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激光能量密度、内部孔隙率及热处理对采用直接金属激光烧结技术制备的生物医学Ti6Al4V合金力学行为的影响

Effect of Laser Energy Density, Internal Porosity and Heat Treatment on Mechanical Behavior of Biomedical Ti6Al4V Alloy Obtained with DMLS Technology.

作者信息

Żaneta Anna Mierzejewska

机构信息

Bialystok University of Technology, Faculty of Mechanical Engineering, Wiejska 45c Street, 15-351 Białystok, Poland.

出版信息

Materials (Basel). 2019 Jul 22;12(14):2331. doi: 10.3390/ma12142331.

Abstract

The purpose of this paper was to determine the influence of selected parameters of Direct Metal Laser Sintering and various heat treatment temperatures on the mechanical properties of Ti6Al4V samples oriented vertically (V, ZX) and horizontally (H, XZ). The performed micro-CT scans of as-build samples revealed that the change in laser energy density significantly influences the change in porosity of the material, which the parameters (130-210 W; 300-1300 mm/s), from 9.31% (130 W, 1300 mm/s) to 0.16% (190 W, 500 mm/s) are given. The mechanical properties, ultimate tensile strength (UTS, Rm) and yield strength (YS, Re) of the DMLS as-build samples, were higher than the ASTM F 1472 standard suggestion (UTS = 1100.13 ± 126.17 MPa, YS = 1065.46 ± 127.91 MPa), and simultaneously, the elongation at break was lower than required for biomedical implants (A = 4.23 ± 1.24%). The low ductility and high UTS were caused by a specific microstructure made of α' martensite and columnar prior β grains. X-Ray Diffraction (XRD) analysis revealed that heat treatment at 850 °C for 2 h caused the change of the microstructure intothe α + β combination, affecting the change of strength parameters-a reduction of UTS and YS with the simultaneous increase in elongation (A). Thus, properties similar to those indicated by the standard were obtained (UTS = 908.63 ± 119.49 MPa, YS = 795.9 ± 159.32 MPa, A = 8.72 ± 2.51%), while the porosity remained almost unchanged. Moreover, the heat treatment at 850 °C resulted in the disappearance of anisotropic material properties caused by the layered structure (UTS = 908.36 ± 122.79 MPa, UTS = 908.97 ± 118.198 MPa, YS = 807.83 ± 124.05 MPa, YS = 810.56 ± 124.05 MPa, A = 8.75 ± 2.65%, and A = 8.68 ± 2.41%).

摘要

本文的目的是确定直接金属激光烧结的选定参数以及不同热处理温度对垂直取向(V,ZX)和平行取向(H,XZ)的Ti6Al4V样品力学性能的影响。对成型态样品进行的微观计算机断层扫描显示,激光能量密度的变化显著影响材料孔隙率的变化,所给出的参数(130 - 210 W;300 - 1300 mm/s)下,孔隙率从9.31%(130 W,1300 mm/s)变化到0.16%(190 W,500 mm/s)。直接金属激光烧结成型态样品的力学性能,即极限抗拉强度(UTS,Rm)和屈服强度(YS,Re),高于ASTM F 1472标准建议值(UTS = 1100.13 ± 126.17 MPa,YS = 1065.46 ± 127.91 MPa),同时,断裂伸长率低于生物医学植入物所需值(A = 4.23 ± 1.24%)。低延展性和高极限抗拉强度是由α'马氏体和柱状初生β晶粒组成的特定微观结构造成的。X射线衍射(XRD)分析表明,在850℃下热处理2小时导致微观结构转变为α + β组合,影响强度参数的变化——极限抗拉强度和屈服强度降低,同时伸长率增加(A)。因此,获得了与标准所示性能相似的性能(UTS = 908.63 ± 119.49 MPa,YS = 795.9 ± 159.32 MPa,A = 8.72 ± 2.51%),而孔隙率几乎保持不变。此外,850℃的热处理导致由层状结构引起的材料各向异性性能消失(UTS = 908.36 ± 122.79 MPa,UTS = 908.97 ± 118.198 MPa,YS = 807.83 ± 124.05 MPa,YS = 810.56 ± 124.05 MPa,A = 8.75 ± 2.65%,以及A = 8.68 ± 2.41%)。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/df3e/6678663/b0d714a6ca40/materials-12-02331-g001.jpg

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