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Direct laser metal sintering as a new approach to fabrication of an isoelastic functionally graded material for manufacture of porous titanium dental implants

机译:直接激光金属烧结作为制造多孔钛牙科植入物的等弹性功能梯度材料的新方法

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Objectives. This work focuses on a titanium alloy implants incorporating a gradient of porosity, from the inner core to the outer surface, obtained by laser sintering of metal powder. Surface appearance, microstructure, composition, mechanical properties and fractography were evaluated. Methods. All the specimens were prepared by a selective laser sintering procedure using a Ti-6Al-4V alloy powder with a particle size of 1-10 μm. The morphological and chemical analyses were performed by SEM and energy dispersive X-ray spectroscopy. The flexure strength was determined by a three-point bend test using a universal testing machine. The surface roughness was investigated using a confocal scanning laser microscope. The surface roughness variation was statistically evaluated by use of a Chi square test. A p value of < 0.05 was considered statistically significant. Results. The original surface microstructure consisted of roughly spherical particles, diameter range 5-50 μm. After exposure to hydrofluoric acid some of these were removed and the microsphere diameter then ranged from 5.1 μm to 26.8 μm. Following an organic acid treatment, particles were replaced by grooves 14.6-152.5 μm in width and 21.4-102.4 μm depth. The metal core consisted of columnar beta grains with alpha and beta laths within the grains. The alloy was composed of 90.08% Ti, 5.67% Al and 4.25% V. The Young's modulus of the inner core material was 104±7.7 GPa; while that of the outer porous material was 77 ± 3.5 GPa. The fracture face showed a dimpled appearance typical of ductile fracture. Significance. In conclusion, laser metal sintering proved to be an efficient means of construction of dental implants with a functionally graded material which is better adapted to the elastic properties of the bone. Such implants should minimize stress shielding effects and improve long-term performance.
机译:目标。这项工作的重点是通过金属粉末的激光烧结获得的,从内芯到外表面并入孔隙率梯度的钛合金植入物。评价了表面外观,微观结构,组成,机械性能和断层扫描。方法。所有样品均使用Ti-6Al-4V合金粉末(粒度为1-10μm)通过选择性激光烧结程序制备。通过SEM和能量色散X射线光谱法进行形态和化学分析。挠曲强度通过使用万能试验机的三点弯曲试验来确定。使用共聚焦扫描激光显微镜研究表面粗糙度。通过使用卡方检验对表面粗糙度变化进行统计学评估。 p值<0.05被认为具有统计学意义。结果。原始的表面微观结构由直径约为5-50μm的大致球形颗粒组成。暴露于氢氟酸后,其中一些被除去,然后微球直径范围为5.1微米至26.8微米。经过有机酸处理后,颗粒被宽度为14.6-152.5μm,深度为21.4-102.4μm的凹槽代替。金属芯由圆柱状的β晶粒组成,晶粒内有α和β板条。该合金由90.08%的Ti,5.67%的Al和4.25%的V组成。内芯材料的杨氏模量为104±7.7 GPa。而外部多孔材料的则为77±3.5 GPa。断裂面表现出典型的韧性断裂的凹坑外观。意义。总而言之,激光金属烧结被证明是一种功能性梯度材料构造牙齿植入物的有效方法,该材料能够更好地适应骨骼的弹性。此类植入物应最大程度地减少应力屏蔽效应并改善长期性能。

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