电子束熔化增材制造颈椎间架的损耗评估

F. Cucinotta, R. Mineo, M. Raffaele, Fabio Salmeri
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引用次数: 0

摘要

利用增材制造技术制造的点阵结构越来越多地应用于多个应用领域。特别是网状钛合金体,由于其生物相容性和重量轻的特点,在生物力学中用作融合装置。虽然这些结构已被广泛研究,但目前还不可能轻易预测它们的行为。事实上,由于晶格结构的自由度很高,通常需要进行大量的实验活动,以预测复杂部件的力学行为。本研究提出了一种基于类似颈椎笼的实验测试和有限元模拟的方法来预测颈椎笼内的跳动。采用电子束熔化法制备了Ti-6Al-4V ELI笼。实验测试是按照适当的ASTM标准进行的。数值模拟结果与实验结果吻合较好。该方法有助于识别最关键的问题,并在不进行第二次测试的情况下验证新笼,从而节省了成本和时间。
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Assessment of the Run-Out of an Intervertebral Cervical Cage Fabricated by Additive Manufacturing Using Electron Beam Melting
Lattice structures made by means of Additive Manufacturing are more and more used in several fields of application. In particular, reticular Titanium alloy bodies are used in biomechanics as fusion devices, due to their biocompatibility and lightweight characteristics. Although these structures have been extensively investigated, it is currently not possible to predict their behavior easily. Indeed, due to the high number of degrees of freedom of the lattice structures, it is usually required to conduct extensive experimental campaigns in order to anticipate the mechanical behavior of complex components. The present study proposes a method to predict the run-out in an intervertebral cervical cage based on experimental tests conducted on a similar cage and using Finite Element simulations. The cages were made of Ti-6Al-4V ELI by means of Electron Beam Melting. The experimental tests were carried out in accordance with the appropriate ASTM standards. The numerical simulations were consistent with the experimental results and showed a very good agreement. This methodology helped to identify the most critical issues and to verify a new cage without a second test campaign, which allows both cost and time savings.
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