Biomechanical Analysis of Non-Metallic Biomaterial in the Manufacture of a New Knee Prosthesis

被引:6
作者
Suffo, Miguel [1 ]
Revenga, Carlos [2 ]
机构
[1] Univ Cadiz, High Engn Sch, Dept Mech Engn & Ind Design, Campus Rio San Pedro S-N, Puerto Real 11510, Spain
[2] San Juan Grande Hosp, Orthoped & Trauma Dept, Jerez de la Frontera 11003, Spain
关键词
non-metallic knee prosthesis; ULTEM; 1010; biomaterial; additive manufacturing; biomechanical design; two-component knee prosthesis; live/dead; POLYETHYLENE WEAR; CROSS-SHEAR; IMPLANT; REPLACEMENT; DESIGN; FABRICATION; SCAFFOLDS; COMPONENT; FRICTION; COULOMB;
D O I
10.3390/ma14205951
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The increase in the number of revision surgeries after a total knee replacement surgery reaches 19%. One of the reasons for the majority of revisions relates to the debris of the ultra-high molecular weight polyethylene that serves to facilitate the sliding between the femoral and tibial components. This paper addresses the biomechanical properties of ULTEM 1010 in a totally new knee replacement design, based on one of the commercial models of the Stryker manufacturer. It is designed and produced through additive manufacturing that replaces the tibial component and the polyethylene in such a way as to reduce the pieces that are part of the prosthetic assembly to only two: the femoral and the tibial (the so-called "two-component knee prosthesis "). The cytotoxicity as well as the live/dead tests carried out on a series of biomaterials guarantee the best osteointegration of the studied material. The finite element simulation method guarantees the stability of the material before a load of 2000 N is applied in the bending angles 0 & DEG;, 30 & DEG;, 60 & DEG;, 90 & DEG;, and 120 & DEG;. Thus, the non-metallic prosthetic material and approach represent a promising alternative for metal-allergic patients.
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页数:13
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