Simultaneous Hip Head-Stem Taper Junction Measurements of Electrochemical Corrosion and Micromotion: A Comparison of Taper Geometry and Stem Material

被引:2
作者
Swaminathan, V. [1 ]
Scholl, L. [1 ]
Lee, R. [1 ]
Faizan, A. [1 ]
Thakore, M. [1 ]
TenHuisen, K. [1 ]
Nevelos, J. [1 ]
机构
[1] Stryker Orthopaed, 325 Corp Dr, Mahwah, NJ 07430 USA
来源
MODULARITY AND TAPERS IN TOTAL JOINT REPLACEMENT DEVICES | 2015年 / 1591卷
关键词
corrosion; micromotion; electrochemistry; onset load; tapers; FRETTING CORROSION; CREVICE CORROSION; INTERFACE;
D O I
10.1520/STP159120140150
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Fretting corrosion or mechanically assisted crevice corrosion is a current topic of research in total hip arthroplasty highlighted by the modularity of the head-neck taper junction. The extent of corrosion may be influenced by a multitude of factors, and in this study, we examined two specific variables: material combination and taper geometry. Corrosion performance was quantitatively assessed by measuring fretting corrosion at the taper junction as well as relative micromotion between the head and stem components. To examine the effect of material combinations, stems composed of either Ti-6AI-4V or TMZF (R) were tested with CoCrMo femoral heads. To study taper geometry, a V40 (TM) taper design was compared with a C-taper design. Cyclic fatigue loading was applied to the test specimens, increasing load from 100 to 3200 N and then continuing loading to 1 million cycles. All tests were performed in phosphate-buffered saline solution at room temperature and electrochemical data analysis included determination of onset load, average current, average open-circuit potential, peak-to-peak current, and absolute change in potential. Micromotion fixtures were attached rigidly to the head and proximal stem. The micromotion output was used to calculate pistoning of the head along the stem, rocking of the head about the stem, and subsidence (or seating or slipping) of the head against the stem. The electrochemical data showed that the mean onset load for different groups was in the range of 1075 to 1194 N and average currents up to 2 mu A were recorded for different sample groups during cyclic loading. Fretting corrosion and micromotion measurements in this study showed that the variation produced by material combination and taper design within the range of test groups tested were less than the variation that existed in each test group.
引用
收藏
页码:321 / 335
页数:15
相关论文
共 11 条
[1]   FRETTING CORROSION ACCELERATES CREVICE CORROSION OF MODULAR HIP TAPERS [J].
BROWN, SA ;
FLEMMING, CAC ;
KAWALEC, JS ;
PLACKO, HE ;
VASSAUX, C ;
MERRITT, K ;
PAYER, JH ;
KRAAY, MJ .
JOURNAL OF APPLIED BIOMATERIALS, 1995, 6 (01) :19-26
[2]  
FLEMMING CAC, 1994, AM SOC TEST MATER, V1173, P156, DOI 10.1520/STP18102S
[3]   Fretting Crevice Corrosion of Stainless Steel Stem-CoCr Femoral Head Connections: Comparisons of Materials, Initial Moisture, and Offset Length [J].
Gilbert, Jeremy L. ;
Mehta, Manav ;
Pinder, Bryan .
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART B-APPLIED BIOMATERIALS, 2009, 88B (01) :162-173
[4]   In vitro corrosion testing of modular hip tapers [J].
Goldberg, JR ;
Gilbert, JL .
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART B-APPLIED BIOMATERIALS, 2003, 64B (02) :78-93
[5]   Influence of material coupling and assembly condition on the magnitude of micromotion at the stem-neck interface of a modular hip endoprosthesis [J].
Jauch, S. Y. ;
Huber, G. ;
Hoenig, E. ;
Baxmann, M. ;
Grupp, T. M. ;
Morlock, M. M. .
JOURNAL OF BIOMECHANICS, 2011, 44 (09) :1747-1751
[6]   Micromotions at the taper interface between stem and neck adapter of a bimodular hip prosthesis during activities of daily living [J].
Jauch, Sabrina Yvonne ;
Huber, Gerd ;
Sellenschloh, Kay ;
Haschke, Henning ;
Baxmann, Marc ;
Grupp, Thomas M. ;
Morlock, Michael M. .
JOURNAL OF ORTHOPAEDIC RESEARCH, 2013, 31 (08) :1165-1171
[7]   Effect of impact assembly on the fretting corrosion of modular hip tapers [J].
Mroczkowski, ML ;
Hertzler, JS ;
Humphrey, SM ;
Johnson, T ;
Blanchard, CR .
JOURNAL OF ORTHOPAEDIC RESEARCH, 2006, 24 (02) :271-279
[8]  
Murray NGD., 2005, TITANIUM NIOBIUM ZIR, P3
[9]  
Pierre D., 2014, P SOC BIOM DENV CO
[10]  
Stryker, STRYK ACC TMZF