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A new coating method named emulsion phase-inversion coating for preparing microcapsules containing hydrogel beads was reported in our previous work.
The concepts from chemical processes used to manufacture membrane coatings are adopted here to develop a phase inversion polymer coating binds to clay-rich interburden but remains permeable to gas and water flow on coal layers.
Open image in new window Fig. 1 Schematic representations of phase inversion polymer coating concept (scale bar: 10 µm).
We report a phase inversion polymer coating as a novel concept with potential to prevent clay swelling and fines generation in coal seam gas, or other petroleum, wellbores.
In this study, we introduce a surface-selective phase inversion polymer coating as a new approach to mitigate clay swelling in open-hole CSG wells.
However, stable colloidal microparticle system (no precipitation observed) could be obtained when the weight ratio of alginate/chitosan microparticles was greater than 2, which might be explained by that the rapid charge inversion and coating process of microparticles (from +27 mv to -27.8 mv) leading to the stable system formed.
In this work, a tubular ceramic-supported solid oxide fuel cell (SOFC) was successfully fabricated by a low cost and simple process involving phase-inversion, brush coating and co-sintering.
We went on to design and generate inversions in various regions of the genome, tagging the inversion with a mouse coat color gene.
During the coating procedure, the inversion of the zeta potential was observed by the Malvern Instrument.
The coating is a polymer deposited by a phase inversion process mediated by water.
The rapid charge inversion of BSA loaded chitosan microparticles (from +27 mv to -27.8 mv) was observed during the coating procedure which indicated the presence of alginate layer on the chitosan microparticles surfaces.
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