Stress analysis of total hip arthroplasty with a fully hydroxyapatite-coated stem: comparing thermoelastic stress analysis and CT-based finite element analysis
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License.
Aamodt A., Lund-Larsen J., Eine J., Andersen E., Benum P., Husby O.S., Changes in proximal femoral strain after insertion of uncemented standard and customised femoral stems, An experimental study in human femora, J. Bone Joint Surg. Br., 2001, 83, 921–929.Search in Google Scholar
Assaf A., Manara J.R., Teoh K.H., Evans A.R., Mid-term clinical results of the cementless R3 cup and Polarstem total hip arthroplasty, Eur. J. Orthop. Surg. Traumatol., 2019, 29, 827–833.Search in Google Scholar
Bieger R., Ignatius A., Decking R., Claes L., Reichel H., Durselen L., Primary stability and strain distribution of cementless hip stems as a function of implant design, Clin. Biomech., (Bristol, Avon), 2012, 27, 158–164.Search in Google Scholar
Bougherara H., Saleem M., Shah S., Toubal L., Sarwar A., Schemitsch E.H., Zdero R., Stress analysis of a carbon fiberreinforced epoxy plate with a hole undergoing tension: A comparison of finite element analysis, strain gages, and infrared thermography, J. Compos. Mater., 2018, 52 (19), 2679–2689.Search in Google Scholar
Cannella F., Garinei A., D’Imperio M., Rossi G., A novel method for the design prostheses based on thermoelastic stress analysis and finite element analysis, J. Mech. Med. Biol., 2014, 14 (5), 1450064.Search in Google Scholar
Cypres A., Fiquet A., Girardin P., Fitch D., Bauchu P., Bonnard O., Noyer D., Roy C., Long-term outcomes of a dualmobility cup and cementless triple-taper femoral stem combination in total hip replacement: a multicenter retrospective analysis, J. Orthop. Surg. Res., 2019, 14, 376.Search in Google Scholar
Elisabetta M.Z., Alberto L.A., Differential thermography for experimental, full-field stress analysis of hip arthroplasty, J. Mech. Med. Biol., 2010, 10 (3), 515–529.Search in Google Scholar
Elisabetta M.Z., Cristina B., Alberto L.A., Human pelvis loading rig for static and dynamic stress analysis, Acta Bioeng. Biomech., 2012, 14 (2), 61–66.Search in Google Scholar
Engh C.A., Bobyn J.D., Glassman A.H., Porous-coated hip replacement. The factors governing bone ingrowth, stress shielding and clinical results, J. Bone Joint Surg. Br., 1987, 69, 45–55.Search in Google Scholar
Floerkemeier T., Weltin J., Budde S., Hurschler C., Windhagen H., Von Lewinski G., Gronewold J., A short stem with metaphyseal anchorage reveals a more physiological strain pattern compared to a standard stem : an experimental study in cadavaric bone, Acta Bioeng. Biomech., 2019, 21 (2), 153–159.Search in Google Scholar
Heiner A.D., Structural properties of fourth-generation composite femurs and tibias, J. Biomech., 2008, 41, 3282–3284.Search in Google Scholar
Heiner A.D., Brown T.D., Structural properties of a new design of composite replicate femurs and tibias, J. Biomech., 2001, 34, 773–781.Search in Google Scholar
Herrera A., Panisello J.J., Ibarz E., Cegonino J., Puertolas J.A., Gracia L., Long-term study of bone remodelling after femoral stem: a comparison between dexa and finite element simulation, J. Biomech., 2007, 40, 3615–3625.Search in Google Scholar
Herrera A., Rebollo S., Ibarz E., Mateo J., Gabarre S., Gracia L., Mid-term study of bone remodeling after femoral cemented stem implantation: comparison between DXA and finite element simulation, J. Arthroplasty, 2014, 29, 90–100.Search in Google Scholar
Huiskes R., Weinans H., Dalstra M., Adaptive bone remodeling and biomechanical design considerations for noncemented total hip arthroplasty, Orthopedics, 1989, 12, 1255–1267.Search in Google Scholar
