Data-driven multi-scale multi-physics models to derive process-structure-property relationships for additive manufacturing

被引:172
作者
Yan, Wentao [1 ]
Lin, Stephen [1 ]
Kafka, Orion L. [1 ]
Lian, Yanping [1 ]
Yu, Cheng [1 ]
Liu, Zeliang [1 ]
Yan, Jinhui [1 ]
Wolff, Sarah [1 ]
Wu, Hao [1 ]
Ndip-Agbor, Ebot [1 ]
Mozaffar, Mojtaba [1 ]
Ehmann, Kornel [1 ]
Cao, Jian [1 ]
Wagner, Gregory J. [1 ]
Liu, Wing Kam [1 ]
机构
[1] Northwestern Univ, Dept Mech Engn, Evanston, IL 60201 USA
基金
美国国家科学基金会;
关键词
Additive manufacturing; Thermal fluid flow; Data mining; Material modeling; ELECTRON-BEAM; THERMOMECHANICAL MODEL; MELT FLOW; PREDICTION; ENERGY; MICROSTRUCTURE; MICROMECHANICS; MECHANISMS; SIMULATION; FRAMEWORK;
D O I
10.1007/s00466-018-1539-z
中图分类号
O1 [数学];
学科分类号
0701 ; 070101 ;
摘要
Additive manufacturing (AM) possesses appealing potential for manipulating material compositions, structures and properties in end-use products with arbitrary shapes without the need for specialized tooling. Since the physical process is difficult to experimentally measure, numerical modeling is a powerful tool to understand the underlying physical mechanisms. This paper presents our latest work in this regard based on comprehensive material modeling of process-structure-property relationships for AM materials. The numerous influencing factors that emerge from the AM process motivate the need for novel rapid design and optimization approaches. For this, we propose data-mining as an effective solution. Such methods-used in the process-structure, structure-properties and the design phase that connects them-would allow for a design loop for AM processing and materials. We hope this article will provide a road map to enable AM fundamental understanding for the monitoring and advanced diagnostics of AM processing.
引用
收藏
页码:521 / 541
页数:21
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