1. 新疆大学机械工程学院,乌鲁木齐,830047
2. 季华实验室,广东,佛山,528200
网络首发:2021-03-10,
纸质出版:2021
移动端阅览
杨蒙蒙 1, 2, 伍言龙 2, 等. 可吸收生物玻璃陶瓷/聚己内酯复合接骨板的制备工艺及力学性能[J]. 西安交通大学学报, 2021,55(3):155-163.
Preparation Process and Mechanical Properties of Absorbable Biological Glass Ceramic/Polycaprolactone Composite Bone Plate[J]. 2021, 55(3): 155-163.
杨蒙蒙 1, 2, 伍言龙 2, 等. 可吸收生物玻璃陶瓷/聚己内酯复合接骨板的制备工艺及力学性能[J]. 西安交通大学学报, 2021,55(3):155-163. DOI: 10.7652/xjtuxb202103018.
Preparation Process and Mechanical Properties of Absorbable Biological Glass Ceramic/Polycaprolactone Composite Bone Plate[J]. 2021, 55(3): 155-163. DOI: 10.7652/xjtuxb202103018.
针对生物陶瓷存在脆性高、韧性差无法满足接骨板所需的力学性能的问题
提出采用光固化陶瓷成形技术结合聚合物渗透法
在多孔陶瓷中渗透聚己内酯
制备出集强度韧性和生物相容性于一体的可吸收陶瓷/聚己内酯复合结构。对不同烧结保温时间下多孔陶瓷的微观孔隙分布进行了研究
探讨了不同渗透时间对可吸收玻璃陶瓷/聚己内酯复合材料微观结构和力学性能的影响
分析了多孔陶瓷在渗透聚己内酯前后和不同渗透时长两种情况下的增强增韧机理
并利用所提出的方法制备玻璃陶瓷/聚己内酯复合接骨板。实验结果表明:当多孔陶瓷微观孔隙较多时
利于后期渗透工艺; 渗透聚己内酯可大大改善复合材料的力学性能
在应力屏蔽和缺陷修复两种机制综合作用下复合材料的抗压强度和抗弯强度显著增加
其韧性也因聚己内酯固有韧性和裂纹桥接机制有所提升。根据该工艺研究
当烧结保温时间为120 min、渗透时间为240 min时
复合材料的力学性能最佳
强度和韧性达到最佳
为可吸收接骨板提供了一种可行性方案。
To solve the problem that high brittleness and poor toughness of bioceramics cannot meet the required mechanical properties of bone plate
a method for fabricating absorbable ceramics/polycaprolactone(PCL)composites with excellent strength
toughness and biocomp-atibility is proposed. The method combines digital light processing(DLP)3D printing technology and polymer infiltration method in which molten PCL was infiltrated into 3D printed porous ceramics to fabricate composite structure. The microscopic pore distribution of porous ceramics at different sintering times was studied and the effects of different infiltration times on the microstructure and mechanical properties of glass ceramic/PCL composites were investigated. The strengthening and toughening mechanisms of porous ceramics before and after permeation with PCL and at different permeation times were analyzed. Glass ceramic/PCL composite bone plate was prepared by the proposed method. The experimental results showed that the porous ceramics with higher porosity is beneficial to the infiltration process. The mechanical properties of the composites can be greatly improved by the infiltration of PCL. The compressive and flexural strength of the composites are significantly increased under the combined action of stress shielding and defect repair mechanisms
and the toughness of the composites is also improved due to the toughness of PCL and the crack bridging mechanism. Based on the experimental results
the mechanical properties of the composite material(strength and toughness)reached the optimum when the sintering holding time was 120 min and the infiltration time was 240 min
which provides a feasible scheme for the bio-absorbable bone plate.
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