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Methods of reconstructing complex multi-structural anatomical objects with RP techniques

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
This article presents reconstruction methods applied to a (geometrically and physically) complex structural object with the use of RP and RT techniques. The methods are innovative due to their hybrid - multi-model and multi-material - approach to reconstruction, as well as the application of multiple technologies. An experimental analysis was conducted to verify the feasibility of rapid prototyping (RP) techniques in the reconstruction of complex internal structures using materials of diverse properties. Some RP techniques offer the possibility of discriminating between diverse objects through the use of different colours. Such models are well-suited for diagnostic purposes, for better visualisation of complex clinical problems, pathological alterations, etc. Nevertheless, they fail to fully reflect physical and mechanical properties of objects, which renders them useful in experimental analysis only to a limited extent. Their basic drawback is that they merely reflect geometrical features of the examined object. The methods discussed in the present article enable modelling multi-object structures in a single process based on the PolyJet Matrix technology and materials of different physical properties by means of a hybrid method. The article also describes the process of modelling complex anatomical structures of soft tissues and bones using models of the maxilla and the mandible as examples. The study is based on data acquired through standard computed tomography (CT). In addition, the article addresses selected aspects of CT acquisition, generation of numerical models composed of several anatomical structures (objects) and fabricating physical multi-object models.
Rocznik
Strony
315--323
Opis fizyczny
Bibliogr. 28 poz., fot., rys.
Twórcy
autor
  • Department of Mechanical Engineering, Faculty of Mechanical Engineering and Aeronautics, Rzeszow University of Technology, 8 Powstańców Warszawy Ave., 35‒959 Rzeszów
  • Department of Mechanical Engineering, Faculty of Mechanical Engineering and Aeronautics, Rzeszow University of Technology, 8 Powstańców Warszawy Ave., 35‒959 Rzeszów
Bibliografia
  • [1] P. D. Parchi, V. Ferrari, N. Piolanti, L. Andreani, S. Condino, G. Evangelisti and M. Lisanti, “Computed Tomography Prototyping and Virtual Procedure Simulation in Difficult Cases of Hip Replacement Surgery”, Surg Technol Int. 23, 228-234 (2013).
  • [2] D. White, K. L. Chelule and B. B. Seedhom, “Accuracy of MRI vs CT imaging with particular reference to patient specific templates for total knee replacement surgery”, Int J Med Robot 4 (3), 224-231 (2012).
  • [3] B. Sanghera, S. Naique, Y. Papaharilaou and A. Amis, “Preliminary study of rapid prototype medical models”, Rapid Prototyping Journal 7 (5), 275-284 (2001).
  • [4] M. Salmi, J. Tuomi, K. S. Paloheimo, R. Björkstrand, M. Paloheimo, J. Salo, R. Kontio, K. Mesimäki and A. Mäkitie, “Patient- specific reconstruction with 3D modeling and DMLS additive manufacturing”, Rapid Prototyping Journal 18 (3), 209-214 (2012).
  • [5] M. E. Hoque, “Advanced applications of rapid prototyping technology in modern engineering”, www.intechopen.com (2015).
  • [6] C. Faur, N. Crainic, C. Sticlaru and C. Oancea, “Rapid prototyping technique in the preoperative planning for total hip arthroplasty with custom femoral components”, Wien Klin Wochenschr. 125 (5-6), 144-149 (2013).
  • [7] A. Mäkitie, K.S. Paloheimo, R. Björkstrand, M. Salmi, R. Kontio, J. Salo, Y. Yan, M. Paloheimo and J. Tuomi, “Medical applications of rapid prototyping three-dimensional bodies for planning and implementation of treatment and for tissue replacement”, Duodecim 126 (2), 143-151 (2010).
  • [8] S. Miechowicz, A. Ciszewski, M. Janiszewski, J. Jamka, M. Libura and P. Konieczny, “Methods of rapid prototyping in preoperative planning in musculoskeletal reconstructive surgery”, Chir. Narządów Ruchu Ortop. 76 (2), 63-68 (2011).
  • [9] M. Salmi, J. Tuomi, R. Sirkkanen, T. Ingman and A. Mäkitie, “Rapid Tooling Method for Soft Customized Removable Oral Appliances”, Open Dent Journal 6, 85-89 (2012).
  • [10] M. Fantini, F. De Crescenzio, L. Ciocca and F. Persiani, “Additive manufacturing to assist prosthetically guided bone regeneration of atrophic maxillary arches”, Rapid Prototyping Journal 21 (6), 705-715 (2015).
