Biomedical Materials and Implants Group, Fraunhofer-Institute for Mechanics of Materials, Freiburg, Germany.
Heraeus Medical GmbH, Wehrheim, Germany.
J Biomed Mater Res B Appl Biomater. 2009 Nov;91(2):910-917. doi: 10.1002/jbm.b.31474.
The creep deformation of two acrylic bone cements, Palacos R+G and SmartSet GHV, was investigated for different physical aging times ranging from 45 min to 2 (1/2) years. The experiments were carried out in a three-point-bending set-up in 37 degrees C Ringer's solution applying 10 MPa or 25 MPa creep loads. Both bone cements exhibit a significant decrease of their creep compliance with increasing physical aging time. The experimental data were analyzed with a creep law discussed in the context of physical aging by Struik, and a modified Burgers' model which can be used to separate the strain response of the bone cements into an elastic, a visco-elastic and a creep component. The creep behavior of the bone cements could be described essentially with only one parameter of Struik's creep law. The analysis with the modified Burgers' model showed that physical aging influences all model parameters which are directly related to the mobility of the polymer chains. The effect of physical aging should be taken into account particularly if the mechanical performance of bone cements shortly after curing is investigated.
研究了两种丙烯酸骨水泥 Palacos R+G 和 SmartSet GHV 在不同的物理老化时间下的蠕变变形,老化时间从 45 分钟到 2 年半不等。实验在 37°C 的林格氏溶液中进行,采用三点弯曲装置,施加 10 MPa 或 25 MPa 的蠕变载荷。两种骨水泥的蠕变柔量均随物理老化时间的增加而显著降低。实验数据采用 Struik 在物理老化背景下讨论的蠕变定律和可以将骨水泥的应变响应分离为弹性、粘弹性和蠕变分量的改进 Burgers 模型进行分析。骨水泥的蠕变行为可以用 Struik 蠕变定律的一个参数来很好地描述。改进 Burgers 模型的分析表明,物理老化会影响与聚合物链迁移性直接相关的所有模型参数。如果要研究骨水泥在固化后不久的力学性能,那么就必须考虑到物理老化的影响。