Finite Element Analysis of Fracture Fixation

被引:99
作者
Lewis, Gregory S. [1 ]
Mischler, Dominic [2 ]
Wee, Hwabok [1 ]
Reid, J. Spence [1 ]
Varga, Peter [2 ]
机构
[1] Penn State Univ, Dept Orthopaed & Rehabil, Hershey, PA 17033 USA
[2] AO Res Inst Davos, Davos, Switzerland
关键词
Finite element analysis; Fracture fixation; Biomechanics; Plate; Nail; Screw; PROXIMAL HUMERAL FRACTURES; LOCKING PLATE FIXATION; PEDICLE SCREW FIXATION; DISTAL FEMUR FRACTURES; MECHANICAL-PROPERTIES; INTERNAL-FIXATION; BONE-DENSITY; MICRO-CT; NONOPERATIVE TREATMENT; INTRAMEDULLARY NAIL;
D O I
10.1007/s11914-021-00690-y
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Purpose of Review Fracture fixation aims to provide stability and promote healing, but remains challenging in unstable and osteoporotic fractures with increased risk of construct failure and nonunion. The first part of this article reviews the clinical motivation behind finite element analysis of fracture fixation, its strengths and weaknesses, how models are developed and validated, and how outputs are typically interpreted. The second part reviews recent modeling studies of the femur and proximal humerus, areas with particular relevance to fragility fractures. Recent Findings There is some consensus in the literature around how certain modeling aspects are pragmatically formulated, including bone and implant geometries, meshing, material properties, interactions, and loads and boundary conditions. Studies most often focus on predicted implant stress, bone strain surrounding screws, or interfragmentary displacements. However, most models are not rigorously validated. With refined modeling methods, improved validation efforts, and large-scale systematic analyses, finite element analysis is poised to advance the understanding of fracture fixation failure, enable optimization of implant designs, and improve surgical guidance.
引用
收藏
页码:403 / 416
页数:14
相关论文
共 145 条
[1]  
Abdel MP, 2016, BONE JOINT J, V98B, P461, DOI [10.1302/0301-620X.98B4, 10.1302/0301-620X.98B4.37201]
[2]   How a pilot hole size affects osteosynthesis at the screw-bone interface under immediate loading [J].
Affes, F. ;
Ketata, H. ;
Kharrat, M. ;
Dammak, M. .
MEDICAL ENGINEERING & PHYSICS, 2018, 60 :14-22
[3]  
Albareda-Albareda J, INJURY, V2021
[4]   Specimen-specific modeling of hip fracture pattern and repair [J].
Ali, Azhar A. ;
Cristofolini, Luca ;
Schileo, Enrico ;
Hu, Haixiang ;
Taddei, Fulvia ;
Kim, Raymond H. ;
Rullkoetter, Paul J. ;
Laz, Peter J. .
JOURNAL OF BIOMECHANICS, 2014, 47 (02) :536-543
[5]   Variability of human femoral geometry and its implications on nail design [J].
Arnone, Joshua C. ;
Crist, Brett D. ;
Ward, Carol, V ;
El-Gizawy, A. Sherif ;
Pashuck, Troy ;
Della Rocca, Gregory J. .
INJURY-INTERNATIONAL JOURNAL OF THE CARE OF THE INJURED, 2021, 52 (01) :109-116
[6]  
ASME, 2018, ASME V&V40
[7]   Shear movement at the fracture site delays healing in a diaphyseal fracture model [J].
Augat, P ;
Burger, J ;
Schorlemmer, S ;
Henke, T ;
Peraus, M ;
Claes, L .
JOURNAL OF ORTHOPAEDIC RESEARCH, 2003, 21 (06) :1011-1017
[8]   Assessing the use of finite element analysis for mechanical performance evaluation of intervertebral body fusion devices [J].
Baumann, Andrew P. ;
Graf, Thomas ;
Peck, Jonathan H. ;
Dmitriev, Anton E. ;
Coughlan, Dezba ;
Lotz, Jeffrey C. .
JOR SPINE, 2021, 4 (01)
[9]   Comparison of the elastic and yield properties of human femoral trabecular and cortical bone tissue [J].
Bayraktar, HH ;
Morgan, EF ;
Niebur, GL ;
Morris, GE ;
Wong, EK ;
Keaveny, TM .
JOURNAL OF BIOMECHANICS, 2004, 37 (01) :27-35
[10]   Realistic loads for testing hip implants [J].
Bergmann, G. ;
Graichen, F. ;
Rohlmann, A. ;
Bender, A. ;
Heinlein, B. ;
Duda, G. N. ;
Heller, M. O. ;
Morlock, M. M. .
BIO-MEDICAL MATERIALS AND ENGINEERING, 2010, 20 (02) :65-75