Failure analysis of a 316L stainless steel femoral orthopedic implant
暂无分享,去创建一个
Maxime Raison | Aurelian Vadean | Benjamin Gervais | Myriam Brochu | M. Raison | M. Brochu | A. Vadean | Benjamin Gervais
[1] David L Helfet,et al. First clinical results of the Locking Compression Plate (LCP). , 2003, Injury.
[2] Ilse de Bourdeaudhuij,et al. How many steps/day are enough? For older adults and special populations , 2011, The international journal of behavioral nutrition and physical activity.
[3] Mica Grujicic,et al. Computational investigation of the relative efficacies of nail‐ and plate‐type proximal femoral‐fracture fixation implants , 2011 .
[4] Debra E Hurwitz,et al. Normalization of joint moments during gait: a comparison of two techniques. , 2003, Journal of biomechanics.
[5] Tarun Goswami,et al. A review of locking compression plate biomechanics and their advantages as internal fixators in fracture healing. , 2007, Clinical biomechanics.
[6] J. Clement,et al. A comparison of cortical bone thickness in the femoral midshaft of humans and two non-human mammals. , 2009, Homo : internationale Zeitschrift fur die vergleichende Forschung am Menschen.
[7] Ulrich Dieter,et al. Biomechanical testing of the LCP--how can stability in locked internal fixators be controlled? , 2003, Injury.
[8] C. Sommer,et al. Guidelines for the clinical application of the LCP. , 2003, Injury.
[9] Donald L. Wise,et al. Encyclopedic Handbook of Biomaterials and Bioengineering , 1995 .
[10] L Cristofolini,et al. Mechanical validation of whole bone composite femur models. , 1996, Journal of biomechanics.
[11] R. McCalden,et al. Locking compression plates for the treatment of periprosthetic femoral fractures around well-fixed total hip and knee implants. , 2011, The Journal of arthroplasty.
[12] Taeyong Lee,et al. Improving stability of locking compression plates through a design modification: a computational investigation , 2015, Computer methods in biomechanics and biomedical engineering.
[13] J. K. Spelt,et al. Finite element analysis of a femoral retrograde intramedullary nail subject to gait loading. , 2004, Medical engineering & physics.
[14] J. Newman,et al. Stress-intensity factor equations for cracks in three-dimensional finite bodies subjected to tension and bending loads , 1984 .
[15] Ching-Hua Hung,et al. Finite element comparison of retrograde intramedullary nailing and locking plate fixation with/without an intramedullary allograft for distal femur fracture following total knee arthroplasty. , 2014, The Knee.