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FREEZE CASTING OF POROUS BIOMATERIAL SCAFFOLDS FOR BONE TISSUE ENGINEERING

机译:用于骨组织工程的多孔生物材料支架的冷冻铸造

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This paper firstly reviews the current trends in fabrication techniques to produce porous inorganic biomaterial constructs for hard tissue augmentation. Of these, simple and cost effective freeze casting method has been employed over the last few years to process mainly bioceramics but has often met with difficulty in controlling variously oriented pore structures. The present work also compares two novel freeze casting methods using camphene and a mixture of water and glycerol in fabricating excellent networked 3-D porous structures of Bioglass and hydroxyapatite. It was possible to control the development of dendritic pore microstructure by the control and optimization of the process parameters such as. mould temperature (0 to -196°C), temperature of freezing vehicle, glycerol concentration (5-40wt%) and temperature gradient driving the solidification and/or sublimation. DTA-TGA, XRD, density, and SEM analysis of bioscaffolds, air sintered up to 1100°C, showed monotonic correlations between porosity, pore size, orientation and solid loading (10-70%). A maximum porosity of 90% was achieved for structures with micro and macropores of 2-120μm, a clinically viable range that is amenable for bone in-growth and revascularization.
机译:本文首先回顾了生产多孔无机生物材料构建体的现有趋势,用于硬组织增强。其中,在过去几年中,在过去几年中雇用了简单且成本效益的冻结铸造方法,主要是生物陶瓷,但经常遇到控制各种导向的孔隙结构。本作者还使用樟烯和水和甘油的混合物比较了两种新的冷冻铸造方法,在制造出优异的生物胶和羟基磷灰石的优异网络3-D孔结构中。通过控制和优化如此,可以控制树枝状孔隙微观结构的发展。模具温度(0至-196℃),冷冻载体的温度,甘油浓度(5-40wt%)和温度梯度驱动凝固和/或升华。 DTA-TGA,XRD,密度和SEM分析Bioscaffolds,空气烧结高达1100°C,在孔隙率,孔径,取向和固体载量之间显示单调相关性(10-70%)。对于具有2-120μm的微型和大孔的结构,实现了90%的最大孔隙率,临床可行的范围,可用于骨骼生长和血运重建。

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