Department of Mechanical Engineering and Mechanics, Drexel University, 3141 Chestnut Street, Philadelphia, 19104, PA, USA.
Department of Orthopaedic Surgery, Sidney Kimmel Medical College of Thomas Jefferson University, 1015 Walnut Street, Philadelphia, 19107, PA, USA.
J Mech Behav Biomed Mater. 2022 Feb;126:105029. doi: 10.1016/j.jmbbm.2021.105029. Epub 2021 Dec 22.
The mechanical behavior of cortical bone is influenced by microstructural components such as osteons, Haversian canals, and osteocyte lacunae that arise from biological remodeling processes. This study takes a computational approach to investigate the role of the perilacunar zones formed by the local remodeling processes of lacunar-dwelling osteocytes by utilizing phase-field finite element models based on histological imaging of human bone. The models simulated the microdamage accumulation that occurs in cortical bone under transverse compression in bone without lacunae, with lacunae, and with a perilacunar zone surrounding lacunae in order to investigate the role of these features. The results of the simulations found that while lacunae create stress concentration which initiate further damage, perilacunar regions can delay or prevent the emergence and growth of microcracks.
皮质骨的力学行为受到微观结构成分的影响,如骨单位、哈弗斯管和骨陷窝,这些成分源于生物重塑过程。本研究采用计算方法,利用基于人骨组织学成像的相场有限元模型,研究了由陷窝居住的骨细胞的局部重塑过程形成的骨陷窝周区在皮质骨中的作用。这些模型模拟了在横向压缩下无骨陷窝、有骨陷窝和有骨陷窝周区的皮质骨中微损伤的积累,以研究这些特征的作用。模拟结果发现,虽然骨陷窝会导致产生应力集中从而引发进一步的损伤,但骨陷窝周区可以延缓或阻止微裂纹的出现和生长。