Evans S L, Gregson P J
Engineering Materials, University of Southamptom, UK.
Biomaterials. 1998 Aug;19(15):1329-42. doi: 10.1016/s0142-9612(97)00217-2.
Composite materials have been widely promoted as possible orthopaedic biomaterials but to date have found few successful commercial applications, due to the many challenging problems presented by their design, fabrication and testing. The range of possible composite biomaterials is reviewed, together with the possible methods of fabrication and the limitations that these place on the design of composite components. The use of composite materials allows many new design possibilities, but this freedom of design requires a clearer understanding of the objectives and constraints on the design process. The testing of composite components also presents many challenging problems, which are not adequately addressed by existing standards developed for testing conventional monolithic materials. The interaction of composite materials with the body is more complex than that of the component materials, and the prediction of their long-term mechanical performance also presents many intractable difficulties. However, despite these challenges composite materials are likely to prove invaluable in the future development of orthopaedics.
复合材料作为潜在的骨科生物材料已得到广泛推广,但由于其设计、制造和测试存在诸多难题,迄今为止成功的商业应用寥寥无几。本文综述了可能的复合生物材料的范围,以及可能的制造方法和这些方法对复合部件设计的限制。复合材料的使用带来了许多新的设计可能性,但这种设计自由度需要对设计过程的目标和约束有更清晰的理解。复合部件的测试也存在许多具有挑战性的问题,现有用于测试传统整体材料的标准无法充分解决这些问题。复合材料与人体的相互作用比组成材料更为复杂,预测其长期力学性能也存在许多棘手的困难。然而,尽管存在这些挑战,复合材料在骨科未来的发展中可能会被证明具有极高的价值。