多孔HA/PLCL和HA/PLLA夹层复合梁断裂机理及力学性能

IF 2.4
In vitro models Pub Date : 2023-07-13 eCollection Date: 2023-11-01 DOI:10.1007/s44164-023-00053-0
Fatin Hazwani, Aiman Izmin, Mitsugu Todo
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引用次数: 0

摘要

在此之前,我们开发了一种新型多孔羟基磷灰石/聚l-乳酸-co-己内酯(HA/PLCL)复合夹层梁作为骨再生的新型支架材料。本文研究了多孔羟基磷灰石/聚l -乳酸(HA/PLLA)夹层梁的弯曲断裂机制和微损伤,并与之前开发的HA/PLCL夹层梁进行了比较。这两种梁都是用夹层法制作的,其中单孔复合梁被分层在两种多孔聚合物层之间。采用三点弯曲试验对其力学性能进行了评价,并利用场发射扫描电镜(FE-SEM)对其微观组织及损伤机理进行了研究。采用傅里叶变换红外光谱(FT-IR)、x射线衍射(XRD)和差示扫描量热法(DSC)对其晶体结构和热性能进行了分析。微损伤和断裂机制通过逐步形成裂纹来表征。研究发现,HA/PLLA复合夹层梁的力学性能优于HA/PLCL夹层梁,这是由于PLLA聚合物的刚度更高所致。PLCL层显示出巨大的韧性断裂,PLCL条拉长,而PLLA层的断裂面具有相对脆性的断裂模式,仍然可以看到一些聚合物孔隙。在不同起裂位置的两根梁上观察到三个阶段的损伤,表明不同的聚合物材料确实影响了每根梁的断裂行为。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fracture mechanism and mechanical properties of porous HA/PLCL and HA/PLLA sandwich composite beams.

Previously, we have developed a novel porous hydroxyapatite/poly l-lactic-co-caprolactone (HA/PLCL) composite sandwich beam as a new scaffold material for bone regeneration. This work presents the study of bending fracture mechanisms and microdamage of porous hydroxyapatite/poly L-lactic-acid (HA/PLLA) sandwich beam, in comparison to the previous developed HA/PLCL sandwich beam. Both beams were fabricated using the sandwich method in which the single porous composite beams were layered in between two porous polymer layers of their kind. Three-point bending tests were performed to assess their mechanical properties, and their microstructures along with the damage mechanisms were examined using field emission-scanning electron microscope (FE-SEM). Their crystalline structures and thermal properties were analyzed using Fourier transform infrared spectroscopy (FT-IR), X-ray diffraction (XRD) analysis, and differential scanning calorimetry (DSC) measurements. The microdamage and fracture mechanisms were then characterized by stepwise crack formations. It was found that HA/PLLA composite sandwich beam possessed higher mechanical properties compared to HA/PLCL sandwich beam, resulting from higher stiffness of PLLA polymer. PLCL layer showed a vast ductile fracture, with elongated PLCL strips, while the fracture surfaces observed on the PLLA layer have a relatively brittle fracture pattern with some polymeric pores that were still visible. Three stages of damage were observed on both beams with different locations of crack initiation, indicating that different polymer materials do affect the fracture behavior of each beam.

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