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颈椎前路生物活性玻璃涂层钛板系统的研制与生物力学评价
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作者 俞杭平 王以进 +1 位作者 唐天驷 杨惠林 《医用生物力学》 EI CAS CSCD 2003年第1期13-19,共7页
目的 研制颈椎前路生物活性玻璃钛板系统(ACBPS),并对其进行生物力学评价。方法 在钛板内面及累钉表面等离子喷涂0.3mm厚的生物活性玻璃涂层。采用18具颈椎标本随机分为ACBPS,颈前路钛板系统(ACPS),和Orion三组,在颈前路减压... 目的 研制颈椎前路生物活性玻璃钛板系统(ACBPS),并对其进行生物力学评价。方法 在钛板内面及累钉表面等离子喷涂0.3mm厚的生物活性玻璃涂层。采用18具颈椎标本随机分为ACBPS,颈前路钛板系统(ACPS),和Orion三组,在颈前路减压,植骨及钛板内固定后,行载荷-位移,扭矩和扭转刚度,极限力学性能测定并记录结果,进行对比;另对ACBPS,ACPS行拔出试验和疲劳试验,且以三维有限元素分析验证。结果 在前屈,后伸时ACBPS组的纵向位移降低幅度明显高于ACPS组或Orion组(P<0.05),同时其纵向位移值明显低于ACPS组或Orion组(P<0.05);ACBPS组的扭转矩和扭转刚度以及极限力学性能与ACPS组或Orion组比较均无统计学差异(P>0.05);但其在最大拔出力及相对位移和能量吸收值上增明显高于ACPS组和Orion组(P<0.05);其疲劳强度586.86MPa,疲劳载荷达6.55×10^5次;有限元计算得出ACBPS孔洞直径和孔边距离处安全范围。结论 ACBPS角能较好地重建颈椎稳定性且有效防止螺钉及系统整体松动,并能通过涂层的固合来降低螺孔周围应力集中从而延长其使用寿命,可供体内较长时间安放。 展开更多
关键词 脊柱 颈椎 骨折 生物活性玻璃 生物力学 三维有限元素分析
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3D FEM analysis for layered rock considering anisotropy of shear strength 被引量:3
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作者 张玉军 张维庆 《Journal of Central South University》 SCIE EI CAS 2010年第6期1357-1363,共7页
An empirical expression of cohesion (C) and friction angle (Ф) for layered rock was suggested. This expression was compared with a test result made by the former researchers. The constitutive relationship of a tr... An empirical expression of cohesion (C) and friction angle (Ф) for layered rock was suggested. This expression was compared with a test result made by the former researchers. The constitutive relationship of a transversely isotropic medium and Mohr-Coulomb criterion in which C and Ф vary with directions were employed, and a relative 3D elasto-plastic FEM code was developed, in which the important thing was to adopt a search-trial method to find the orientation angle (p) of shear failure plane (or weakest shear plane) with respect to the major principal stress as well as the corresponding C and Ф Taking an underground opening as the calculation object, the numerical analyses were carried out by using the FEM code for two cases of transversely isotropic rock and isotropic rock, respectively, and the computation results were compared. The results show that when the rock is a transversely isotropic one, the distributions of displacements, plastic zones and stress contours in the surrounding rock will be non-axisymmetric along the tunnel's vertical axis, which is very different from that of isotropic rock. The stability of the tunnel in transversely isotropic rock is relatively low. 展开更多
关键词 layered rock mass shear strength ANISOTROPY three dimensional finite element method computation analysis
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