  • [11] M. Pawlikowski, K. Skalski and M. Haraburda, “Process of hip joint prosthesis design including bone remodeling phenomenon”, Computers and Structures 81 Nos 8/11, 887-893 (2003).
  • [12] A. Mróz, K. Skalski and W. Walczyk, “New lumbar disc endoprosthesis applied to the patient’s anatomic features”, Acta of Bioengineering and Biomechanics 17 (2), 25-34 (2013).
  • [13] J. Domanski, K. Skalski, R. Grygoruk and A. Mróz, “Rapid prototyping in the intervertebral implant design process”, Rapid Prototyping Journal, 21 (6), 735-746 (2015).
  • [14] A. Mäkitie, J. Korpela, L. Elomaa, M. Reivonen, A. Kokkari, M. Malin, H. Korhonen, X. Wang, J. Salo, E. Sihvo, M. Salmi, J. Partanen, K. S. Paloheimo, J. Tuomi, T. Närhi and J. Seppälä, “Novel additive manufactured scaffolds for tissue engineered trachea research”, Acta Oto-Laryngologica 133 (4), 412-417 (2013).
  • [15] J. Słowiński, “Procedure of generating the individually matched bone scaffolds”, Acta of Bioengineering and Biomechanics, 13 (3), 15-21 (2011).
  • [16] J.D. Curtis, S.D. Hanna, E.A. Patterson and M. Taroni, “On the Use of Stereolitography for the Manufacture of Photoelastic Models”, Society for Experimental Mechanics, 43 (2), 23-28 (2003).
  • [17] D. E. Karalekas and A. Agelopoulos, “On the use of stereolithography built photoelastic models for stress analysis investigations”, Materials & Design, 27 (2), 100-106 (2006).
  • [18] L. Fan, Q.F. Huang, F.Q. Zhang and Y.P. Xia, “A new method of fabricating photoelastic model by rapid prototyping”, Shanghai Kou Qiang Yi Xue. 20 (5), 470-473, (2011).
  • [19] T. Wohlers, (ed.)., “Wohlers Report 2014 - 3D Printing and Additive Manufacturing State of the Industry. Annual Worldwide Progress Report”, http://wohlersassociates.com. (2014).
  • [20] E. Huotilainen, M. Paloheimo, M. Salmi, K.S. Paloheimo, R. Björkstrand, J. Tuomi, A. Markkola and A. Mäkitie, “Imaging requirements for medical applications of additive manufacturing”, Acta Radiologica 55 (1), 78-85 (2014).
  • [21] T. Kudasik, S. Miechowicz, R. Chrzan and A. Urbanik, “3D reconstruction of complex surfaces of syndesmoses cranii based on the spiral CT and CBCT data”, Springer- Verlag, International Journal of Computer Assisted Radiology and Surgery, 6, 265-266, (2011).
  • [22] http://www.ablesw.com/3d-doctor/ (2015).
  • [23] http://www.stratasys.com (2015).
  • [24] H. Kopecki, Problemy analizy stanów naprężenia ustrojów w świetle badań eksperymentalnych metodami mechaniki modelowej, Zeszyty Naukowe Politechniki Rzeszowskiej, nr 78, Mechanika, z. 26, Rzeszów, 1992.
  • [25] M. Kopkowicz, Metody doświadczalne badań konstrukcji, Oficyna Wyd. Politechniki Rzeszowskiej, Rzeszów, 2003.
  • [26] S. Miechowicz, T. Markowski, T. Kudasik and O. Markowska, “Application of Rapid Protyping Resins for Photoelastic Testing”, DEMI 2011 - International Coference on accomplishments in Electrical and Mechanical Engineering and Information 2011, 247-252 (2011).
  • [27] M. Salmi, K.S. Paloheimo, J. Tuomi, J. Wolff and A. Mäkitie, “Accuracy of medical models made by additive manufacturing (rapid manufacturing)”, Journal of Cranio-Maxillofacial Surgery 41 (7), 603-609 (2013).
  • [28] E.Atzeni, L. Iuliano, P. Minetola and M. Salmi, “Redesign and cost estimation of rapid manufactured plastic parts”, Rapid Prototyping Journal 16 (5), 308-317 (2010).
Uwagi
PL
Opracowanie ze środków MNiSW w ramach umowy 812/P-DUN/2016 na działalność upowszechniającą naukę.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-d832c556-46df-4ca1-b1f2-cc9b42edeede
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