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Synthesis and characterization of 3D-printed functionally graded porous titanium alloy

机译:3D印刷功能梯度多孔钛合金的合成与表征

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摘要

This study aims to 3D print titanium alloy constructs incorporating gradient of porosities, from the fully dense core to the porous outer surface. Gradient porous specimens were prepared using selective laser melting (SLM). Fully dense specimens fabricated by SLM were used as the control group. Characterization of samples was done using X-ray tomography, uniaxial compression testing, and optical and scanning electron microscopes. The biocompatibility of fabricated samples was investigated using human periodontal ligament stem cells via assessment of cell attachment, viability, and proliferation by direct and indirect assays. The data were analyzed using ANOVA and Tukey's post hoc test. Characterization of constructs reveals interconnected gradient porosities and higher contact angle in porous samples. The introduction of porosity leads to a significant decrease in compression strength. However, Young's modulus of the samples with gradient porosity was more similar to the natural bone modulus. The surface microstructure consists of loosely bonded spherical particles. Biocompatibility of the dense and porous samples is appropriate. Although the porosity size led to a reduced cell proliferation rate in the gradient sample, the extract of the gradient sample results in more cell proliferation than the dense sample's extract. The study demonstrates that a biocompatible functionally graded porous titanium structure can be well fabricated by SLM, and this structure leads to a good match of Young's modulus to that of the bone.
机译:该研究旨在将孔隙率的梯度的3D印刷钛合金构造,从完全致密的芯到多孔外表面。使用选择性激光熔融(SLM)制备梯度多孔样本。用SLM制造的完全密集的标本用作对照组。使用X射线断层扫描,单轴压缩测试和光学和扫描电子显微镜进行样品的表征。通过直接和间接测定,使用人牙周韧带干细胞使用人牙周韧带干细胞研究制造样品的生物相容性。使用ANOVA和TUKEY的HOC测试分析数据。构建体的表征揭示了多孔样品中互连的梯度孔隙率和较高的接触角。孔隙率引入导致压缩强度的显着降低。然而,具有梯度孔隙率的杨氏模量与天然骨模量更类似于。表面微结构由松散的粘合的球形颗粒组成。致密和多孔样品的生物相容性是合适的。尽管孔隙率尺寸导致梯度样品中的细胞增殖率降低,但梯度样品的提取物导致比致密样品提取物更多的细胞增殖。该研究表明,生物相容性功能梯度多孔钛结构可以通过SLM良好制造,并且该结构导致杨氏模量与骨骼的良好匹配。

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