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激光选区熔化成形Ti基金刚石复材力学及生物性能研究
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作者单位:

1.华侨大学制造工程研究院;2.华侨大学机电及自动化学院;3.内蒙古旭阳新材料股份有限公司;4.日本长冈技术科学大学

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中图分类号:

TN249; TG146.23; R318.08

基金项目:

国家重点研发计划(2025YFF0514000)、国家自然科学基金面上项目(52575494)、福建省优秀青年科学基金(2026J009056)、高等学校学科创新引智计划(B23011)


Study on mechanical and biological properties of Ti-based diamond composite materials formed by Selective Laser Melting
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Affiliation:

1.Institute of Manufacturing Engineering,Huaqiao University;2.Nagaoka University of Technology,Nagaoka -,Japan

Fund Project:

the National Key Research and Development Program of China, grant number No. 2025YFF0514000; the National Natural Science Foundation of China, grant number No. 52575494; Natural Science Foundation of Fujian Province, grant number No. 2026J009056; the 111 Project of China, grant number No. B23011.

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    摘要:

    针对激光增材制造制备医用钛合金(Ti6Al4V)多孔结构在临床应用中缺乏抗菌活性等问题,本研究采用激光选区熔化成形(Selective Laser Melting, SLM)技术制备Ti基金刚石复合材料,并系统开展了生物与力学性能研究。研究结果表明,参数为激光功率200 W、扫描速度1200 mm/s、扫描间距0.12 mm,制备出表面质量良好、金刚石分布均匀的Ti基金刚石复合材料及其多孔点阵结构;生物性能测试结果显示,通过采用金黄色葡萄球菌和大肠杆菌开展的抗菌性能实验,以及采用小鼠胚胎成骨细胞前体细胞进行的体外相容性实验,证实了所提出方法制备的样品表面具备优良的抗菌性能与高度的生物相容性;力学性能测试表明,孔隙率为50%、60%、70%的多孔点阵结构抗压强度和弹性模量依次为119.69±8.00 MPa与3.09±0.07 GPa、59.48±0.81 MPa与1.84±0.06 GPa、12.84±0.72 MPa与0.68±0.03 GPa。孔隙率为50%和60%的多孔点阵结构的压缩形变机制为沿45°斜面断裂失效,而孔隙率为70%的多孔点阵结构的压缩形变机制为逐层发生断裂而失效。建立了孔隙率与力学性能的Gibson-Ashby数学关系模型,与人体骨骼力学性能具有高度匹配性。

    Abstract:

    Aiming at the lack of antibacterial activity in clinical applications of porous structures made of medical titanium alloy (Ti6Al4V) by laser additive manufacturing, Ti-based diamond composites were fabricated in this study using selective laser melting (SLM) technology, and a systematic investigation of their biological and mechanical properties was conducted. With parameters set at a laser power of 200 W, a scanning speed of 1200 mm/s, scanning hatch of 0.12 mm, Ti-based diamond composite materials and their porous lattice structures with good surface quality and uniform diamond distribution are successfully prepared. The biological performance tests showed that, through the antibacterial performance experiments using Staphylococcus aureus and Escherichia coli, and the in vitro compatibility experiments using mouse embryonic osteoblast precursor cells confirmed that the surface of samples from the proposed method have excellent antibacterial properties and high biocompatibility. Mechanical tests show that the compressive strength and elastic modulus of porous lattice structures with porosities of 50%, 60% and 70% were measured as 119.69±8.00 MPa and 3.09±0.07 GPa, 59.48±0.81 MPa and 1.84±0.06 GPa, 12.84±0.72 MPa and 0.68±0.03 GPa. The compression deformation mechanism of porous lattice structures with 50% and 60% porosity is characterized by fracture failure along a 45° inclined plane, whereas the structure with 70% porosity failed through layer-by-layer fracture. The Gibson-Ashby mathematical model was established to describe the relationship between porosity and mechanical properties, and is found to be highly compatible with the mechanical properties of human bone.

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江晓鹏,徐仰立,郑欣颜,穆建安,曹玄扬,郭子涣,斋藤秀俊.激光选区熔化成形Ti基金刚石复材力学及生物性能研究[J].稀有金属材料与工程,,().[Jiang Xiaopeng, Xu Yangli, Zheng Xinyan, Mu Jianan, Cao Xuanyang, Guo Zihuan, Hidetoshi Saitoh. Study on mechanical and biological properties of Ti-based diamond composite materials formed by Selective Laser Melting[J]. Rare Metal Materials and Engineering,,().]
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  • 收稿日期:2026-04-28
  • 最后修改日期:2026-06-22
  • 录用日期:2026-07-14
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