Thermal features and its effect on the properties of AISI 4140 fabricated by conventional and extreme high-speed laser material deposition

被引:0
作者
Li, Tianci [1 ,2 ]
Zhang, Dongyun [1 ,2 ]
Zhang, Lele [3 ,4 ]
Schopphoven, Thomas [5 ]
Gasser, Andres [5 ]
Poprawe, Reinhart [5 ]
机构
[1] Beijing Univ Technol, Sch Phys & Optoelect Engn, Beijing 100124, Peoples R China
[2] Beijing Engn Res Ctr 3D Printing Digital Med Hlth, Beijing 100124, Peoples R China
[3] Beijing Jiaotong Univ, Sch Mech Elect & Control Engn, Beijing 100044, Peoples R China
[4] Beijing Jiaotong Univ, Natl Int Sci & Technol Cooperat Base, Beijing 100044, Peoples R China
[5] Fraunhofer Inst Laser Technol ILT, Steinbachstr 15, D-52074 Aachen, Germany
基金
中国国家自然科学基金;
关键词
Extreme high-speed laser material deposition; AISI; 4140; Intrinsic heat treatment; Microstructure; Mechanical properties; INTRINSIC HEAT-TREATMENT; MICROSTRUCTURE; TEMPERATURE; PREDICTION;
D O I
10.1016/j.jmapro.2024.09.092
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The extreme high-speed laser material deposition (EHLA) process has the potential to enable additive manufacturing for mass production by overcoming the limitations of slow scanning speed in conventional laser material deposition (LMD) processes. Thermal features are the key factors to link process and properties. A sound understanding of process-thermal-property relationships is essential for performance control and process optimization of a deposited component. In this study, we studied the thermal characteristics within a single layer and among layers for continuous processing using the numerical method, and reveal the mechanism of microstructure and hardness changes of AISI 4140 material formed by EHLA and LMD processes through the analysis of thermal properties and temperature history results. The grain size and hardness evolution for both processes during single-layer cladding and continuous forming processes were investigated. The results revealed that the grain refinement effect in continuous LMD processing is stronger than that in EHLA process (from 30.0 mu m for single layer to 3.2 mu m for multi layers vs. from 18.6 mu m for single layer to 2.2 mu m for multi layers). Similar hardness values were obtained by LMD and EHLA processes, with mean values of 511 HV and 472 HV, respectively. The yield and tensile strengths of EHLA were superior to the conventional cast material, but inferior to those of the conventional material quenched and tempered at lower temperatures. The enhanced tensile results of EHLA process were found similar to those prepared through conventional method with quench and tempering at 600 degrees C.
引用
收藏
页码:1372 / 1387
页数:16
相关论文
共 50 条
[1]  
Achill Holzer, 2020, ENHANCED MAT PARTS O
[2]   Direct laser deposition of crack-free CM247LC thin walls: Mechanical properties and microstructural effects of heat treatment [J].
Alhuzaim, Abdullah ;
Imbrogno, Stano ;
Attallah, Moataz M. .
MATERIALS & DESIGN, 2021, 211
[3]   Effect of laser remelting on copper-nickel alloy coating prepared by extreme high-speed laser cladding [J].
An, Yudong ;
Zheng, Shaoxian ;
Pang, Xuming ;
Pu, Jibin .
JOURNAL OF MANUFACTURING PROCESSES, 2023, 95 :497-507
[4]   Laser intensity profile as a means to steer microstructure of deposited tracks in Directed Energy Deposition [J].
Bremer, Scholte J. L. ;
Luckabauer, Martin ;
Roemer, Gert-Willem R. B. E. .
MATERIALS & DESIGN, 2023, 227
[5]   Effect of surface morphology and microstructure on the hot corrosion behavior of TiC/IN625 coatings prepared by extreme high-speed laser cladding [J].
Chen, Lan ;
Zhang, Xinzhou ;
Wu, Yue ;
Chen, Chen ;
Li, Yongjian ;
Zhou, Wangfan ;
Ren, Xudong .
CORROSION SCIENCE, 2022, 201
[6]   Process development and impact of intrinsic heat treatment on the mechanical performance of selective laser melted AISI 4140 [J].
Damon, James ;
Koch, Robin ;
Kaiser, Daniel ;
Graf, Gregor ;
Dietrich, Stefan ;
Schulze, Volker .
ADDITIVE MANUFACTURING, 2019, 28 :275-284
[7]   Metallurgy, mechanistic models and machine learning in metal printing [J].
DebRoy, T. ;
Mukherjee, T. ;
Wei, H. L. ;
Elmer, J. W. ;
Milewski, J. O. .
NATURE REVIEWS MATERIALS, 2021, 6 (01) :48-68
[8]   Additive manufacturing of metallic components - Process, structure and properties [J].
DebRoy, T. ;
Wei, H. L. ;
Zuback, J. S. ;
Mukherjee, T. ;
Elmer, J. W. ;
Milewski, J. O. ;
Beese, A. M. ;
Wilson-Heid, A. ;
De, A. ;
Zhang, W. .
PROGRESS IN MATERIALS SCIENCE, 2018, 92 :112-224
[9]   Microstructure formation and mechanical properties of ODS steels built by laser additive manufacturing of nanoparticle coated iron-chromium powders [J].
Donate-Buendia, C. ;
Kuernsteiner, P. ;
Stern, F. ;
Wilms, M. B. ;
Streubel, R. ;
Kusoglu, I. M. ;
Tenkamp, J. ;
Bruder, E. ;
Pirch, N. ;
Barcikowski, S. ;
Durst, K. ;
Schleifenbaum, J. H. ;
Walther, F. ;
Gault, B. ;
Goekce, B. .
ACTA MATERIALIA, 2021, 206
[10]   Microstructure and properties of an as-deposited and heat treated martensitic stainless steel fabricated by direct laser deposition [J].
Fang, J. X. ;
Dong, S. Y. ;
Wang, Y. J. ;
Xu, B. S. ;
Zhang, Z. H. ;
Xia, D. ;
Ren, W. B. ;
He, P. .
JOURNAL OF MANUFACTURING PROCESSES, 2017, 25 :402-410