Finite element analysis of bone remodelling with piezoelectric effects using an open-source framework

被引:11
作者
Bansod, Yogesh Deepak [1 ]
Kebbach, Maeruan [2 ,3 ]
Kluess, Daniel [2 ,3 ]
Bader, Rainer [2 ,3 ,4 ]
van Rienen, Ursula [1 ,3 ,4 ]
机构
[1] Univ Rostock, Inst Gen Elect Engn, D-18051 Rostock, Germany
[2] Univ Med Rostock, Dept Orthopaed, D-18057 Rostock, Germany
[3] Univ Rostock, Dept Life Light & Matter, D-18051 Rostock, Germany
[4] Univ Rostock, Dept Ageing Individuals & Soc, D-18051 Rostock, Germany
关键词
Bone remodelling; Piezoelectricity; Electrical stimulation; Open-source; Finite element modelling; Hounsfield units (HU); TRABECULAR BONE; MECHANICAL-PROPERTIES; COMPUTATIONAL SIMULATION; STREAMING POTENTIALS; DENSITY; MODEL; DESIGN; BEHAVIOR; CONVERGENCE; ADAPTATION;
D O I
10.1007/s10237-021-01439-3
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Bone tissue exhibits piezoelectric properties and thus is capable of transforming mechanical stress into electrical potential. Piezoelectricity has been shown to play a vital role in bone adaptation and remodelling processes. Therefore, to better understand the interplay between mechanical and electrical stimulation during these processes, strain-adaptive bone remodelling models without and with considering the piezoelectric effect were simulated using the Python-based open-source software framework. To discretise numerical attributes, the finite element method (FEM) was used for the spatial variables and an explicit Euler scheme for the temporal derivatives. The predicted bone apparent density distributions were qualitatively and quantitatively evaluated against the radiographic scan of a human proximal femur and the bone apparent density calculated using a bone mineral density (BMD) calibration phantom, respectively. Additionally, the effect of the initial bone density on the resulting predicted density distribution was investigated globally and locally. The simulation results showed that the electrically stimulated bone surface enhanced bone deposition and these are in good agreement with previous findings from the literature. Moreover, mechanical stimuli due to daily physical activities could be supported by therapeutic electrical stimulation to reduce bone loss in case of physical impairment or osteoporosis. The bone remodelling algorithm implemented using an open-source software framework facilitates easy accessibility and reproducibility of finite element analysis made.
引用
收藏
页码:1147 / 1166
页数:20
相关论文
共 118 条
  • [71] Computer tomographic analysis of organ motion caused by respiration and intraoperative pneumoperitoneum in a porcine model for navigated minimally invasive esophagectomy
    Nickel, Felix
    Kenngott, Hannes G.
    Neuhaus, Jochen
    Andrews, Nathanael
    Garrow, Carly
    Kast, Johannes
    Sommer, Christof M.
    Gehrig, Tobias
    Gutt, Carsten N.
    Meinzer, Hans-Peter
    Mueller-Stich, Beat P.
    [J]. SURGICAL ENDOSCOPY AND OTHER INTERVENTIONAL TECHNIQUES, 2018, 32 (10): : 4216 - 4227
  • [72] Longitudinal evaluation of periodontitis and tooth loss among older adults
    Nilsson, Helena
    Berglund, Johan Sanmartin
    Renvert, Stefan
    [J]. JOURNAL OF CLINICAL PERIODONTOLOGY, 2019, 46 (10) : 1041 - 1049
  • [73] Role of initial density distribution in simulations of bone remodeling around dental implants
    Nutu, Emil
    [J]. ACTA OF BIOENGINEERING AND BIOMECHANICS, 2018, 20 (04) : 23 - 31
  • [74] STREAMING POTENTIALS IN CHEMICALLY MODIFIED BONE
    OTTER, M
    GOHEEN, S
    WILLIAMS, WS
    [J]. JOURNAL OF ORTHOPAEDIC RESEARCH, 1988, 6 (03) : 346 - 359
  • [75] A poroelastic bone model for internal remodeling
    Papathanasopoulou, VA
    Fotiadis, DI
    Foutsitzi, G
    Massalas, CV
    [J]. INTERNATIONAL JOURNAL OF ENGINEERING SCIENCE, 2002, 40 (05) : 511 - 530
  • [76] Comparison of isotropic and orthotropic material property assignments on femoral finite element models under two loading conditions
    Peng, L
    Bai, J
    Zeng, XL
    Zhou, YX
    [J]. MEDICAL ENGINEERING & PHYSICS, 2006, 28 (03) : 227 - 233
  • [77] Perez M., 2007, Validation of Bone Remodelling Models Applied to Different Bone Types Using Mimics
  • [78] Pérez MA, 2010, COMPUT METHOD BIOMEC, V13, P71, DOI [10.1080/10255842.2010.493728, 10.1080/10255840903045029]
  • [79] Petrovic M., 2019, 5 INT C EUR GER MED, V10, pS17
  • [80] Computational simulation of internal bone remodeling
    Pettermann, HE
    Reiter, TJ
    Rammerstorfer, FG
    [J]. ARCHIVES OF COMPUTATIONAL METHODS IN ENGINEERING, 1997, 4 (04) : 295 - 323