Modelling aspects of laser cladding of bioactive glass coatings on ultrafine-grained titanium substrates

Szymon Bajda, M. Krzyżanowski
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引用次数: 1

Abstract

Titanium alloys, due to their exceptional mechanical properties and biocompatibility, are commonly used to produce medical implants nowadays. However, the presence of such elements as aluminium and vanadium can be harmful to human health. One of the possible solutions could be replacing the titanium alloys with ultrafine-grained commercially pure titanium (cpTi). The yield and also the ultimate strength of cpTi can exceed 1000 MPa. One of the most promising methods in manufacturing medical implants with improved biological fixation is laser cladding in which bioactive glass coatings are imposed on metallic substrates. The aim of this work is development of a 3D numerical model of the above mentioned additive manufacturing process. The obtained model is able to predict the stress-strain and temperature distributions during the processing. A sequentially coupled finite element (FE) model of laser cladding has been developed by applying element birth and death technique to calculate the transient temperature fields used in the stress analysis. The concentrated volumetric heat source from the laser beam moving along the metal surface has been represented by the Gaussian distribution in the radial and exponential decay in the depth direction. The developed FE based numerical model is capable to support the optimal design of such advanced multi-layered structural materials using the laser cladding technique.
超细晶钛基板上生物活性玻璃涂层激光熔覆的建模方面
钛合金由于其优异的机械性能和生物相容性,目前被广泛用于制造医疗植入物。然而,铝和钒等元素的存在可能对人体健康有害。其中一个可能的解决方案是用超细晶商业纯钛(cpTi)代替钛合金。cpTi的屈服强度和极限强度均可超过1000mpa。在制造具有改良生物固定的医疗植入物中最有前途的方法之一是激光包覆,其中在金属基板上施加生物活性玻璃涂层。这项工作的目的是上述增材制造过程的三维数值模型的发展。该模型能够预测加工过程中的应力应变和温度分布。采用单元生灭技术,建立了激光熔覆层的顺序耦合有限元模型,计算了应力分析中的瞬态温度场。激光束沿金属表面运动产生的集中体积热源在径向呈高斯分布,在深度方向呈指数衰减。所建立的基于有限元的数值模型能够支持激光熔覆技术对这种先进的多层结构材料进行优化设计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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