全部 标题 作者
关键词 摘要

OALib Journal期刊
ISSN: 2333-9721
费用:99美元

查看量下载量

相关文章

更多...
-  2018 

人工椎间盘机械性能评估研究现状与进展

DOI: doi:10.7507/1001-5515.201712014

Keywords: 人工椎间盘, 机械性能评估, 静态力学测试, 动态力学测试, 生物力学测试

Full-Text   Cite this paper   Add to My Lib

Abstract:

人工椎间盘机械性能事关假体植入的长期可靠性。根据评估方法的不同,可将对人工椎间盘机械性能的评估方法分为试验机测试法、体外标本测试法和有限元分析法三大类。本文介绍了人工椎间盘机械性能评估的测试标准、试验机和材料,重点综述了采用试验机方法开展人工椎间盘静态机械性能(静态轴向压缩、静态轴向剪切)、动态机械性能(动态轴向压缩、动态轴向剪切)、轴向压缩蠕变、静态全器械推出、静态嵌件推出、沉降性能等测试的研究现状,归纳了体外标本测试法的主要实验技术和现有人工椎间盘的测试结果,概述了有限元方法的实验技术和研究现状。最后本文展望了人工椎间盘机械性能研究的发展趋势,测试设备、负载、动态循环次数、运动模式、标本及测试标准等方面将是未来的主要研究方向

