Natali A, Pavan P, Carniel E, Dorow C
Centre of Mechanics of Biological Materials, University of Padova, Padova, Italy.
Connect Tissue Res. 2004;45(4-5):222-30. doi: 10.1080/03008200490885742.
A viscoelastic constitutive model for the periodontal ligament (PDL) capable of accounting for large strains, anisotropy, and inelastic time-dependent effects was developed. Anisotropy characteristics are determined by the composite nature of the tissue and, in particular, by the distribution of collagen fibres. Time-dependent viscous phenomena are due to microstructural modifications during loading, such as fluid fluxes moving through the solid matrix and the internal rearrangement of fibers and constitutive adaptation. The viscoelastic model presented here was implemented in a general purpose finite element code. In vitro experimental tests were carried out on the PDL specimens of adult pigs to obtain stress-relaxation and cyclic stress-strain curves. The comparison of experimental and numerical results revealed good correspondence and confirmed the capability of the formulation assumed to properly interpret the viscoelastic behavior of the PDL.
建立了一种能够考虑大应变、各向异性和非弹性时间相关效应的牙周韧带(PDL)粘弹性本构模型。各向异性特征由组织的复合性质决定,特别是由胶原纤维的分布决定。与时间相关的粘性现象是由于加载过程中的微观结构变化引起的,例如流体在固体基质中的流动以及纤维的内部重排和本构适应。这里提出的粘弹性模型在通用有限元代码中实现。对成年猪的PDL标本进行了体外实验测试,以获得应力松弛和循环应力-应变曲线。实验结果与数值结果的比较显示出良好的一致性,并证实了所采用的公式能够正确解释PDL的粘弹性行为。