Type of Hip Fracture Determines Load Share in Intramedullary Osteosynthesis
暂无分享,去创建一个
Peter Augat | Sebastian Eberle | Claus Gerber | P. Augat | Geert Oldenburg | Sven Hungerer | S. Hungerer | S. Eberle | C. Gerber | G. Oldenburg
[1] L. Joskowicz,et al. A CT-based high-order finite element analysis of the human proximal femur compared to in-vitro experiments. , 2007, Journal of biomechanical engineering.
[2] C. Cooper,et al. Hip fractures in the elderly: A world-wide projection , 1992, Osteoporosis International.
[3] J. Raunest,et al. [Morbidity and mortality in para-articular femoral fractures in advanced age. Results of a prospective study]. , 2001, Der Unfallchirurg.
[4] J. K. Spelt,et al. Finite element analysis of a femoral retrograde intramedullary nail subject to gait loading. , 2004, Medical engineering & physics.
[5] D. Ainscow,et al. Transient osteoporosis of the hip associated with osteogenesis imperfecta. , 1998, The Journal of bone and joint surgery. British volume.
[6] V. Frankel,et al. Biomechanical evaluation of anatomic reduction versus medial displacement osteotomy in unstable intertrochanteric fractures. , 1987, Clinical orthopaedics and related research.
[7] S Blatcher,et al. Influence of head constraint and muscle forces on the strain distribution within the intact femur. , 2000, Medical engineering & physics.
[8] O. Johnell,et al. World-wide Projections for Hip Fracture , 1997, Osteoporosis International.
[9] V. Frankel,et al. A Biomechanical Analysis of the Sliding Hip Screw: The Question of Plate Angle , 1990, Journal of orthopaedic trauma.
[10] Florent Richy,et al. Strategies for the prevention of hip fracture. , 2003, The American journal of medicine.
[11] C. Milgrom,et al. Reliable simulations of the human proximal femur by high-order finite element analysis validated by experimental observations. , 2007, Journal of biomechanics.
[12] E. Friis,et al. Fatigue Performance of Composite Analogue Femur Constructs under High Activity Loading , 2007, Annals of Biomedical Engineering.
[13] R J Eveleigh,et al. A review of biomechanical studies of intramedullary nails. , 1995, Medical engineering & physics.
[14] O. Michelsson,et al. Femoral shaft medialisation and neck-shaft angle in unstable pertrochanteric femoral fractures , 2004, International Orthopaedics.
[15] M. Bostrom,et al. A Biomechanical Evaluation of the Long Stem Intramedullary Hip Screw , 1995, Journal of orthopaedic trauma.
[16] F. Kummer,et al. Intramedullary versus extramedullary fixation of subtrochanteric fractures. A biomechanical study. , 1998, Acta orthopaedica Scandinavica.
[17] C. Roberts,et al. Second Generation Intramedullary Nailing of Subtrochanteric Femur Fractures: A Biomechanical Study of Fracture Site Motion , 2002, Journal of orthopaedic trauma.
[18] C. Roux,et al. Outcome of osteoporotic pelvic fractures: an underestimated severity. Survey of 60 cases. , 2008, Joint, bone, spine : revue du rhumatisme.
[19] E. Friis,et al. Fracture toughness and fatigue crack propagation rate of short fiber reinforced epoxy composites for analogue cortical bone. , 2007, Journal of biomechanical engineering.
[20] M. Viceconti,et al. Biomechanical validation of a new nail-plate for the repair of stable proximal femoral fractures , 1997, Archives of Orthopaedic and Trauma Surgery.
[21] C. van der Werken,et al. DHS osteosynthesis for stable pertrochanteric femur fractures with a two-hole side plate. , 2004, Injury.
[22] N Nuño,et al. Static coefficient of friction between Ti-6Al-4V and PMMA for cemented hip and knee implants. , 2002, Journal of biomedical materials research.
[23] K. Koval,et al. Functional Outcomes and Mortality Vary among Different Types of Hip Fractures: A Function of Patient Characteristics , 2004, Clinical orthopaedics and related research.
[24] G. Bergmann,et al. Hip contact forces and gait patterns from routine activities. , 2001, Journal of biomechanics.
[25] F. Kummer,et al. A biomechanical evaluation of the Gamma nail. , 1992, The Journal of bone and joint surgery. British volume.
[26] T P Schmalzried,et al. Quantitative Assessment of Walking Activity after Total Hip or Knee Replacement* , 1998, The Journal of bone and joint surgery. American volume.
[27] M. Swiontkowski,et al. Implant-related complications in the treatment of unstable intertrochanteric fractures: meta-analysis of dynamic screw-plate versus dynamic screw-intramedullary nail devices , 2003, International Orthopaedics.
[28] M Honl,et al. Duration and frequency of every day activities in total hip patients. , 2001, Journal of biomechanics.
[29] T. Hearn,et al. Biomechanical analysis of the Medoff sliding plate. , 2000, The Journal of trauma.
[30] J. Raunest,et al. Morbidität und Letalität bei hüftgelenknahen Femurfrakturen im höheren Lebensalter Ergebnisse einer prospektiven Studie , 2001, Der Unfallchirurg.
[31] Professor Friedrich Pauwels Dr. med. Dr. med. h.c. Dr.-Ing. E.h.. Biomechanics of the Normal and Diseased Hip , 1976, Springer Berlin Heidelberg.
[32] J B Morrison,et al. The mechanics of the knee joint in relation to normal walking. , 1970, Journal of biomechanics.
[33] L Cristofolini,et al. Mechanical validation of whole bone composite femur models. , 1996, Journal of biomechanics.