Hyodo K., Inomoto M., Ma W., Miyakawa S., Tateishi T., Thermoelastic femoral stress imaging for experimental evaluation of hip prosthesis design, JSME Int. J. Ser. C. Mech. Sys., Machine Elements and Manuf, 2001, 44, 1065–1071.Search in Google Scholar
Keyak J.H., Rossi S.A., Jones K.A., Skinner H.B., Prediction of femoral fracture load using automated finite element modeling, J. Biomech., 1998, 31, 125–133.Search in Google Scholar
Kim Y.H., Kim J.S., Cho S.H., Strain distribution in the proximal human femur. An in vitro comparison in the intact femur and after insertion of reference and experimental femoral stems, J. Bone Joint Surg. Br., 2001, 83, 295–301.Search in Google Scholar
McNamara B.P., Cristofolini L., Toni A., Taylor D., Relationship between bone-prosthesis bonding and load transfer in total hip reconstruction, J. Biomech., 1997, 30, 621–630.Search in Google Scholar
Nishino T., Mishima H., Kawamura H., Shimizu Y., Miyakawa S., Ochiai N., Follow-up results of 10–12 years after total hip arthroplasty using cementless tapered stem – frequency of severe stress shielding with synergy stem in Japanese patients, J. Arthroplasty, 2013, 28, 1736–1740.Search in Google Scholar
Oba M., Inaba Y., Kobayashi N., Ike H., Tezuka T., Saito T., Effect of femoral canal shape on mechanical stress distribution and adaptive bone remodelling around a cementless tapered-wedge stem, Bone Joint Res., 2016, 5, 362–369.Search in Google Scholar
Okazaki Y., Ishii D., Ogawa A., Spatial stress distribution analysis by thermoelastic stress measurement and evaluation of effect of stress concentration on durability of various orthopedic implant devices, Mater. Sci. Eng. C., 2017, 75, 34–42.Search in Google Scholar
Otani T., Whiteside L.A., White S.E., The effect of axial and torsional loading on strain distribution in the proximal femur as related to cementless total hip arthroplasty, Clin. Orthop. Relat. Res., 1993, 292, 376–383.Search in Google Scholar
Pivec R., Johnson A.J., Mears S.C., Mont M.A., Hip arthroplasty, The Lancet, 2012, 380, 1768–1777.Search in Google Scholar
Registry, A.O.A.N.J.R. Hip, Knee & Shoulder Arthroplasty: 2020 annual report. Adelaide: AOA 2020. https://aoanjrr.sahmri.com/annual-reports-2020.Search in Google Scholar
Speirs A.D., Heller M.O., Taylor W.R., Duda G.N., Perka C., Influence of changes in stem positioning on femoral loading after THR using a short-stemmed hip implant, Clin. Biomech. (Bristol, Avon), 2007, 22, 431–439.Search in Google Scholar
Takehashi H., Nishino T., Mishima H., Wada H., Yamazaki M., Hyodo K., Stress distribution of cementless stems with unique flanges in a rectangular cross-section: thermoelastic stress imaging study, J. Rural Med., 2021, 16, 83–90.Search in Google Scholar
The National Joint Registry 17th Annual Report 2020. London: National Joint Registry 2020, https://www.njrcenter.org.ukSearch in Google Scholar
Thomson W., On the Dynamical Theory of Heat, with numerical results deduced from Mr Joule’s Equivalent of a Thermal Unit, and M. Regnault’s Observations on Steam, Trans. R. Soc. Edinburgh, 1853, 20, 261–288.Search in Google Scholar
Vidalain J.P., Twenty-year results of the cementless Corail stem, Int. Orthop., 2011, 35, 189–194.Search in Google Scholar
Willburger R.E., Heukamp M., Lindenlaub P., Efe T., Peterlein C.D., Schuttler K.F., Excellent midterm survival and functional outcomes of a fully hydroxyapatite-coated cementless stem: first results of a prospective multicenter study, Arthroplast Today, 2020, 6, 201–205.Search in Google Scholar