Yan Chunze, Hao Liang, Hussein Ahmed, Wei Qingsong, Shi Yusheng
State key Laboratory of Materials Processing and Die & Mould Technology, Huazhong University of Science and Technology, Wuhan 430074, Hubei, China.
China University of Giosciences, Gemmological Institute, Lumo Road 388, Wuhan 430074, China.
Mater Sci Eng C Mater Biol Appl. 2017 Jun 1;75:1515-1524. doi: 10.1016/j.msec.2017.03.066. Epub 2017 Mar 10.
Ti-6Al-4V Gyroid triply periodic minimal surface (TPMS) lattices were manufactured by selective laser melting (SLM). The as-built Ti-6Al-4V lattices exhibit an out-of-equilibrium microstructure with very fine α' martensitic laths. When subjected to the heat treatment of 1050°C for 4h followed by furnace cooling, the lattices show a homogenous and equilibrium lamellar α+β microstructure with less dislocation and crystallographic defects compared with the as-built α' martensite. The as-built lattices present very rough strut surfaces bonded with plenty of partially melted metal particles. The sand blasting nearly removed all the bonded metal particles, but created many tiny cracks. The HCl etching eliminated these tiny cracks, and subsequent NaOH etching resulted in many small and shallow micro-pits and develops a sodium titanate hydrogel layer on the surfaces of the lattices. When soaked in simulated body fluid (SBF), the Ti-6Al-4V TPMS lattices were covered with a compact and homogeneous biomimetic hydroxyapatite (HA) layer. This work proposes a new method for making Ti-6Al-4V TPMS lattices with a homogenous and equilibrium microstructure and biomimetic HA coating, which show both tough and bioactive characteristics and can be promising materials usable as bone substitutes.
通过选择性激光熔化(SLM)制造了Ti-6Al-4V类螺旋面三重周期极小曲面(TPMS)晶格。增材制造的Ti-6Al-4V晶格呈现出一种非平衡微观结构,具有非常细小的α'马氏体板条。在1050°C下进行4小时的热处理并随后炉冷后,晶格呈现出均匀且平衡的层片状α+β微观结构,与增材制造的α'马氏体相比,位错和晶体缺陷更少。增材制造的晶格呈现出非常粗糙的支柱表面,上面粘结有大量部分熔化的金属颗粒。喷砂处理几乎去除了所有粘结的金属颗粒,但产生了许多微小裂纹。盐酸蚀刻消除了这些微小裂纹,随后的氢氧化钠蚀刻导致出现许多小而浅的微坑,并在晶格表面形成了一层钛酸钠水凝胶层。当浸泡在模拟体液(SBF)中时,Ti-6Al-4V TPMS晶格表面覆盖有一层致密且均匀的仿生羟基磷灰石(HA)层。这项工作提出了一种制造具有均匀且平衡微观结构以及仿生HA涂层的Ti-6Al-4V TPMS晶格的新方法,这些晶格兼具韧性和生物活性特性,有望成为可用作骨替代物的材料。