Electroplating Additively Manufactured Honeycomb Structures to Increase Energy Absorption Under Quasi-Static Crush

被引:3
作者
Murray, Colleen [1 ]
Wise, Sean [2 ]
Wereley, Norman M. [1 ]
机构
[1] Univ Maryland, Composites Res Lab, College Pk, MD 20742 USA
[2] RePliForm Inc, Baltimore, MD USA
关键词
Additive Manufacturing; Stereolithography; Electroplating; Energy Absorption; Crush Efficiency;
D O I
10.33599/S.I.v6Ono4.04
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Honeycomb (HC) has been used in energy absorption applications due to its high stiffness and low density. Metallic HC are used for energy absorption applications, however, these metallic structures can be challenging to manufacture if complex geometric features designed to improve energy absorption are used, which motivates the use of additive manufacturing (AM). Metal AM methods include powder bed fusion (PBF) and direct energy deposition (DED). In addition to capital equipment cost, these processes possess challenges that include a required inert environment, powder handling, final part porosity, residual stresses, and nonuniform surface finish. These concerns can be alleviated through the use of polymer AM, however, polymeric parts exhibit brittle failure and have a lower stiffness than metallic HC structures. In this study, a low-cost 3D polymer printing method, stereolithography (SLA), is combined with a conventional electroplating process to fabricate a metal -plastic composite HC structure with energy absorption capability much greater than of a plastic HC structures of the same nominal volume. SLA parts have a smooth surface, so that the surface finish is at least as uniform after electroplating as the SLA part. The energy absorption characteristics of the electroplated HC is studied to determine how these energy absorbing materials can be manufactured at reduced cost. Our study confirms that the metal -plastic composite HC increases both the crush strain range and the mean crush stress of these samples, resulting in metal -plastic composite HC structures with substantially increased energy absorption. This study also examines how buckling initiators (Bls), or diamond shaped holes located at 50, 75, and 100% of the height of the hexagonal cell vertices, can influence energy absorption performance. This study shows that it is feasible to fabricate electroplated HCs, using an SLA preform, to achieve a substantial increase in energy absorption over using SLA alone.
引用
收藏
页码:38 / 45
页数:8
相关论文
共 8 条
[1]   Stereolithography based 3D-printed microfluidic device with integrated electrochemical detection [J].
Costa, Brenda M. de C. ;
Griveau, Sophie ;
Bedioui, Fethi ;
d' Orlye, Fanny ;
da Silva, Jose Alberto F. ;
Varenne, Anne .
ELECTROCHIMICA ACTA, 2022, 407
[2]   Critical review of the state of the art in multi-material fabrication via directed energy deposition [J].
Feenstra, D. R. ;
Banerjee, R. ;
Fraser, H. L. ;
Huang, A. ;
Molotnikov, A. ;
Birbilis, N. .
CURRENT OPINION IN SOLID STATE & MATERIALS SCIENCE, 2021, 25 (04)
[3]   A Review of Stereolithography: Processes and Systems [J].
Huang, Jigang ;
Qin, Qin ;
Wang, Jie .
PROCESSES, 2020, 8 (09)
[4]   A comprehensive review of the methods and mechanisms for powder feedstock handling in directed energy deposition [J].
Singh, Ambrish ;
Kapil, Sajan ;
Das, Manas .
ADDITIVE MANUFACTURING, 2020, 35
[5]   Recent advances in novel metallic honeycomb structure [J].
Wang, Zhonggang .
COMPOSITES PART B-ENGINEERING, 2019, 166 :731-741
[6]   Tailorable Energy Absorbing Cellular Materials via Sintering of Dry Powder Printed Hollow Glass Microspheres [J].
Wereley, Norman ;
Park, Jungjin ;
Howard, John ;
DeMay, Matthew ;
Edery, Avi .
SAMPE JOURNAL, 2024, 60 (03) :42-51
[7]   Additive Manufacturing of Titanium Alloys by Electron Beam Melting: A Review [J].
Zhang, Lai-Chang ;
Liu, Yujing ;
Li, Shujun ;
Hao, Yulin .
ADVANCED ENGINEERING MATERIALS, 2018, 20 (05)
[8]   Dynamic compressive response of additively manufactured AlSi10Mg alloy hierarchical honeycomb structures [J].
Zhang, Yuwu ;
Liu, Tao ;
Ren, Huan ;
Maskery, Ian ;
Ashcroft, Ian .
COMPOSITE STRUCTURES, 2018, 195 :45-59