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Porous structures fabrication by continuous and pulsed laser metal deposition for biomedical applications; modelling and experimental investigation

机译:用于生物医学应用的连续和脉冲激光金属沉积制备多孔结构;建模与实验研究

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摘要

The use of porous surface structures is gaining popularity in biomedical implant manufacture due to its ability to promote increased osseointegration and cell proliferation. Laser direct metal deposition (LDMD) is a rapid manufacturing technique capable of producing such a structure. In this work LDMD with a diode laser in continuous mode and with a CO_2 laser in pulsed modes are used to produce multi-layer porous structures. Gas-atomized Ti-6Al-4V and 316L stainless steel powders are used as the deposition material. The porous structures are compared with respect to their internal geometry, pore size, and part density using a range of techniques including micro-tomography. Results show that the two methods produce radically different internal structures, but in both cases a range of part densities can be produced by varying process parameters such as laser power and powder mass flow rate. Prudent selection of these parameters allows the interconnected pores that are considered most suitable for promoting osseointegration to be obtained. Analytical models of the processes are also developed by using Wolfram Mathematica software to solve interacting, transient heat, temperature and mass flow models. Measured and modelled results are compared and show good agreement.
机译:多孔表面结构的使用由于其促进增加的骨整合和细胞增殖的能力而在生物医学植入物制造中得到普及。激光直接金属沉积(LDMD)是一种能够制造这种结构的快速制造技术。在这项工作中,具有连续模式的二极管激光器和具有脉冲模式的CO_2激光器的LDMD被用来生产多层多孔结构。气相雾化的Ti-6Al-4V和316L不锈钢粉末用作沉积材料。使用包括微断层摄影在内的一系列技术,对多孔结构的内部几何形状,孔径和零件密度进行了比较。结果表明,两种方法产生的内部结构完全不同,但是在两种情况下,通过改变工艺参数(例如激光功率和粉末质量流量)都可以产生一定范围的零件密度。这些参数的谨慎选择允许获得被认为最适合促进骨整合的互连孔。还使用Wolfram Mathematica软件开发了过程的分析模型,以解决相互作用的,瞬态热,温度和质量流量模型。测量和建模的结果进行了比较,并显示出良好的一致性。

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