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Modeling of microencapsulated polymer shell solidification
Author(s) -
Travis D. Boone,
L.Y.G. Cheung,
Donald S. Nelson,
David S. Soane,
Gerald Wilemski,
Robert Cook
Publication year - 1995
Publication title -
osti oai (u.s. department of energy office of scientific and technical information)
Language(s) - English
Resource type - Reports
DOI - 10.2172/113974
Subject(s) - shell (structure) , envelope (radar) , biological system , phase (matter) , materials science , mechanics , mechanical engineering , chemistry , composite material , physics , engineering , aerospace engineering , radar , organic chemistry , biology
A finite element transport model has been developed and implemented to complement experimental efforts to improve the quality of ICF target shells produced via controlled-mass microencapsulation. The model provides an efficient means to explore the effect of processing variables on the dynamics of shell dimensions, concentricity, and phase behavior. Comparisons with experiments showed that the model successfully predicts the evolution of wall thinning and core/wall density differences. The model was used to efficiently explore and identify initial wall compositions and processing temperatures which resulted in concentricity improvements from 65 to 99%. The evolution of trace amounts of water entering into the shell wall was also tracked in the simulations. Comparisons with phase envelope estimations from modified UNIFAP calculations suggest that the water content trajectory approaches the two-phase region where vacuole formation via microphase separation may occur

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