novel way the crust as the dry surface of the tablet and the wet core as the wetted area inside the porous matrix.
However, in the studied cases the temperature of the wet core temperature does not exceed the liquid saturation temperature and therefore no boiling of liquid within the particle wet core is observed.
At the same time, the present model predicts pressure build-up and temperature rising within the particle wet core.
The drying behaviour of one single granule, a porous particle, can be described using the continuum approach, the pore network modelling method and the shrinkage of the diameter of the wet core approach.
During this stage, one can no longer describe the droplet as a liquid system containing solids, having to regard it as a wet particle with a dry crust and a wet core.
The experiments were performed both on water wet and neutral wet core plugs at laboratory temperature using NaCl brine and dodecane in one set of experiments and dodecane and a solution of brine and Rhodococcus sp 094 bacteria in another set of experiments.
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Oil wet cores are obtained by means of aging process.
To show this fact, two series of experiments are done on water wet and oil wet cores.
The importance of the initial wettability was also noticed, as intermediate wet cores responded better than water-wet cores.
δC values of the CO2 efflux from the wet cores decreased with incubation time (linear regression, p < 0.05) whereas δC from dry cores and the separated A-horizons did not show a clear temporal trend.
Also, the combined method shows larger effect in the oil-wet core when compared to the water-wet core.
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com