|
|
Influence of Cross-Shear on the Wear of PEEK and CFR-PEEK in Artificial Joint Application |
Wang Junyuan, Duan Chenxi, Du Wenhua, Dong Lei#* |
School of Mechanical Engineering, North University of China, Taiyuan 030051, China |
|
[1] 宋剑, 王松, 廖振华,等. 聚醚醚酮及其改性的人工关节材料的摩擦磨损性能研究进展[J].功能材料, 2014, 23(45): 23010-23019. [2] Kurtz SM, Devine JN. PEEK biomaterials in trauma, orthopedic, and spinal implants[J]. Biomaterials, 2007, 28(32): 4825-4869. [3] 付国太, 刘洪军, 张柏,等. PEEK的特性及应用[J]. 工程塑料应用, 2006, 34(10): 69-71. [4] 张志丹, 徐娟, 孙克原,等. 聚醚醚酮复合材料耐磨性能的研究进展[J]. 玻璃钢/复合材料, 2013 (1): 94-98. [5] Saikko V. A multidirectional motion pin-on-disk wear test method for prosthetic joint materials[J]. Journal of Biomedical Materials Research Part A B, 1998, 41(1): 58-64. [6] Saikko V, Ahlroos T. Wear simulation of UHMWPE for total hip replacement with a multidirectional motion pin-on-disk device: effects of counterface material, contact area, and lubricant[J]. Journal of Biomedical Materials Research, 2000, 49(2): 147-154. [7] Cooper J, Dowson D, Fisher J. Macroscopic and microscopic wear mechanisms in ultra-high molecular weight polyethylene[J]. Wear, 1993, 162-164 (93):378-384. [8] Barbour P, Barton D, Fisher J. The influence of contact stress on the wear of UHMWPE for total replacement hip prostheses[J]. Wear, 1995, 181-183 (95):250-257. [9] Scholes S, Unsworth A. Wear studies on the likely performance of PEEK/CoCrMo for use as artificial joint bearing materials[J]. Journal of Materials Science Materials in Medicine, 2009, 20 (1):163-170. [10] 贾卫庆, 孙俊英, 江宏卫,等. 碳增强的聚醚醚酮作为髋臼假体材料的实验研究[J]. 中国矫形外科杂志, 2003, 11(4): 210-213. [11] East RH, Briscoe A, Unsworth A. Wear of PEEK-OPTIMAs and PEEK-OPTIMAs-Wear Performance articulating against highly cross-linked polyethylene[J]. Proceedings of the Institution of Mechanical Engineers Part H Journal of Engineering in Medicine, 2015, 229 (3):187-193. [12] Wang Q, Wu J. Biotribological study of large diameter ceramic-on-CFR-PEEK hip joint including fluid uptake, wear and frictional heating[J].Journal of Materials Science Materials in Medicine, 2012, 23 (6):1533-1542. [13] Kang L. Quantifcation of the effect of cross-shear on the wear of conventional and highly cross-linked UHMWPE[J]. Biomech, 2008, 41(2): 340-346. [14] Brockett CL. Wear of ceramic-on-carbon fiberreinforced poly-ether ether ketone hip replacements[J]. Journal of Biomedical Materials Research Part B Applied Biomaterials, 2012, 100B (6):1459-1465. [15] Galvin A, Kang L, Tipper J, et al. Wear of crosslinked polyethylene under different tribological conditions[J]. Journal of Materials Science: Materials in Medicine, 2006, 17(3):235-243. [16] Wang A. A unified theory of wear for ultra-high molecular weight polyethylene in multi-directional sliding[J]. Wear, 2001, 248(1-2):38-47. [17] Abdelgaied A, Brockett CL, Liu F, et al. Quantification of the effect of cross-shear and applied nominal contact pressure on the wear of moderately cross-linked polyethylene[J]. Journal of Engineering in Medicine, 2013, 227(1):18-26. [18] Haward R. Strain hardening of thermoplastics[J]. Macromolecules, 1993, 26(22):5860-5869. |
[1] |
Li Baoming, Hu Jiarui, Xu Haijun, Wang Cong, Jiang Yanni, Zhang Zhihong, Xu Jun. Deep Cascaded Network for Automated Detection of Cancer MetastasisRegion from Whole Slide Image of Breast Lymph Node[J]. Chinese Journal of Biomedical Engineering, 2020, 39(3): 257-264. |
[2] |
Xie Sudan, Fan Ming, Xu Maosheng, Wang Shiwei, Li Lihua. Prediction of Histological Grade in Invasive Breast Cancer Based on T2-Weighted MRI[J]. Chinese Journal of Biomedical Engineering, 2020, 39(3): 280-287. |
|
|
|
|