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2011 | 70 | 1 |

Tytuł artykułu

Application of rapid prototyping techniques for modelling of anatomical structures in medical training and education

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
Rapid prototyping has become an innovative method of fast and cost-effective production of three-dimensional models for manufacturing. Wide access to advanced medical imaging methods allows application of this technique for medical training purposes. This paper presents the feasibility of rapid prototyping technologies: stereolithography, selective laser sintering, fused deposition modelling, and three-dimensional printing for medical education. Rapid prototyping techniques are a promising method for improvement of anatomical education in medical students but also a valuable source of training tools for medical specialists. (Folia Morphol 2011; 70, 1: 1–4)

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Wydawca

-

Czasopismo

Rocznik

Tom

70

Numer

1

Opis fizyczny

p.1-4,fig.,ref.

Twórcy

autor
  • Laboratory of Biostructure, Human Anatomy Department, Medical University of Lublin, Poland
  • Department od General Surgery, District Specialist Hospital in Lublin, Poland
  • Laboratory of Biostructure, Human Anatomy Department, Medical University of Lublin, Jaczewskiego 4, 20-090 Lublin, Poland
  • Department of Radiology, Medical University of Lublin, Poland
  • Laboratory of Biostructure, Human Anatomy Department, Medical University of Lublin, Poland
autor
  • Department of Radiology, Medical University of Lublin, Poland
  • Laboratory of Biostructure, Human Anatomy Department, Medical University of Lublin, Poland
  • Medical Emergency Department, UIMT Rzeszow, Poland

Bibliografia

  • 1. Bishoyee N (2010) 3-D modeling and rapid prototyping of a cryogenic liquifier. Department of Mechanical Engineering; National Institute of Technology, Rourkela.
  • 2. Chan DC, Frazier KB, Tse LA, Rosen DW (2004) Application of rapid prototyping to operative dentistry curriculum. J Dent Edu, 68: 64–70.
  • 3. Grimm T (2004) User’s guide to rapid prototyping. Society of Manufacturing Engineers, Michigan.
  • 4. Grunert R, Strauss G, Moeckel H, Hofer M, Poessneck A, Fickweiler U, Thalheim M, Schmiedel R, Jannin P, Schulz T, Oeken J, Dietz A, Korb W (2006) ElePhant — an anatomical electronic phantom as simulation-system for oto-rhino-laryngoscopic-surgery. Annual International Conference of the IEEE Engineering in Medicine and Biology Society, 1: 4408–4411.
  • 5. Jacobs S, Grunert R, Mohr FW, Falk V (2008) 3D-Imaging of cardiac structures using 3D heart models for planning in heart surgery: a preliminary study. Interact Cardiovasc Thorac Surg, 7: 6–9.
  • 6. Jirman R, Horák Z, Mazánek J, Reznícek J (2009) Individual replacement of the frontal bone defect: case report. Prague Med Rep, 110: 79–84.
  • 7. Kalejs M, von Segesser LK (2009) Rapid prototyping of compliant human aortic roots for assessment of valved stents. Interact Cardiovasc Thorac Surg, 8: 182–186.
  • 8. Kim MS, Hansgen AR, Wink O, Quaife RA, Carroll JD (2008) Rapid prototyping: a new tool in understanding and treating structural heart disease. Circulation, 117: 2388–2394.
  • 9. Leong CCK, Lim CS (2003) Rapid prototyping. Principles and applications. World Scientific Publishing Co. Ltd., Singapore.
  • 10. Mavili ME, Canter HI, Saglam-Aydinatay B, Kamaci S, Kocadereli I (2007) Use of three-dimensional medical modeling methods for precise planning of orthognathic surgery. J Craniofac Surg, 18: 740–747.
  • 11. Prototype Zone website: http://www.prototypezone.com/prototype/prototyping-history-and-prototype-development-information; accessed July 21, 2010.
  • 12. Shellabear M, Nyrhilä O (2004) DMLS — development, history and state of the art. LANE 2004 conference, Erlangen, Germany.
  • 13. Suzuki M, Ogawa Y, Kawano A, Hagiwara A, Yamaguchi H, Ono H (2004) Rapid prototyping of temporal bone for surgical training and medical education. Acta Otolaryngol, 124: 400–402.
  • 14. Taylor LA, Danelson KA, Gayzik FS, Loftis KL, Stitzel JD (2009) Physical model reproduction from CT scans classified according to gender, ethnicity, and age-biomed 2009. Biomed Sci Instrum, 45: 370–375.
  • 15. Vranicar M, Gregory W, Douglas WI, Di Sessa P, Di Sessa TG (2008) The use of stereolithographic hand-held models for evaluation of congenital anomalies of the great arteries. Stud Health Technol Inform, 132: 538–543.
  • 16. ZCorp website: http://www.zcorp.com/en/Products/3D-Printers/spage.aspx; accessed July 21, 2010.

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Bibliografia

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