Cargando…
Manufacturing Polymer Model of Anatomical Structures with Increased Accuracy Using CAx and AM Systems for Planning Orthopedic Procedures
Currently, medicine uses typical industrial structure techniques, including reverse engineering, data processing, 3D-CAD modeling, 3D printing, and coordinate measurement techniques. Taking this into account, one can notice the applications of procedures used in the aviation or automotive industries...
Autores principales: | , , , , , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
MDPI
2022
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9182597/ https://www.ncbi.nlm.nih.gov/pubmed/35683908 http://dx.doi.org/10.3390/polym14112236 |
_version_ | 1784724073984557056 |
---|---|
author | Turek, Paweł Filip, Damian Przeszłowski, Łukasz Łazorko, Artur Budzik, Grzegorz Snela, Sławomir Oleksy, Mariusz Jabłoński, Jarosław Sęp, Jarosław Bulanda, Katarzyna Wolski, Sławomir Paszkiewicz, Andrzej |
author_facet | Turek, Paweł Filip, Damian Przeszłowski, Łukasz Łazorko, Artur Budzik, Grzegorz Snela, Sławomir Oleksy, Mariusz Jabłoński, Jarosław Sęp, Jarosław Bulanda, Katarzyna Wolski, Sławomir Paszkiewicz, Andrzej |
author_sort | Turek, Paweł |
collection | PubMed |
description | Currently, medicine uses typical industrial structure techniques, including reverse engineering, data processing, 3D-CAD modeling, 3D printing, and coordinate measurement techniques. Taking this into account, one can notice the applications of procedures used in the aviation or automotive industries based on the structure of Industry 4.0 in the planning of operations and the production of medical models with high geometric accuracy. The procedure presented in the publication shortens the processing time of tomographic data and increases the reconstruction accuracy within the hip and knee joints. The procedure allows for the partial removal of metallic artifacts from the diagnostic image. Additionally, numerical models of anatomical structures, implants, and bone cement were developed in more detail by averaging the values of local segmentation thresholds. Before the model manufacturing process, additional tests of the PLA material were conducted in terms of its strength and thermal properties. Their goal was to select the appropriate type of PLA material for manufacturing models of anatomical structures. The numerical models were divided into parts before being manufactured using the Fused Filament Fabrication technique. The use of the modifier made it possible to change the density, type of filling, number of counters, and the type of supporting structure. These treatments allowed us to reduce costs and production time and increase the accuracy of the printout. The accuracy of the manufactured model geometry was verified using the MCA-II measuring arm with the MMDx100 laser head and surface roughness using a 3D Talyscan 150 profilometer. Using the procedure, a decrease in geometric deviations and amplitude parameters of the surface roughness were noticed. The models based on the presented approach allowed for detailed and meticulous treatment planning. |
format | Online Article Text |
id | pubmed-9182597 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2022 |
publisher | MDPI |
record_format | MEDLINE/PubMed |
spelling | pubmed-91825972022-06-10 Manufacturing Polymer Model of Anatomical Structures with Increased Accuracy Using CAx and AM Systems for Planning Orthopedic Procedures Turek, Paweł Filip, Damian Przeszłowski, Łukasz Łazorko, Artur Budzik, Grzegorz Snela, Sławomir Oleksy, Mariusz Jabłoński, Jarosław Sęp, Jarosław Bulanda, Katarzyna Wolski, Sławomir Paszkiewicz, Andrzej Polymers (Basel) Article Currently, medicine uses typical industrial structure techniques, including reverse engineering, data processing, 3D-CAD modeling, 3D printing, and coordinate measurement techniques. Taking this into account, one can notice the applications of procedures used in the aviation or automotive industries based on the structure of Industry 4.0 in the planning of operations and the production of medical models with high geometric accuracy. The procedure presented in the publication shortens the processing time of tomographic data and increases the reconstruction accuracy within the hip and knee joints. The procedure allows for the partial removal of metallic artifacts from the diagnostic image. Additionally, numerical