分子生物学
IVD分子诊断
细胞培养与分析
蛋白研究
细胞因子
重组蛋白
抗体
高通量测序建库
病原检测UCF系列
生物医药
工具酶
抑制剂激活剂与常用试剂
仪器
耗材

Additively manufactured Ti-6Al-4V/Ta bimetal: from neutron diffraction residual stress analysis to wear and bioproperty testings

Hao Wang\u003Csup\u003E1\u003C\u002Fsup\u003E, Ke Ma\u003Csup\u003E1,2\u003C\u002Fsup\u003E, Jincheng Tang\u003Csup\u003E2,3\u003C\u002Fsup\u003E, Jing Zhao\u003Csup\u003E2\u003C\u002Fsup\u003E, Hanc

Journal:Microstructures

IF:8.5

DOI:10.20517/microstructures.2025.04

PMID:

Published:2026-03-30

research field:生物医学工程增材制造材料科学机械工程冶金学

Abstract

Powder bed fusion-laser beam prepared Ti-6Al-4V/Ta bimetals can be well-suited for advanced biomedical applications. However, a few issues remain unsolved, including (a) understanding of residual stress distribution and its level in as-printed bimetal; and (b) wear and bio properties of the bimetal. This study aims to address these points through a series of investigations, including residual stress analysis by neutron diffraction, printing optimization, and analysis of heat treatment effect on the properties. It was discovered that the residual stress is highly related to the temperature gradient and Young’s modulus. In the interface region of the as-printed bimetal, the residual stress was reduced and inverted compared to the as-printed Ta alone, changing from ~ (140-180) MPa (tensile) to ~ (30-70) MPa (compressive), which may have helped the Ta layer bond effectively with the Ti-6Al-4V matrix. Meanwhile, a high residual stress (~ 390 MPa) in the Ti-6Al-4V part of the as-printed bimetal justifies the need for heat treatment. After heat treatment, the bimetal exhibited good biocompatibility and much improved wear and corrosion resistance compared to Ti-6Al-4V alone. These improvements may be attributed to the formation of tantalum oxide during friction and corrosion processes. Ta layer can also improve the biocompatibility due to its intrinsic noncytotoxic feature.

本文使用的Yeasen产品

相关产品
购物车
客服
转染试用