An Alternative Multi-Physics-Based Methodology for Strongly Coupled Electro-Magneto-Mechanical Problems

Author:

Reato Federico Maria1ORCID,Ricci Claudio2,Misfatto Jan2,Calzaferri Matteo3,Cinquemani Simone1ORCID

Affiliation:

1. Mechanical Engineering Department, Politecnico di Milano Via Giuseppe La Masa, 1, 20156 Milano, Italy

2. Microhard Srl, Iseo Serrature Spa, Via S. Girolamo, 13, 25055 Pisogne, Italy

3. Iseo Serrature Spa, Via S. Girolamo, 13, 25055 Pisogne, Italy

Abstract

The analysis of complex systems tends to be approached through a separation and a simplification of the main macro phenomena and, thus, addressed through dedicated techniques, tools, and algorithms. A smart and interesting possibility, instead, is represented by the so-called model-based design analysis, which allows one to interface phenomena coming from interactions of different physical natures. This paper aims to propose a multi-physics Matlab/Simulink®-based architecture that allows one to integrate general and strongly non-linear coupling phenomena, taking efforts from two novel implemented bi-directional co-simulation routines based on Spice® and ESRF Radia® engines. Emphasis is dedicated to the discussion and description of the co-simulation algorithms and processes characteristic of these routines, which allow the analog electronic and the magneto dynamic domain’s integration under a single simulation environment. To highlight the reliability of the multi-domain architecture and to validate the reported co-simulation results, a comparison with the experimental measures obtained on an innovative MEMS electromagnetic actuator are proposed.

Publisher

MDPI AG

Subject

Computational Mathematics,Computational Theory and Mathematics,Numerical Analysis,Theoretical Computer Science

Reference20 articles.

1. Hybrid co-simulation: It’s about time;Cremona;Softw. Syst. Model.,2019

2. Co-Simulation: A Survey;Gomes;ACM Comput. Surv.,2019

3. Computationally Efficient Coupling of Multibody Dynamics and Hydraulic Actuators in Simulating Hydraulic Machinery;Jaiswal;IEEE/ASME Trans. Mechatron.,2022

4. Kaltenbacher, M. (2015). Numerical Simulation of Mechatronic Sensors and Actuators: Finite Elements for Computational Multiphysics, Springer.

5. Co-Simulation Platform for Modeling and Evaluating Connected and Automated Vehicles and Human Behavior in Mixed Traffic;Zhao;SAE Int. J. Connect. Autom. Veh.,2022

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