A Three-Dimensional Ankle Kinetostatic Model to Simulate Loaded and Unloaded Joint Motion

被引:15
作者
Forlani, Margherita [1 ]
Sancisi, Nicola [1 ]
Parenti-Castelli, Vincenzo [1 ]
机构
[1] Univ Bologna, Interdept Ctr Ind Res HST ICIR, DIN Dept Ind Engn Hlth Sci & Technol, I-40136 Bologna, Italy
来源
JOURNAL OF BIOMECHANICAL ENGINEERING-TRANSACTIONS OF THE ASME | 2015年 / 137卷 / 06期
关键词
PASSIVE MOTION; COLLATERAL LIGAMENTS; COMPUTED-TOMOGRAPHY; FIBER RECRUITMENT; ANTERIOR DRAWER; SUBTALAR JOINT; IN-VIVO; KNEE; COMPLEX; KINEMATICS;
D O I
10.1115/1.4029978
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
A kinetostatic model able to replicate both the natural unloaded motion of the tibiotalar (or ankle) joint and the joint behavior under external loads is presented. The model is developed as the second step of a sequential procedure, which allows the definition of a kinetostatic model as a generalization of a kinematic model of the joint defined at the first step. Specifically, this kinematic model taken as the starting point of the definition procedure is a parallel spatial mechanism which replicates the ankle unloaded motion. It features two rigid bodies (representing the tibia-fibula and the talus-calcaneus complexes) interconnected by five rigid binary links, that mimic three articular contacts and two nearly isometric fibers (IFs) of the tibiocalcaneal ligament (TiCaL) and calcaneofibular ligament (CaFiL). In the kinetostatic model, the five links are considered as compliant; moreover, further elastic structures are added to represent all the main ankle passive structures of the joint. Thanks to this definition procedure, the kinetostatic model still replicates the ankle unloaded motion with the same accuracy as the kinematic model. In addition, the model can replicate the behavior of the joint when external loads are applied. Finally, the structures that guide these motions are consistent with the anatomical evidence. The parameters of the model are identified for two specimens from both subject-specific and published data. Loads are then applied to the model in order to simulate two common clinical tests. The model-predicted ankle motion shows good agreement with results from the literature.
引用
收藏
页数:12
相关论文
共 37 条
  • [21] Anatomical kinematic constraints: consequences on musculo-tendon forces and joint reactions
    Moissenet, Florent
    Cheze, Laurence
    Dumas, Raphael
    [J]. MULTIBODY SYSTEM DYNAMICS, 2012, 28 (1-2) : 125 - 141
  • [22] Mommersteeg T. J. A., 1995, J BIOMECH, V28, P745
  • [23] Netter FH, 1989, Atlas of Human Anatomy: Pelvis and Perineum
  • [24] ANATOMICAL BASIS OF VARIABILITY IN INJURIES OF THE MEDIAL MALLEOLUS AND THE DELTOID LIGAMENT .1. ANATOMICAL STUDIES
    PANKOVICH, AM
    SHIVARAM, MS
    [J]. ACTA ORTHOPAEDICA SCANDINAVICA, 1979, 50 (02): : 217 - 223
  • [25] Parenti-Castelli V., 2013, 21st Century Kinematics, P49
  • [26] Primal Pictures, 2003, PRIM 3D INT SER
  • [27] One-degree-of-freedom spherical model for the passive motion of the human ankle joint
    Sancisi, Nicola
    Baldisserri, Benedetta
    Parenti-Castelli, Vincenzo
    Belvedere, Claudio
    Leardini, Alberto
    [J]. MEDICAL & BIOLOGICAL ENGINEERING & COMPUTING, 2014, 52 (04) : 363 - 373
  • [28] A sequentially-defined stiffness model of the knee
    Sancisi, Nicola
    Parenti-Castelli, Vincenzo
    [J]. MECHANISM AND MACHINE THEORY, 2011, 46 (12) : 1920 - 1928
  • [29] A 1-Dof parallel spherical wrist for the modelling of the knee passive motion
    Sancisi, Nicola
    Parenti-Castelli, Vincenzo
    [J]. MECHANISM AND MACHINE THEORY, 2010, 45 (04) : 658 - 665
  • [30] Muscle, ligament, and joint-contact forces at the knee during walking
    Shelburne, KB
    Torry, MR
    Pandy, MG
    [J]. MEDICINE AND SCIENCE IN SPORTS AND EXERCISE, 2005, 37 (11) : 1948 - 1956