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Status on pre-surgical deformation apparatus for fracture fixation plates

Wybrane pełne teksty z tego czasopisma
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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Purpose: This paper reviews the apparatus used for deformation of bone fracture fixation plates during orthopaedic surgeries including surgical irons, pliers and bending press tools. This paper extends the review to various machineries in non-medical industries and adopts their suitability to clinics-related applications and also covers the evolution of orthopaedic bone plates. This review confirms that none of the studied machineries can be implemented for the deformation of bone fracture fixation plates during orthopaedic surgeries. In addition, this paper also presents the novel apparatus that are designed from scratch for this specific purpose. Several conceptual designs have been proposed and evaluated recently. It has been found that Computer Numerical Control (CNC) systems are not the golden solution to this problem and one needs to attempt to design the robotic arm system. A new design of robotic arm that can be used for facilitating orthopaedic surgeries is being completed.
Rocznik
Strony
53--60
Opis fizyczny
Bibliogr. 24 poz.
Twórcy
autor
  • School of Chemistry, Physics and Mechanical Engineering,Science and Engineering Faculty, Queensland University of Technology (QUT), GPO Box 2434, Brisbane QLD 4001, Australia
  • School of Chemistry, Physics and Mechanical Engineering,Science and Engineering Faculty, Queensland University of Technology (QUT), GPO Box 2434, Brisbane QLD 4001, Australia
autor
  • School of Chemistry, Physics and Mechanical Engineering,Science and Engineering Faculty, Queensland University of Technology (QUT), GPO Box 2434, Brisbane QLD 4001, Australia
autor
  • School of Chemistry, Physics and Mechanical Engineering,Science and Engineering Faculty, Queensland University of Technology (QUT), GPO Box 2434, Brisbane QLD 4001, Australia
Bibliografia
  • [1] B. Schmutz, M.E. Wullschleger, H. Kim, H. Noser,M.A. Schütz, Fit assessment of anatomic plates for the distal medial tibia, Journal of orthopaedic trauma 22/4 (2008) 258-263.
  • [2] T.W. Lau, F. Leung, C.F. Chan, S.P. Chow, Wound, Complication of minimally invasive plate osteosynthesis in distal tibia fractures, International Orthopaedics 32/5 (2008) 697-703.
  • [3] M. Ahmad, R. Nanda, A.S. Bajwa, J. Candal-Couto, S. Green, A.C. Hui, Biomechanical testing of the locking compression plate: When does the distance between bone and implant significantly reduce construct stability?, Injury 38/3 (2007) 358-364.
  • [4] H. Fouad, Effects of the bone-plate material and the presence of a gap between the fractured bone and plate on the predicted stresses at the fractured bone, Medical Engineering & Physics 32/7 2010 783-789.
  • [5] K.S. Goyal, A.S. Skalak, R.E. Marcus, H.A. Vallier, D.R. Cooperman, Analysis of Anatomic Periarticular Tibial Plate Fit on Normal Adults, Clinical orthopaedics and related research 461 (2007) 245.
  • [6 ] B. Schmutz, M.E. Wullschleger, H. Noser, M. Barry, J. Meek, M.A. Schütz, Fit optimisation of a distal medial tibia plate, Computer Methods in Biomechanics and Biomedical Engineering 14/4 (2011) 5.
  • [7] G. Robert, G. Randi, Plate application, 2006-cited 2013;Available from: http://cal.vet.upenn.edu/projects/orthopod/csfr/terms/plateapplication.htm.
  • [8] Forging Industry Association (FLA), Definition of Springback Glassory of forging terms 2013 -cited 2013; Available from: https://www.forging.org/glossaryforging-terms.
  • [9] J. Malekani, B. Schmutz, Y.T. Gu, M. Schuetz, P.K.D.V. Yarlagadda, Study on torsional limitations of orthopedic bone plates from mechanical point of view, Proceedingd of the 4th International Conference on Cumputational Methods (ICCM2012), Gold Coast - Australia, 2012.
  • [10] E. Shaw, Wrench, U.S.P, Google Patents Office Editor, 1891.
  • [11] Veterinary Instrumentation Limited, Veterinary Instrumentation, Veterinary Instrumentation Limited: Sheffield, 2013.
  • [12] W.G. Watrous, Orthopedic bone plate bending irons, U.S.P.,Office Editor Google Patents, 1996.
  • [13] A. Green, H.L. Duthie, H.L. Young, TJ. Peterst, Stress in surgeons. British Journal of Surgery 77/10 (1990) 1154-1158.
  • [14] E. Czyżewska, K. Kiczka, A. Czarnecki, P. Pokinko, The surgeon's mental load during decision making at various stages of operations, European Journal of Applied Physiology and Occupational Physiology 51/3(1983)441-446.
  • [15] R.J. Huebner, S.P. Horst, D.G. Jensen, Bone plate vise, Google Patents, 2000.
  • [16] E.F. Barrick, Orthopaedic implant shaper, U.S.P. Office Editor Google Patents, 2003.
  • [17] J.L. Orbay, J.E. Castaneda, J.A. Kortenbach, Bone fracture fixation plate shaping system, U.S.P., Office Editor Google Patents, 2010.
  • [18] J.L. Orbay, J.E. Castaneda, J.A. Kortenbach, R. Sixto, Method of bone plate shaping, U.S.P., Office Editor Google Patents, 2010.
  • [19] J.L.Orbay, T.H. Norman, W.G. Quevedo, Formable Bone Plate, Clamping Apparatus, Osteotomy System And Method For Reconstructing A Bone, U.S.P., Office Editor Google Patents, 2009.
  • [20] A.T. Raines, B.G. Beckendorf, L.R. Thornhill, Locking Plate Benders, Google Patents, 2009.
  • [21] J.C. Hall, C. Ellis, J. Hamdorf, Surgeons and cognitive processes, British Journal of Surgery 90/1 (2003) 10-16.
  • [22] S.T. Newman, A. Nassehi, X.W. Xu, R.S.U. Rosso Jr, L. Wang, Y. Yusof, L. Ali, R. Liu, L.Y. Zheng, S. Kumar, P. Vichare, V. Dhokia, Strategic advantages of interoperability for global manufacturing using CNC technology, Robotics and Computer-Integrated Manufacturing 24/6 (2008) 699-708.
  • [23] R.M. Satava, Advanced Technologies and the Future of Medicine and Surgery, Yonsei Medicine Journal 49/6 (2008) 873-878.
  • [24] R.M. Satava, Emerging Technologies for Surgery in the 21st Century, Archives of Surgery 134/11 (1999) 1197-1202.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-111ff0ea-ce6e-4c78-a695-70853c2aecae
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