Explosive fragmentation of additively manufactured stainless steel

被引:5
作者
Callahan, M. [1 ]
Sun, D. [1 ]
Linne, M. A. [1 ]
Wu, A. S. [1 ]
Campbell, G. H. [1 ]
Friedman, B. [1 ]
Rodriguez, J. [1 ]
Burke, S. [1 ]
Lodes, A. [1 ]
Hansen, K. [1 ]
Mickelson, K. [1 ]
Wraith, R. [1 ]
Nicolino, J. J. [1 ]
Park, H. -s. [1 ]
机构
[1] Lawrence Livermore Natl Lab, 7000 East Ave, Livermore, CA 94550 USA
关键词
MECHANICAL-PROPERTIES; FRACTURE-TOUGHNESS; TENSILE PROPERTIES; DYNAMIC FRACTURE; VOID NUCLEATION; CRACK-GROWTH; BEHAVIOR; FAILURE; MICROSTRUCTURE; MORPHOLOGY;
D O I
10.1063/5.0170223
中图分类号
O59 [应用物理学];
学科分类号
摘要
Properties of fragmentation from an explosively driven 316L stainless steel spherical shell section fabricated by a laser powder bed additive manufacturing process with minimal surface finishing are investigated. This shell is driven by an insensitive high explosive, resulting in high strain rate deformation (>8 x 10(3) s(-1)) and failure of the stainless steel. Photonic Doppler velocimetry measures the expansion rate; dynamic radiography and high-speed imaging capture the fracture behavior of the stainless steel. The fracture response of the additively manufactured stainless steel shell is compared to published experimental results on additively manufactured 316L stainless steel and conventionally manufactured wrought 316L and 304 stainless steel shell fragmentation. Despite preferred crack orientation, suggesting the influence of surface grooves on fracture time, fragment size is identical to that measured in a similar experiment on wrought 304 stainless steel. Further analysis indicates that the 316L additively manufactured stainless steel shell exhibits comparable spall strength and fragmentation toughness to conventionally manufactured stainless steel yet lower failure strain due to surface stress concentrations.
引用
收藏
页数:14
相关论文
共 90 条
[21]   Microstructure-Toughness relationships in 316L stainless steel produced by laser powder bed fusion [J].
de Sonis, Edouard ;
Depinoy, Sylvain ;
Giroux, Pierre-Francois ;
Maskrot, Hicham ;
Wident, Pierre ;
Hercher, Olivier ;
Villaret, Flore ;
Gourgues-Lorenzon, Anne-Francoise .
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2023, 877
[22]  
DePiero S. C., 2009, Formulation and Characterization of LX-17-2 From new FK 800 Binder and WA, ATK, and BAE TATBs
[23]  
Dong X. L., 2015, 11 INT C MECH PHYS B
[24]   Modeling of ductile fragmentation that includes void interactions [J].
Fick, J. P. Meulbroek ;
Ramesh, K. T. ;
Swaminathan, P. K. .
JOURNAL OF THE MECHANICS AND PHYSICS OF SOLIDS, 2015, 85 :54-73
[25]   HIGH STRAIN-RATE CRACK-GROWTH IN RATE-DEPENDENT PLASTIC SOLIDS [J].
FREUND, LB ;
HUTCHINSON, JW .
JOURNAL OF THE MECHANICS AND PHYSICS OF SOLIDS, 1985, 33 (02) :169-191
[26]  
Gardner L, 2023, STRUCTURES, V47, P2178, DOI [10.1016/j.istruc.2022.12.039, 10.1201/9781003348450-1]
[27]   Variation of elastic mechanical properties with texture, porosity, and defect characteristics in laser powder bed fusion 316L stainless steel [J].
Garlea, E. ;
Choo, H. ;
Sluss, C. C. ;
Koehler, M. R. ;
Bridges, R. L. ;
Xiao, X. ;
Ren, Y. ;
Jared, B. H. .
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2019, 763
[28]   PROPAGATION OF CLEAVAGE CRACKS IN CRYSTALS [J].
GILMAN, JJ .
JOURNAL OF APPLIED PHYSICS, 1956, 27 (11) :1262-1269
[29]   Metal additive manufacturing in the commercial aviation industry: A review [J].
Gisario, Annamaria ;
Kazarian, Michele ;
Martina, Filomeno ;
Mehrpouya, Mehrshad .
JOURNAL OF MANUFACTURING SYSTEMS, 2019, 53 :124-149
[30]   Investigation of the fracture and fragmentation of explosively driven rings and cylinders [J].
Goto, D. M. ;
Becker, R. ;
Orzechowski, T. J. ;
Springer, H. K. ;
Sunwoo, A. J. ;
Syn, C. K. .
INTERNATIONAL JOURNAL OF IMPACT ENGINEERING, 2008, 35 (12) :1547-1556