References

[1]  1. 赵占红, 郭俊明, 贾宝林, 等. 北京某大学在校大学生颈椎健康状况调查. 保健医学研究与实践, 2017, 14(03): 35-37.
[2]  2. 李东红, 高爽, 张玮, 等. " 动则生阳”理论指导青少年颈型颈椎病的治疗. 长春中医药大学学报, 2015, 31(2): 313-315.
[3]  3. van Uden S, Silva-Correia J, Oliveira J M, et al. Current strategies for treatment of intervertebral disc degeneration: substitution and regeneration possibilities. Biomaterials research, 2017, 21(1): 22.
[4]  4. Dowdell J, Erwin M, Choma T, et al. Intervertebral disk degeneration and repair. Neurosurgery, 2017, 80(3, S): S46-S54.
[5]  6. Tian P, Fu X, Li Z J, et al. Hybrid surgery versus anterior cervical discectomy and fusion for multilevel cervical degenerative disc diseases: a meta-analysis, Scientific Reports, 2015, 5: 13454.
[6]  7. Zhang Yujie, Liang Chengzhen, Tao Yiqing, et al. Cervical total disc replacement is superior to anterior cervical decompression and fusion: a meta-analysis of prospective randomized controlled trials. PLoS One, 2015, 10(3): e0117826.
[7]  9. 娄纪刚, 刘浩, 李元超, 等. 一种新型人工颈椎间盘置换的生物力学研究. 生物骨科材料与临床研究, 2016, 13(3): 10-13, 16.
[8]  11. Fernstr?m U. Arthroplasty with intercorporal endoprothesis in herniated disc and in painful disc. Acta Chir Scand Suppl, 1966, 357: 154-159.
[9]  13. Shikinami Y, Kawabe Y, Yasukawa K, et al. A biomimetic artificial intervertebral disc system composed of a cubic three-dimensional fabric. Spine J, 2010, 10(2): 141-152.
[10]  15. Food and Drug Administration. American FDA Drugs Database. [2017.12.06]. https://www.accessdata.fda.gov/cdrh_docs/pdf10/p100012b.pdf.
[11]  16. Food and Drug Administration. American FDA Drugs Database. [2017.12.06]. https://www.accessdata.fda.gov/cdrh_docs/pdf6/p060018b.pdf.
[12]  18. Food and Drug Administration. American FDA Drugs Database. [2017.12.06]. https://www.accessdata.fda.gov/cdrh_docs/pdf10/p100003b.pdf.
[13]  19. Sheng Sunren, Xu Huazi, Wang Yongli, et al. Comparison of cervical spine anatomy in calves, Pigs and humans. PLoS One, 2016, 11(2): e0148610.
[14]  20. 李晓辉, 宋跃明, 段宏, 等. 有限元分析方法在山羊第三~第四颈椎前路融合术后生物力学研究中的应用. 中华实验外科杂志, 2015, 32(7): 1556-1559.
[15]  23. 巴穆登, 艾尔肯?阿木冬, 孟祥玉. 如何构建能较全面模拟人类椎间盘退变性疾病的椎间盘退变实验动物模型. 中国组织工程研究, 2015, 19(18): 2940-2946.
[16]  25. Daentzer D, Welke B, Hurschler C, et al. In vitro-analysis of kinematics and intradiscal pressures in cervical arthroplasty versus fusion—a biomechanical study in a sheep model with two semi-constrained prosthesis. Biomed Eng Online, 2015, 14(1): 1-15.
[17]  27. Bartels R A, Donk R D, Pavlov P, et al. Comparison of biomechanical properties of cervical artificial disc prosthesis: a review. Clinical Neurology&Neurosurgery, 2008, 110(10): 963-967.
[18]  28. Grant M, Epure L M, Salem O, et al. Development of a large animal Long-Term intervertebral disc organ culture model that includes the bony vertebrae for ex vivo studies. Tissue Eng Part C Methods, 2016, 22(7): 636-643.
[19]  31. Welke B, Schwarze M, Hurschler C, et al. In vitro investigation of a new dynamic cervical implant: comparison to spinal fusion and total disc replacement. Eur Spine J, 2016, 25(7): 2247-2254.
[20]  35. Jaworski ?, Karpiński R. Biomechanics of the human spine. Journal of Technology and Exlpoitation in Mechanical Engineering, 2017, 03(01): 8-12.
[21]  36. Artz N J, Adams M A, Dolan P. Sensorimotor function of the cervical spine in healthy volunteers. Clin Biomech (Bristol, Avon), 2015, 30(3): 260-268.
[22]  38. Park C K. Total disc replacement in lumbar degenerative disc diseases. J Korean Neurosurg Soc, 2015, 58(5): 401-411.
[23]  17. Food and Drug Administration. American FDA Drugs Database. [2017.12.06]. https://www.accessdata.fda.gov/cdrh_docs/pdf7/p070001b.pdf.
[24]  21. Yamada K, Ito M, Akazawa T, et al. A preclinical large animal study on a novel intervertebral fusion cage covered with high porosity titanium sheets with a triple pore structure used for spinal fusion. Eur Spine J, 2015, 24(11): 2530-2537.
[25]  22. Mayya A, Praveen P, Banerjee A, et al. Splitting fracture in bovine bone using a porosity-based spring network model. Journal of the Royal Society Interface, 2016, 13(124): 1-10.
[26]  24. 娄纪刚, 刘浩, 武文杰, 等. 新型人工颈椎间盘山羊模型的建立及其研究. 实用骨科杂志, 2017, 23(05): 426-429.
[27]  26. 廖振华, 刘伟强. 颈椎融合术与非融合术生物力学研究进展. 生物医学工程学杂志, 2016(01): 171-176.
[28]  29. Tang Shujie. Comparison of posterior versus transforaminal lumbar interbody fusion using finite element analysis. Influence on adjacent segmental degeneration. Saudi Med J, 2015, 36(8): 993-996.
[29]  32. Yu Chengcheng, Liu Peng, Huang Dageng, et al. A new cervical artificial disc prosthesis based on physiological curvature of end plate: a finite element analysis. Spine J, 2016, 16(11): 1384-1391.
[30]  34. D’aprile P. Biomechanics of the spine. Springer International Publishing, 2015: 3-8.
[31]  5. Shah A M, Kwon S J, Chan W W, et al. Intervertebral disc degeneration. Germany: Springer International Publishing, 2017.
[32]  8. Menchetti P M. Cervical spine. Germany: Springer International Publishing, 2016: 193-206.
[33]  10. 王成焘, 葛世荣, 靳忠民, 等. 骨科植入工程学. 上海: 上海交通大学出版社, 2016: 232.
[34]  12. Sengupta D K. Clinical biomechanics of the spine. Spine (Phila Pa 1976), 2017, 42(7, 1): S3.
[35]  14. Food and Drug Administration. American FDA Drugs Database. [2017.12.06]. https://www.accessdata.fda.gov/cdrh_docs/pdf11/p110009b.pdf.
[36]  30. Ganbat D, Kim Y H, Kim K, et al. Effect of mechanical loading on heterotopic ossification in cervical total disc replacement: a three-dimensional finite element analysis. Biomech Model Mechanobiol, 2016, 15(5): 1191-1199.
[37]  33. Shirazi-Adl A I, Schmidt H, Kingma I. Spine loading and deformation-From loading to recovery. J Biomech, 2016, 49(6, SI): 813-816.
[38]  37. Trincat S, Edgard-Rosa G, Geneste G, et al. Two-level lumbar total disc replacement: functional outcomes and segmental motion after 4 years. Orthop Traumatol Surg Res, 2015, 101(1): 17-21.

Full-Text

Contact Us

service@oalib.com

QQ:3279437679

WhatsApp +8615387084133