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Development of an Electromagnetic Micromanipulator Levitation System for Metal Additive Manufacturing Applications

Magnetism and magnetic levitation has found significant interest within the field of micromanipulation of objects. Additive manufacturing (AM), which is the computer-controlled process for creating 3D objects through the deposition of materials, has also been relevant within the academic environment...

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Autores principales: Kumar, Parichit, Malik, Saksham, Toyserkani, Ehsan, Khamesee, Mir Behrad
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9025447/
https://www.ncbi.nlm.nih.gov/pubmed/35457890
http://dx.doi.org/10.3390/mi13040585
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author Kumar, Parichit
Malik, Saksham
Toyserkani, Ehsan
Khamesee, Mir Behrad
author_facet Kumar, Parichit
Malik, Saksham
Toyserkani, Ehsan
Khamesee, Mir Behrad
author_sort Kumar, Parichit
collection PubMed
description Magnetism and magnetic levitation has found significant interest within the field of micromanipulation of objects. Additive manufacturing (AM), which is the computer-controlled process for creating 3D objects through the deposition of materials, has also been relevant within the academic environment. Despite the research conducted individually within the two fields, there has been minimal overlapping research. The non-contact nature of magnetic micromanipulator levitation systems makes it a prime candidate within AM environments. The feasibility of integrating magnetic micromanipulator levitation system, which includes two concentric coils embedded within a high permeability material and carrying currents in opposite directions, for additive manufacturing applications is presented in this article. The working principle, the optimization and relevant design decisions pertaining to the micromanipulator levitation system are discussed. The optimized dimensions of the system allow for 920 turns in the inner coil and 800 turns in the outer coil resulting in a [Formula: see text]: [Formula: see text] ratio of 1.15. Use of principles of free levitation, which is production of levitation and restoration forces with the coils, to levitate non-magnetic conductive materials with compatibility and applications within the AM environment are discussed. The Magnetomotive Force (MMF) ratio of the coils are adjusted by incorporation of an resistor in parallel to the outer coil to facilitate sufficient levitation forces in the axial axis while producing satisfactory restoration forces in the lateral axes resulting in the levitation of an aluminum disc with a levitation height of 4.5 mm. An additional payload of up to 15.2 g (59% of mass of levitated disc) was added to a levitated aluminum disk of 26 g showing the system capability coping with payload variations, which is crucial in AM process to gradually deploy masses. The final envisioned system is expected to have positional stability within the tolerance range of a few μm. The system performance is verified through the use of simulations (ANSYS Maxwell) and experimental analyses. A novel method of using the ratio of conductivity ([Formula: see text]) of the material to density ([Formula: see text]) of the material to determine the compatibility of the levitation ability of non-magnetic materials with magnetic levitation application is also formulated. The key advantage of this method is that it does not rely on experimental analyses to determine the levitation ability of materials.
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spelling pubmed-90254472022-04-23 Development of an Electromagnetic Micromanipulator Levitation System for Metal Additive Manufacturing Applications Kumar, Parichit Malik, Saksham Toyserkani, Ehsan Khamesee, Mir Behrad Micromachines (Basel) Article Magnetism and magnetic levitation has found significant interest within the field of micromanipulation of objects. Additive manufacturing (AM), which is the computer-controlled process for creating 3D objects through the deposition of materials, has also been relevant within the academic environment. Despite the research conducted individually within the two fields, there has been minimal overlapping research. The non-contact nature of magnetic micromanipulator levitation systems makes it a prime candidate within AM environments. The feasibility of integrating magnetic micromanipulator levitation system, which includes two concentric coils embedded within a high permeability material and carrying currents in opposite directions, for additive manufacturing applications is presented in this article. The working principle, the optimization and relevant design decisions pertaining to the micromanipulator levitation system are discussed. The optimized dimensions of the system allow for 920 turns in the inner coil and 800 turns in the outer coil resulting in a [Formula: see text]: [Formula: see text] ratio of 1.15. Use of principles of free levitation, which is production of levitation and restoration forces with the coils, to levitate non-magnetic conductive materials with compatibility and applications within the AM environment are discussed. The Magnetomotive Force (MMF) ratio of the coils are adjusted by incorporation of an resistor in parallel to the outer coil to facilitate sufficient levitation forces in the axial axis while producing satisfactory restoration forces in the lateral axes resulting in the levitation of an aluminum disc with a levitation height of 4.5 mm. An additional payload of up to 15.2 g (59% of mass of levitated disc) was added to a levitated aluminum disk of 26 g showing the system capability coping with payload variations, which is crucial in AM process to gradually deploy masses. The final envisioned system is expected to have positional stability within the tolerance range of a few μm. The system performance is verified through the use of simulations (ANSYS Maxwell) and experimental analyses. A novel method of using the ratio of conductivity ([Formula: see text]) of the material to density ([Formula: see text]) of the material to determine the compatibility of the levitation ability of non-magnetic materials with magnetic levitation application is also formulated. The key advantage of this method is that it does not rely on experimental analyses to determine the levitation ability of materials. MDPI 2022-04-09 /pmc/articles/PMC9025447/ /pubmed/35457890 http://dx.doi.org/10.3390/mi13040585 Text en © 2022 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
Kumar, Parichit
Malik, Saksham
Toyserkani, Ehsan
Khamesee, Mir Behrad
Development of an Electromagnetic Micromanipulator Levitation System for Metal Additive Manufacturing Applications
title Development of an Electromagnetic Micromanipulator Levitation System for Metal Additive Manufacturing Applications
title_full Development of an Electromagnetic Micromanipulator Levitation System for Metal Additive Manufacturing Applications
title_fullStr Development of an Electromagnetic Micromanipulator Levitation System for Metal Additive Manufacturing Applications
title_full_unstemmed Development of an Electromagnetic Micromanipulator Levitation System for Metal Additive Manufacturing Applications
title_short Development of an Electromagnetic Micromanipulator Levitation System for Metal Additive Manufacturing Applications
title_sort development of an electromagnetic micromanipulator levitation system for metal additive manufacturing applications
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9025447/
https://www.ncbi.nlm.nih.gov/pubmed/35457890
http://dx.doi.org/10.3390/mi13040585
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