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Cell structure and mechanical properties of microcellular PLA foams prepared via autoclave constrained foaming

机译:通过高压釜约束发泡制备微孔PLA泡沫的细胞结构和机械性能

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摘要

Microcellular polylactic acid (PLA) foams with various cell size and cell morphologies were prepared using supercritical carbon dioxide (sc-CO2) solid-state foaming to investigate the relationship between the cell structure and mechanical properties. Constrained foaming was used and a wide range of cell structures with a constant porosity of similar to 75% by tuning saturation pressure (8-24 MPa) was developed. Experiments varying the saturation pressure while holding other variables' constant show that the mean cell size and the mean cell wall thickness decreased, while the cell density and the open porosity increased with increase of pressure. Tensile modulus of PLA foams decreased with increasing the saturation pressure, but the specific tensile modulus of PLA foams was still 15-80% higher than that of solid PLA. Tensile strength and elongation at break first increased with increasing saturation pressure up to 16 MPa and then decreased with further increasing saturation pressure (20 MPa and 24 MPa) at which opened-cell structure produced. Compressive modulus, compressive strength, and compressive yield stress also followed the same variation trend. The results indicated that not only cell size plays an important role in properties of PLA foams but also cell morphology can influence these properties significantly.
机译:采用超临界二氧化碳(sc-CO2)固态发泡法制备了具有不同孔径和孔形态的微孔聚乳酸(PLA)泡沫,研究了孔结构与力学性能之间的关系。通过调节饱和压力(8-24 MPa),使用了约束发泡,并开发了多种孔隙率接近75%的孔结构。在保持其他变量不变的情况下改变饱和压力的实验表明,随着压力的增加,平均孔尺寸和平均孔壁厚度减小,而孔密度和开孔率增加。PLA泡沫的拉伸模量随着饱和压力的增加而降低,但PLA泡沫的比拉伸模量仍比固体PLA高15-80%。拉伸强度和断裂伸长率首先随着饱和压力的增加而增加,达到16MPa,然后随着饱和压力(20MPa和24MPa)的进一步增加而降低,在饱和压力下产生开孔结构。压缩模量、压缩强度和压缩屈服应力也遵循相同的变化趋势。结果表明,泡孔尺寸对聚乳酸泡沫塑料的性能有重要影响,泡孔形态对其性能也有重要影响。

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