Title :
Study of without blankholder drawing for individual titanium implant forming
Author :
You, Jia ; Jiang, Xianfeng ; Wang, Ning ; Shen, Zhipeng ; Ma, Qian ; Peng, Wei
Author_Institution :
Mech. Eng. Inst., Zhejiang Univ. of Technol., Hangzhou, China
Abstract :
Titanium implant is widely utilized in repairing skull defects. The current technique used to produce implants is punch forming which is well developed in manufacturing, however, the traditional technique does have a serial problems in forming titanium implants such as time-consuming, complex process, low success rate. What is more, in the course of drawing the titanium dioxide layer on titanium implant surfaces will be destroyed. The properties of titanium dioxide are decisive for good contact with the surrounding tissues. In order to simplify the forming process of individual titanium mesh, to reduce the working hours and to protect the titanium dioxide layer on titanium implant surfaces, a without blankholder drawing method is brought forward in this paper. For the sake of ensuring the success rate of titanium mesh forming, the finite element method is introduced to simulate the feasibility of stamping system before machining stamping tools, and also the deformation contour of titanium implant is obtained to forecast forming result. And then a rapid prototyping technique is selected to manufacture the forming moulds of titanium implant. Finally, on a basis of finite element simulation results, an individual titanium implant instance is made by the moulds. And then the implant is successfully applied in the skull repair operation. The methods presented in this work guarantees not only the efficiency and success rate of individual titanium implant forming, but also the titanium dioxide layer on titanium implant surfaces. Accordingly, the method has a certain practical application value.
Keywords :
biological tissues; deformation; drawing (mechanical); finite element analysis; forming processes; metal product industries; metal stamping; moulding; prosthetics; rapid prototyping (industrial); titanium alloys; titanium compounds; blankholder drawing; deformation contour; finite element method; manufacturing; rapid prototyping technique; skull defects repair; titanium dioxide layer; titanium implant forming; titanium implant surfaces; titanium mesh forming; Deformable models; Finite element methods; Implants; Machining; Manufacturing processes; Predictive models; Protection; Prototypes; Skull; Titanium; finite element method; rapid prototyping; titanium implant forming; without blankholder drawing;
Conference_Titel :
Mechanic Automation and Control Engineering (MACE), 2010 International Conference on
Conference_Location :
Wuhan
Print_ISBN :
978-1-4244-7737-1
DOI :
10.1109/MACE.2010.5535626