...
首页> 外文期刊>Computer Modeling in Engineering & Sciences >Design and Manufacture of Bionic Porous Titanium Alloy Spinal Implant Based on Selective Laser Melting (SLM)
【24h】

Design and Manufacture of Bionic Porous Titanium Alloy Spinal Implant Based on Selective Laser Melting (SLM)

机译:基于选择性激光熔化的仿生多孔钛合金脊髓植入物的设计与制造(SLM)

获取原文
获取原文并翻译 | 示例
   

获取外文期刊封面封底 >>

       

摘要

In order to meet the clinical requirements of spine surgery, this paper proposed the exploratory research of computer-aided design and selective laser melting (SLM) fabrication of a bionic porous titanium spine implant. The structural design of the spinal implant is based on CT scanning data to ensure correct matching, and the mechanical properties of the implant are verified by simulation analysis and laser selective melting experiment. The surface roughness of the spinal implant manufactured by SLM without post-processing is Ra 15 mu m, and the implant is precisely jointed with the photosensitive resin model of the upper and lower spine. The surface micro-hardness of the implant is HV 373, tensile strength sigma(b) = 1238.7 MPa, yield strength sigma(0)(.2) = 1043.9 MPa, the elongation is 6.43%, and the compressive strength of porous structure under 84.60% porosity is 184.09 MPa, which can meet the requirements of the reconstruction of stable spines. Compared with the traditional implant and intervertebral fusion cage, the bionic porous spinal implant has the advantages of accurate fit, porous bionic structure and recovery of patients, and the ion release experiment proved that implants manufactured by SLM are more suitable for clinical application after certain treatments. The elastic modulus of the sample is improved after heat treatment, mainly because the microstructure of the sample changes from alpha' phase to alpha + beta dual-phase after heat treatment. In addition, the design of high-quality bionic porous spinal implants still needs to be optimized for the actual needs of doctors.
机译:为了满足脊柱手术的临床要求,本文提出了计算机辅助设计和选择性激光熔化(SLM)制备仿生多孔钛脊柱植入物的探索性研究。脊柱植入物的结构设计基于CT扫描数据,以确保正确匹配,通过模拟分析和激光选择性熔化实验验证植入物的机械性能。通过后处理的SLM制造的脊柱植入物的表面粗糙度是Ra15μm,并且植入物精确地与上脊柱的光敏树脂模型接合。植入物的表面微硬度是HV 373,拉伸强度Sigma(B)= 1238.7MPa,屈服强度σ(0)(0)(。2)= 1043.9MPa,伸长率为6.43%,以及多孔结构的抗压强度84.60%孔隙度为184.09MPa,可以满足稳定刺的重建的要求。与传统的植入物和椎间融合笼相比,仿生多孔脊柱植入物具有精确的合适,多孔的仿生结构和患者的回收优点,并且离子释放实验证明,SLM制造的植入物更适合在某些处理后临床应用更适合于临床应用。热处理后样品的弹性模量得到改善,主要是因为样品的微观结构从α相变化到热处理后的α+β+β双相。此外,优质仿生多孔脊柱植入物的设计仍然需要针对医生的实际需求进行优化。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号