MicroROM: An Efficient and Accurate Reduced Order Method to Solve Many-Query Problems in Micro-Motility
Nicola Giuliani, Martin W. Hess, Antonio DeSimone, Gianluigi Rozza

TL;DR
This paper introduces MicroROM, a combined Boundary Element Method and Reduced Basis approach, to efficiently and accurately solve many-query micro-motility problems, significantly reducing computational time while maintaining reliability.
Contribution
It presents a novel coupling of BEM and RB reduced order modeling for micro-motility, improving efficiency and accuracy over traditional methods.
Findings
Achieved accurate solutions with reduced computational effort.
Validated approach on bacterial and eukaryotic swimmer models.
Demonstrated effectiveness of split and monolithic strategies.
Abstract
In the study of micro-swimmers, both artificial and biological ones, many-query problems arise naturally. Even with the use of advanced high performance computing (HPC), it is not possible to solve this kind of problems in an acceptable amount of time. Various approximations of the Stokes equation have been considered in the past to ease such computational efforts but they introduce non-negligible errors that can easily make the solution of the problem inaccurate and unreliable. Reduced order modeling solves this issue by taking advantage of a proper subdivision between a computationally expensive offline phase and a fast and efficient online stage. This work presents the coupling of Boundary Element Method (BEM) and Reduced Basis (RB) Reduced Order Modeling (ROM) in two models of practical interest, obtaining accurate and reliable solutions to different many-query problems.…
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Taxonomy
TopicsModel Reduction and Neural Networks · Electromagnetic Simulation and Numerical Methods · Advanced MEMS and NEMS Technologies
