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Biomedical Titanium alloy prostheses manufacturing by means of Superplastic and Incremental Forming processes

机译:通过超塑性和增量成型工艺制造生物医学钛合金假体制造

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The present work collects some results of the three-years Research Program “BioForming“, funded by the Italian Ministry of Education (MIUR) and aimed to investigate the possibility of using flexible sheet forming processes, i.e. Super Plastic Forming (SPF) and Single Point Incremental Forming (SPIF), for the manufacturing of patient-oriented titanium prostheses. The prosthetic implants used as case studies were from the skull; in particular, two different Ti alloys and geometries were considered: one to be produced in Ti-Gr23 by SPF and one to be produced in Ti-Gr2 by SPIF. Numerical simulations implementing material behaviours evaluated by characterization tests were conducted in order to design both the manufacturing processes. Subsequently, experimental tests were carried out implementing numerical results in terms of: (i) gas pressure profile able to determine a constant (and optimal) strain rate during the SPF process; (ii) tool path able to avoid rupture during the SPIF process. Post forming characteristics of the prostheses in terms of thickness distributions were measured and compared to data from simulations for validation purposes. A good correlation between numerical and experimental thickness distributions has been obtained; in addition, the possibility of successfully adopting both the SPF and the SPIF processes for the manufacturing of prostheses has been demonstrated.
机译:目前的工作收集了三年的研究计划“Bifoforming”的结果,由意大利教育部(Miur)资助,旨在调查使用柔性片材形成过程的可能性,即超级塑料形成(SPF)和单点增量成型(SPIF),用于制造患者导向的钛假体。用作案例研究的假体植入物来自颅骨;特别地,考虑了两种不同的Ti合金和几何形状:通过SPF和一种通过SPIF在Ti-Gr2中生产的Ti-Gr23中的一种。进行了实现通过表征测试评估的材料行为的数值模拟,以便设计制造过程。随后,执行实验测试,实施数值结果:(i)气体压力分布能够在SPF过程中确定恒定(和最佳)应变率; (ii)能够在SPIF过程中避免破裂的工具路径。测量厚度分布的假体的形成特征,并与模拟用于验证目的的数据进行比较。已经获得了数值和实验厚度分布之间的良好相关性;此外,已经证明了已经证明了已经成功采用SPF和SPIF工艺的假体制造的可能性。

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