Department of Mechanical Engineering, University of California, Berkeley, United States.
Department of Mechanical Engineering, University of California, Berkeley, United States.
J Mech Behav Biomed Mater. 2018 Jul;83:9-19. doi: 10.1016/j.jmbbm.2018.03.029. Epub 2018 Apr 3.
This is the first study to simultaneously measure material properties in tension, compression, nanoindentation as well as microstructure (crystallinity and lamellar level properties) across a wide variety of clinically relevant ultra-high molecular weight polyethylene (UHMWPE) formulations. Methodologies for the measurement of UHMWPE mechanical properties-namely elastic modulus, yield stress, yield strain, ultimate strength, energetic toughness, Poisson's ratio, hardness and constitutive variables-are evaluated. Engineering stress-strain behavior is compared to true stress-strain behavior for UHMWPE across a range of cross-linking and antioxidant chemistry. The tensile mechanical properties and constitutive behavior of UHMWPE are affected by resin type, antioxidant source and degree of cross-linking. Poisson's ratio is shown to be affected by resin type, antioxidant addition, and cross-linking dosage. Relationships between bulk mechanical properties from different measurement methodologies as well as microstructure are analyzed across all material formulations using Spearman rank correlation coefficients. Modulus and yield strength correlate in both tension and compression. Similarly, tensile and compressive properties including modulus and yield strength correlate strongly with crystallinity (X) and lamellar thickness (D). This work has broad application and provides a basis for interpreting the mechanical behavior of UHMWPE used in orthopedic implants.
这是第一项同时测量各种临床相关超高分子量聚乙烯(UHMWPE)配方的拉伸、压缩、纳米压痕以及微观结构(结晶度和层状特性)的材料性能的研究。评估了测量 UHMWPE 机械性能的方法,即弹性模量、屈服应力、屈服应变、极限强度、能量韧性、泊松比、硬度和本构变量。比较了 UHMWPE 在交联和抗氧化化学物质范围内的工程应力-应变行为与真实应力-应变行为。UHMWPE 的拉伸力学性能和本构行为受树脂类型、抗氧化剂来源和交联度的影响。泊松比受树脂类型、抗氧化剂添加和交联剂量的影响。使用 Spearman 等级相关系数分析了所有材料配方中不同测量方法的整体力学性能与微观结构之间的关系。模量和屈服强度在拉伸和压缩中都相关。同样,拉伸和压缩性能包括模量和屈服强度与结晶度(X)和层状厚度(D)密切相关。这项工作具有广泛的应用,并为解释骨科植入物中使用的 UHMWPE 的力学行为提供了基础。