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Numerical Solution of the Electric Field and Dielectrophoresis Force of Electrostatic Traveling Wave System

Electrostatic traveling wave (ETW) methods have shown promising performance in dust mitigation of solar panels, particle transport and separation in in situ space resource utilization, cell manipulation, and separation in biology. The ETW field distribution is required to analyze the forces applied...

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Autores principales: Yu, Yue, Luo, Yao, Cilliers, Jan, Hadler, Kathryn, Starr, Stanley, Wang, Yanghua
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10384890/
https://www.ncbi.nlm.nih.gov/pubmed/37512658
http://dx.doi.org/10.3390/mi14071347
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author Yu, Yue
Luo, Yao
Cilliers, Jan
Hadler, Kathryn
Starr, Stanley
Wang, Yanghua
author_facet Yu, Yue
Luo, Yao
Cilliers, Jan
Hadler, Kathryn
Starr, Stanley
Wang, Yanghua
author_sort Yu, Yue
collection PubMed
description Electrostatic traveling wave (ETW) methods have shown promising performance in dust mitigation of solar panels, particle transport and separation in in situ space resource utilization, cell manipulation, and separation in biology. The ETW field distribution is required to analyze the forces applied to particles and to evaluate ETW design parameters. This study presents the numerical results of the ETW field distribution generated by a parallel electrode array using both the charge simulation method (CSM) and the boundary element method (BEM). A low accumulated error of the CSM is achieved by properly arranging the positions and numbers of contour points and fictitious charges. The BEM can avoid the inconvenience of the charge position required in the CSM. The numerical results show extremely close agreement between the CSM and BEM. For simplification, the method of images is introduced in the implementation of the CSM and BEM. Moreover, analytical formulas are obtained for the integral of Green’s function along boundary elements. For further validation, the results are cross-checked using the finite element method (FEM). It is found that discrepancies occur at the ends of the electrode array. Finally, analyses are provided of the electric field and dielectrophoretic (DEP) components. Emphasis is given to the regions close to the electrode surfaces. These results provide guidance for the fabrication of ETW systems for various applications.
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spelling pubmed-103848902023-07-30 Numerical Solution of the Electric Field and Dielectrophoresis Force of Electrostatic Traveling Wave System Yu, Yue Luo, Yao Cilliers, Jan Hadler, Kathryn Starr, Stanley Wang, Yanghua Micromachines (Basel) Article Electrostatic traveling wave (ETW) methods have shown promising performance in dust mitigation of solar panels, particle transport and separation in in situ space resource utilization, cell manipulation, and separation in biology. The ETW field distribution is required to analyze the forces applied to particles and to evaluate ETW design parameters. This study presents the numerical results of the ETW field distribution generated by a parallel electrode array using both the charge simulation method (CSM) and the boundary element method (BEM). A low accumulated error of the CSM is achieved by properly arranging the positions and numbers of contour points and fictitious charges. The BEM can avoid the inconvenience of the charge position required in the CSM. The numerical results show extremely close agreement between the CSM and BEM. For simplification, the method of images is introduced in the implementation of the CSM and BEM. Moreover, analytical formulas are obtained for the integral of Green’s function along boundary elements. For further validation, the results are cross-checked using the finite element method (FEM). It is found that discrepancies occur at the ends of the electrode array. Finally, analyses are provided of the electric field and dielectrophoretic (DEP) components. Emphasis is given to the regions close to the electrode surfaces. These results provide guidance for the fabrication of ETW systems for various applications. MDPI 2023-06-30 /pmc/articles/PMC10384890/ /pubmed/37512658 http://dx.doi.org/10.3390/mi14071347 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Yu, Yue
Luo, Yao
Cilliers, Jan
Hadler, Kathryn
Starr, Stanley
Wang, Yanghua
Numerical Solution of the Electric Field and Dielectrophoresis Force of Electrostatic Traveling Wave System
title Numerical Solution of the Electric Field and Dielectrophoresis Force of Electrostatic Traveling Wave System
title_full Numerical Solution of the Electric Field and Dielectrophoresis Force of Electrostatic Traveling Wave System
title_fullStr Numerical Solution of the Electric Field and Dielectrophoresis Force of Electrostatic Traveling Wave System
title_full_unstemmed Numerical Solution of the Electric Field and Dielectrophoresis Force of Electrostatic Traveling Wave System
title_short Numerical Solution of the Electric Field and Dielectrophoresis Force of Electrostatic Traveling Wave System
title_sort numerical solution of the electric field and dielectrophoresis force of electrostatic traveling wave system
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10384890/
https://www.ncbi.nlm.nih.gov/pubmed/37512658
http://dx.doi.org/10.3390/mi14071347
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