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首页> 外文期刊>Journal of Materials Research >Bioactive glass-ceramic scaffolds by additive manufacturing and sinter-crystallization of fine glass powders
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Bioactive glass-ceramic scaffolds by additive manufacturing and sinter-crystallization of fine glass powders

机译:通过精细玻璃粉的增材制造和烧结结晶的生物活性玻璃陶瓷支架

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摘要

Wollastonite (CaSiO3)-diopside (CaMgSi2O6) glass-ceramic scaffolds have been successfully fabricated using two different additive manufacturing techniques: powder-based 3D printing (3DP) and digital light processing (DLP), coupled with the sinter-crystallization of glass powders with two different compositions. The adopted manufacturing process depended on the balance between viscous flow sintering and crystallization of the glass particles, in turn influenced by the powder size and the sensitivity of CaO-MgO-SiO2 glasses to surface nucleation. 3DP used coarser glass powders and was more appropriate for low temperature firing (800-900 degrees C), leading to samples with limited crystallization. On the contrary, DLP used finer glass powders, leading to highly crystallized glass-ceramic samples. Despite the differences in manufacturing technology and crystallization, all samples featured very good strength-to-density ratios, which benefit their use for bone tissue engineering applications. The bioactivity of 3D-printed glass-ceramics after immersion in simulated body fluid and the similarities, in terms of ionic releases and hydroxyapatite formation with already validated bioactive glass-ceramics, were preliminarily assessed.
机译:硅灰石(CaSiO3)-透辉石(CaMgSi2O6)玻璃陶瓷支架使用两种不同的增材制造技术成功制造:基于粉末的3D打印(3DP)和数字光处理(DLP),以及玻璃粉末的烧结结晶。两种不同的成分。所采用的制造工艺取决于粘性流烧结与玻璃颗粒结晶之间的平衡,进而受粉末尺寸和CaO-MgO-SiO2玻璃对表面成核的敏感性的影响。 3DP使用了较粗糙的玻璃粉末,更适合于低温烧结(800-900摄氏度),导致样品结晶受限。相反,DLP使用了更细的玻璃粉末,从而导致了高度结晶的玻璃陶瓷样品。尽管制造技术和结晶方法有所不同,但所有样品均具有非常好的强度密度比,这有利于其在骨组织工程应用中的使用。初步评估了3D打印的玻璃陶瓷在浸入模拟体液后的生物活性,以及​​与已验证的生物活性玻璃陶瓷在离子释放和羟基磷灰石形成方面的相似性。

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