Interstitial elements created via metal 3D printing

被引:12
|
作者
Guo, Xiaolei [1 ]
Huang, Hsien-Lien [1 ]
Zhu, Menglin [1 ]
Hariharan, Karthikeyan [1 ]
Chien, Szu-Chia [1 ,2 ]
Huynh, Ngan [1 ]
Hwang, Jinwoo [1 ]
Windl, Wolfgang [1 ]
Taylor, Christopher D. [1 ]
Schindelholz, Eric J. [1 ]
Frankel, Gerald S. [1 ]
机构
[1] Ohio State Univ, Dept Mat Sci & Engn, Columbus, OH 43210 USA
[2] Natl Cent Univ, Dept Chem & Mat Engn, Taoyuan City 32001, Taiwan
关键词
3D printing; Stainless steel; Additive manufacturing; Laser powder bed fusion; Interstitial atoms; STAINLESS-STEEL; CORROSION-RESISTANCE; MODEL; WAVE;
D O I
10.1016/j.mattod.2023.04.020
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
3D printing of metals, such as laser powder bed fusion (LPBF) printing of stainless steels, often leads to elevated oxygen content in the alloy substrate relative to conventional processing routes. Here we show that the extremely rapid cooling rate (106-107 K/s) during LPBF processing of austenitic stainless steel can trap a considerable fraction of oxygen and other elements in the interstitial sites of the metal lattice, at concentrations far exceeding the room temperature solubilities. High resolution character-ization and atomistic simulations with density functional theory reveal that oxygen and other elements exist in octahedral interstitial sites of the metal lattice and bond with their neighboring metal atoms. Our findings suggest that additive manufacturing can be a potential strategy of incorporating beneficial interstitial elements into a metal substrate. Given the well-known effect of interstitial elements in conventional alloys, significant improvement of the physicochemical properties of printed alloys is possible.
引用
收藏
页码:92 / 104
页数:13
相关论文
共 50 条
  • [21] Biomedical Applications of Metal 3D Printing
    Velasquez-Garcia, Luis Fernando
    Kornbluth, Yosef
    ANNUAL REVIEW OF BIOMEDICAL ENGINEERING, VOL 23, 2021, 2021, 23 : 307 - 338
  • [22] Photopolymerized 3D Printing Materials for Optical Elements
    Chen, Yundong
    Ye, Piaoran
    Huang, Long
    Zhao, Shaoqing
    Zhang, Han
    Wang, Zhi
    Liu, Yuqing
    Liu, Hua
    ADVANCED OPTICAL MATERIALS, 2024, 12 (13):
  • [23] Design of an Interstitial Microwave Applicator for 3D Printing in the Body
    Hall, Kaitlin
    Zhang, Huanan
    Furse, Cynthia
    IEEE JOURNAL OF ELECTROMAGNETICS RF AND MICROWAVES IN MEDICINE AND BIOLOGY, 2020, 4 (04): : 260 - 264
  • [24] Bacterial Nanobionics via 3D Printing
    Joshi, Sudeep
    Cook, Ellexis
    Mannoor, Manu S.
    NANO LETTERS, 2018, 18 (12) : 7448 - 7456
  • [25] Dissolvable Metal Supports for 3D Direct Metal Printing
    Hildreth, Owen J.
    Nassar, Abdalla R.
    Chasse, Kevin R.
    Simpson, Timothy W.
    3D PRINTING AND ADDITIVE MANUFACTURING, 2016, 3 (02) : 90 - 97
  • [26] High-resolution metal 3D printing via digital light processing
    Melentiev, Ruslan
    Harakaly, Gyorgy
    Stogerer, Johannes
    Mitteramskogler, Gerald
    Wagih, A.
    Lubineau, Gilles
    Grande, Carlos A.
    ADDITIVE MANUFACTURING, 2024, 85
  • [27] Novel sprue designs in metal casting via 3D sand-printing
    Sama, Santosh Reddy
    Badamo, Tony
    Lynch, Paul
    Manogharan, Guha
    ADDITIVE MANUFACTURING, 2019, 25 : 563 - 578
  • [28] Toward Near-Perfect Diffractive Optical Elements via Nanoscale 3D Printing
    Wang, Hao
    Wang, Hongtao
    Zhang, Wang
    Yang, Joel K. W.
    ACS NANO, 2020, 14 (08) : 10452 - 10461
  • [29] Multifunctional biological scaffolds for spinal tumor surgery created by 3D printing
    Yang, Nan
    Hu, Shuya
    Wang, Shengbao
    Wang, Cong
    He, Qiang
    Wu, Qinfan
    Cao, Yun
    ARCHIVES OF CLINICAL PSYCHIATRY, 2023, 50 (01) : 9 - 16
  • [30] Metal 3D Printing Is Showing Its Mettle
    Patel, Prachi
    ACS CENTRAL SCIENCE, 2022, 8 (09) : 1231 - 1234