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| Content Provider | The American Society of Mechanical Engineers (ASME) Digital Collection |
|---|---|
| Author | Schiaffino, Arturo Chattopadhyay, Ashesh Hossain, Shaikh Tanveer Kumar, Vinod Kotteda, V. M. K. Bronson, Arturo |
| Copyright Year | 2017 |
| Abstract | Liquid metal infiltration, or liquid method infusion, consists of impregnating porous media composed of woven, ceramic particles, or fibers with a molten metal matrix, which fills the pores and occupies the void space within. Understanding the infiltration process is crucial to optimize the properties of the recently formed material and avoid or minimize the formation of fabrication defects. Given the fact that the flow of molten metal differs from organic flows, since molten metal possess a higher interface energy than organic flows, and modifies the wetting dynamics of the molten metal over surfaces, creating a flow driven by capillary and viscous forces. In addition, flow through porous media presents an extraordinary challenge to simulate efficiently, due to the presence of multiple scales far apart participating in the governing dynamics. For this reason, an in-house pore network simulator (EXPNS) was used. EXPNS was designed on a next generation computing framework using Sandia National Lab’s Trilinos and Kokkos library to perform high-resolution computing to generate data for the infiltration model and improve the general understanding of this process. |
| Sponsorship | Fluids Engineering Division |
| File Format | |
| ISBN | 9780791858042 |
| DOI | 10.1115/FEDSM2017-69577 |
| Volume Number | Volume 1A, Symposia: Keynotes; Advances in Numerical Modeling for Turbomachinery Flow Optimization; Fluid Machinery; Industrial and Environmental Applications of Fluid Mechanics; Pumping Machinery |
| Conference Proceedings | ASME 2017 Fluids Engineering Division Summer Meeting |
| Language | English |
| Publisher Date | 2017-07-30 |
| Publisher Place | Waikoloa, Hawaii, USA |
| Access Restriction | Subscribed |
| Subject Keyword | Wetting Dynamics (mechanics) Metals Porous materials Particulate matter Liquid metals High temperature Ceramics Manufacturing Resolution (optics) Flow (dynamics) Fibers |
| Content Type | Text |
| Resource Type | Article |
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