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NaCl 造孔剂对 brushite 水泥支架的组成、微观结构和力学性能的影响。

Compositional, microstructural and mechanical effects of NaCl porogens in brushite cement scaffolds.

机构信息

Department of Metallurgical and Materials Engineering, Muğla Sıtkı Koçman University, Muğla, Turkey.

Department of Chemical Engineering, İzmir Institute of Technology, İzmir, Turkey.

出版信息

J Mech Behav Biomed Mater. 2021 Apr;116:104363. doi: 10.1016/j.jmbbm.2021.104363. Epub 2021 Feb 1.

Abstract

Modification of the setting process of brushite cements by varying the concentration of ions that alter calcium phosphate crystallization kinetics, is known to enable control on the monetite conversion extent and the accompanying microporosity. This is useful because monetite serves as a suitable matrix in macroporous scaffolds due to its higher phase stability and finer crystal morphology compared to its hydrous counterpart brushite. In this study the synergistic effect of NaCl and citric acid on the microstructural evolution of brushite cement was demonstrated and microporosity of macroporous monetite-rich cement blocks was minimized by a variable NaCl porogen size distribution approach. Initially, maximum packing ratio of various combinations of NaCl size groups in PEG were determined by their rheological analysis in a range between 57% and 69%. Statistical analysis revealed a positive correlation between the amounts of NaCl particles under 38μm and 212μm and the maximum packing ratio. Further broadening the size distributions of NaCl porogens with fine cement precursors was effective in increasing the solids packing ratio of cement blocks more than the maximum packing ratio for the porogens. This improvement in packing was accompanied by a reduction in microporosity despite the increase in micropore volume with ion induced monetite formation. The detrimental effect of the microporosity introduced to the structure during monetite formation was balanced for some size distributions and not so much for others, thereby resulting in a wide range of porosities and mechanical properties. Thus, the exponential dependence of mechanical properties on porosity and the mechanical properties of monetite-rich macroporous blocks at the theoretical zero-porosity were determined according to Rice's model. Zero-porosity extrapolations were much higher than those predicted for brushite cement, contrary to the common assumption that brushite is mechanically stronger than monetite.

摘要

通过改变改变磷酸钙结晶动力学的离子浓度来修改磷酸氢钙钙水泥的凝固过程,这是众所周知的,可以控制单水磷酸氢钙的转化程度和伴随的微孔率。这是有用的,因为与水合的磷酸氢钙相比,单水磷酸氢钙由于其更高的相稳定性和更细的晶体形态,可用作大孔支架中的合适基质。在这项研究中,证明了 NaCl 和柠檬酸对磷酸氢钙水泥微观结构演变的协同作用,并通过可变的 NaCl 成孔剂尺寸分布方法最小化了大孔富单水磷酸氢钙水泥块的微孔率。最初,通过在 PEG 中对各种 NaCl 尺寸组的流变学分析,确定了它们在 57%至 69%之间的最大堆积比。统计分析表明,小于 38μm 和 212μm 的 NaCl 颗粒的含量与最大堆积比之间存在正相关。进一步拓宽水泥前体的 NaCl 成孔剂的尺寸分布,可以有效地增加水泥块的固体堆积比,超过成孔剂的最大堆积比。尽管离子诱导单水磷酸钙形成导致微孔体积增加,但这种堆积比的提高伴随着微孔率的降低。尽管在单水磷酸钙形成过程中引入结构中的微孔率带来了不利影响,但对于某些尺寸分布,情况并非如此,因此导致了广泛的孔隙率和力学性能。因此,根据 Rice 模型确定了机械性能与孔隙率的指数依赖性以及富单水磷酸钙大孔块的机械性能在理论零孔隙率下的值。零孔隙率外推值远高于磷酸氢钙水泥的预测值,这与普遍认为磷酸氢钙的机械强度高于单水磷酸钙的假设相反。

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