Muratoglu O K, Bragdon C R, O'Connor D O, Jasty M, Harris W H
Orthopaedic Biomechanics and Biomaterials Laboratory, Massachusetts General Hospital, GRJ 1206, Boston, MA 02114, USA..
J Arthroplasty. 2001 Feb;16(2):149-60. doi: 10.1054/arth.2001.20540.
Increasing cross-linking has been shown in vitro and in vivo to improve markedly the wear resistance of ultra-high-molecular-weight polyethylene (UHMWPE). The reduction in the mechanical properties of polyethylene under certain methods used to produce cross-linking has been a concern, however. These reductions are known to result from the processes used to increase the cross-link density and could affect the device performance in vivo. We present a novel method of increasing the cross-link density of UHMWPE in which UHMWPE is irradiated in air at an elevated temperature with a high-dose-rate electron beam and subsequently is melt-annealed. This treatment improves markedly the wear resistance of the polymer as tested in a hip simulator, while maintaining the mechanical properties of the material within national and international standards. This method leads to the absence of detectable free radicals in the polymer and, as a result, excellent resistance to oxidation of the polymer.
体外和体内研究均表明,增加交联可显著提高超高分子量聚乙烯(UHMWPE)的耐磨性。然而,在用于产生交联的某些方法下,聚乙烯机械性能的降低一直是个问题。已知这些降低是由用于增加交联密度的过程导致的,并且可能影响体内装置的性能。我们提出了一种增加UHMWPE交联密度的新方法,即UHMWPE在高温下于空气中用高剂量率电子束辐照,随后进行熔体退火。如在髋关节模拟器中测试所示,这种处理显著提高了聚合物的耐磨性,同时使材料的机械性能保持在国内和国际标准范围内。该方法使聚合物中不存在可检测到的自由基,因此聚合物具有优异的抗氧化性。