航空典型金属材料增材制造组织、缺陷、表面、构型研究进展
Research progress on microstructure, defects, surface and configuration of additive manufactured typical aviation metals
查看参考文献51篇
文摘
|
增材制造是一种集激光、数字化、材料等学科为一体的新型制造技术,具有降维制造、复杂成型、材料利用率高等优点,是材料加工领域中最具应用前景的技术之一,金属增材制造技术已在航空领域得到广泛研究和应用,国内外学者在航空金属材料增材制造方面的研究不断深入。中国航发增材制造技术创新中心在金属增材制造结构四要素——组织、缺陷、表面、构型方面开展了大量研究并获得一些数据,发现了一些现象和规律,包括组织接续生长特征及其对力学性能的影响;典型材料增材制造常见缺陷(气孔、裂纹、未熔合)特征、形成原因及其对力学性能特别是疲劳性能的影响机制;零件表面粗糙度与成形角度的关系及对疲劳性能的影响;金属增材制造构型的影响因素。在此基础上,总结了金属增材制造发展中存在的问题,对下一步重点提出了建议,并对未来研究工作提出了展望。 |
其他语种文摘
|
Additive manufacturing is a new manufacturing technique that integrates laser, digitization, materials and other disciplines. It has the advantages of dimensionality reduction manufacturing, complex forming, and high material utilization. It is one of the most promising techniques in the field of material processing. Metal additive manufacturing technique has been widely studied and applied in the aviation field. The research on the additive manufacturing of aviation metal materials by domestic and foreign scholars continues to deepen. AECC Additive Manufacturing Technology Innovation Center has carried out a quantity of research and obtained some data from the four factors of metal additive manufacturing: microstructure, defects, surface and configuration. Some phenomena and laws have been found, including the characteristics and influencing factors of microstructure continuous growth; influence of the structure on mechanical properties; the characteristics and causes of common defects(pores, cracks, incomplete fusion) in additive manufactured typical materials and their influence mechanism on mechanical properties, especially fatigue properties; the relation between surface roughness and forming angles, and the influence of surface states on fatigue properties; factors influencing configuration of metal additive manufacturing. Finally, the problems existing in the development of metal additive manufacturing are summarized, and the suggestions for future research and development are put forward. |
来源
|
航空材料学报
,2024,44(1):1-14 【核心库】
|
DOI
|
10.11868/j.issn.1005-5053.2023.000230
|
关键词
|
增材制造
;
组织
;
缺陷
;
表面
;
构型
|
地址
|
1.
中国航发增材制造技术创新中心, 中国航发增材制造技术创新中心, 北京, 100095
2.
中国航发北京航空材料研究院3D打印研究与工程技术中心, 北京, 100095
|
语种
|
中文 |
文献类型
|
综述型 |
ISSN
|
1005-5053 |
学科
|
金属学与金属工艺 |
文献收藏号
|
CSCD:7676460
|
参考文献 共
51
共3页
|
1.
张学军. 3D打印技术研究现状和关键技术.
材料工程,2016,44(2):122-128
|
CSCD被引
118
次
|
|
|
|
2.
卢秉恒. 增材制造技术———现状与未来.
中国机械工程,2020,31(1):19-23
|
CSCD被引
87
次
|
|
|
|
3.
孟伟. 3D打印技术及应用趋势分析.
科技创新与应用,2021(11):146-148
|
CSCD被引
4
次
|
|
|
|
4.
杨延华. 增材制造(3D打印)分类及研究进展.
航空工程进展,2019,10(3):309-318
|
CSCD被引
19
次
|
|
|
|
5.
刘伟. 复杂结构与高性能材料增材制造技术进展.
机械工程学报,2019,55(20):128-151
|
CSCD被引
52
次
|
|
|
|
6.
Huang S. Microstructure and property evaluation of TA15 titanium alloy fabricated by selective laser melting after heat treatment.
Optics & Laser Technology,2021,144:107422
|
CSCD被引
8
次
|
|
|
|
7.
Tan C. Progress and perspectives in laser additive manufacturing of key aeroengine materials.
International Journal of Machine Tools and Manufacture,2021,170:103804
|
CSCD被引
49
次
|
|
|
|
8.
Yong C K. A critical review of the material characteristics of additive manufactured IN718 for high-temperature application.
Metals,2020,10(12):1576
|
CSCD被引
4
次
|
|
|
|
9.
3DPRINTINGINDUSTRY.
GE cuts costs by 35% in move from casting to 3D pringting technology,2021
|
CSCD被引
1
次
|
|
|
|
10.
GE.
GE aviation and GE additive engineers have switched four existing parts from castings to metal 3D printing-and see potential for hundreds more,2021
|
CSCD被引
2
次
|
|
|
|
11.
Teng C. A review of defect modeling in laser material processing.
Additive Manufacturing,2017,14:137-147
|
CSCD被引
12
次
|
|
|
|
12.
Afazov S. Distortion prediction and compensation in selective laser melting.
Additive Manufacturing,2017,17:15-22
|
CSCD被引
4
次
|
|
|
|
13.
Qian M. Additive manufacturing of titanium alloys.
Journal of the Minerals Metals & Materials Society,2017,69(12):2677-2678
|
CSCD被引
2
次
|
|
|
|
14.
王华明. 高性能大型金属构件激光增材制造:若干材料基础问题.
航空学报,2014,35(10):2690-2698
|
CSCD被引
218
次
|
|
|
|
15.
林鑫. 应用于航空领域的金属高性能增材制造技术.
中国材料进展,2015,34(9):684-688
|
CSCD被引
79
次
|
|
|
|
16.
王天元. 航空装备激光增材制造技术发展及路线图.
航空材料学报,2023,43(1):1-17
|
CSCD被引
12
次
|
|
|
|
17.
Kurz W. Theory of microstructural development during rapid solidification.
Acta Metallurgica,1986,34(5):823-830
|
CSCD被引
195
次
|
|
|
|
18.
Gaumann M. Epitaxial laser metal forming: analysis of microstructure formation.
Materials Science and Engineering: A,1999,271(1):232-241
|
CSCD被引
91
次
|
|
|
|
19.
冀国锋. 风扇/压气机增材制造技术的应用与发展趋势.
航空动力,2020(2):75-78
|
CSCD被引
4
次
|
|
|
|
20.
Gaumann M. Single-crystal laser deposition of superalloys: processingmicrostructure maps.
Acta Materialia,2001,49(6):1051-1062
|
CSCD被引
132
次
|
|
|
|
|