models of anatomical structures, implants, and bone cement were developed in more detail by averaging the values of local segmentation thresholds. Before the model manufacturing process, additional tests of the PLA material were conducted in terms of its strength and thermal properties. Their goal was to select the appropriate type of PLA material for manufacturing models of anatomical structures. The numerical models were divided into parts before being manufactured using the Fused Filament Fabrication technique. The use of the modifier made it possible to change the density, type of filling, number of counters, and the type of supporting structure. These treatments allowed us to reduce costs and production time and increase the accuracy of the printout. The accuracy of the manufactured model geometry was verified using the MCA-II measuring arm with the MMDx100 laser head and surface roughness using a 3D Talyscan 150 profilometer. Using the procedure, a decrease in geometric deviations and amplitude parameters of the surface roughness were noticed. The models based on the presented approach allowed for detailed and meticulous treatment planning. MDPI 2022-05-31 /pmc/articles/PMC9182597/ /pubmed/35683908 http://dx.doi.org/10.3390/polym14112236 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 Turek, Paweł Filip, Damian Przeszłowski, Łukasz Łazorko, Artur Budzik, Grzegorz Snela, Sławomir Oleksy, Mariusz Jabłoński, Jarosław Sęp, Jarosław Bulanda, Katarzyna Wolski, Sławomir Paszkiewicz, Andrzej Manufacturing Polymer Model of Anatomical Structures with Increased Accuracy Using CAx and AM Systems for Planning Orthopedic Procedures |
title | Manufacturing Polymer Model of Anatomical Structures with Increased Accuracy Using CAx and AM Systems for Planning Orthopedic Procedures |
title_full | Manufacturing Polymer Model of Anatomical Structures with Increased Accuracy Using CAx and AM Systems for Planning Orthopedic Procedures |
title_fullStr | Manufacturing Polymer Model of Anatomical Structures with Increased Accuracy Using CAx and AM Systems for Planning Orthopedic Procedures |
title_full_unstemmed | Manufacturing Polymer Model of Anatomical Structures with Increased Accuracy Using CAx and AM Systems for Planning Orthopedic Procedures |
title_short | Manufacturing Polymer Model of Anatomical Structures with Increased Accuracy Using CAx and AM Systems for Planning Orthopedic Procedures |
title_sort | manufacturing polymer model of anatomical structures with increased accuracy using cax and am systems for planning orthopedic procedures |
topic | Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9182597/ https://www.ncbi.nlm.nih.gov/pubmed/35683908 http://dx.doi.org/10.3390/polym14112236 |
work_keys_str_mv | AT turekpaweł manufacturingpolymermodelofanatomicalstructureswithincreasedaccuracyusingcaxandamsystemsforplanningorthopedicprocedures AT filipdamian manufacturingpolymermodelofanatomicalstructureswithincreasedaccuracyusingcaxandamsystemsforplanningorthopedicprocedures AT przeszłowskiłukasz manufacturingpolymermodelofanatomicalstructureswithincreasedaccuracyusingcaxandamsystemsforplanningorthopedicprocedures AT łazorkoartur manufacturingpolymermodelofanatomicalstructureswithincreasedaccuracyusingcaxandamsystemsforplanningorthopedicprocedures AT budzikgrzegorz manufacturingpolymermodelofanatomicalstructureswithincreasedaccuracyusingcaxandamsystemsforplanningorthopedicprocedures AT snelasławomir manufacturingpolymermodelofanatomicalstructureswithincreasedaccuracyusingcaxandamsystemsforplanningorthopedicprocedures AT oleksymariusz manufacturingpolymermodelofanatomicalstructureswithincreasedaccuracyusingcaxandamsystemsforplanningorthopedicprocedures AT jabłonskijarosław manufacturingpolymermodelofanatomicalstructureswithincreasedaccuracyusingcaxandamsystemsforplanningorthopedicprocedures AT sepjarosław manufacturingpolymermodelofanatomicalstructureswithincreasedaccuracyusingcaxandamsystemsforplanningorthopedicprocedures AT bulandakatarzyna manufacturingpolymermodelofanatomicalstructureswithincreasedaccuracyusingcaxandamsystemsforplanningorthopedicprocedures AT wolskisławomir manufacturingpolymermodelofanatomicalstructureswithincreasedaccuracyusingcaxandamsystemsforplanningorthopedicprocedures AT paszkiewiczandrzej manufacturingpolymermodelofanatomicalstructureswithincreasedaccuracyusingcaxandamsystemsforplanningorthopedicprocedures |