C6.4 - Simulation of Damping Effects in Irregularly Perforated Mems Devices by Physical Compact Modeling
Bibliographic Data
| ID | 5955653 |
|---|---|
| Authors | F Michael (Technical University of Munich, corresponding author), Gabriele Schrag (0000-0002-5449-7679, Technical University of Munich) |
| Year | 2023 |
| Pages | 187-188 |
| Publication date | 2023-01-01 |
| Peer Reviewed | Yes |
| Open Access | No |
| Type | ARTICLE |
| Venue | Lectures (BOOK_SERIES) |
| Journal identifiers | ISSN: 2116-5289 • E-ISSN: 2116-5289 |
| Publisher | OpenEdition Journals (PUBLISHER) |
| DOI | 10.5162/smsi2023/c6.4 |
| OpenAlex | W4382042551 |
| Language | EN |
Accurate modeling of damping effects in high-end MEMS devices is a major challenge due to low feature sizes and complex device geometries.By applying a finite network approach with specially derived compact models, we are able to simulate structures with varying perforation patterns and account for the impact of the transition regions between differently perforated areas.Simulations of exemplary test structures with different perforation sizes and patterns prove the feasibility of our approach, which perspectively improves the accuracy of damping estimation beyond state of the art
Acoustics · Electronic engineering · Microelectromechanical systems · Optoelectronics · Perforation · Physics · Simulation · Structural engineering · Acoustic Wave Resonator Technologies · Advanced MEMS and NEMS Technologies · Computer Science · Engineering · Materials Science · Mechanical and Optical Resonators · Mechanical Engineering · Modeling and Simulation
| Citation velocity | historical |
|---|---|
| Highly cited | No |