Military Comparison of 3D Printed Vs Commercial Components

被引:4
|
作者
Booth, Janice [1 ]
Edwards, Eugene [1 ]
Whitley, Michael [2 ]
Kranz, Michael [2 ]
Seif, Mohamed [3 ]
Ruffin, Paul [3 ]
机构
[1] US Army Res Dev & Engn Command, Redstone Arsenal, AL 35898 USA
[2] EngeniusMicro, Huntsville, AL 35801 USA
[3] Alabama A&M Univ, Normal, AL 35762 USA
关键词
nano-based precision weaponry; fused deposition modeling; components shear properties; 3D printing; additive manufacturing; direct digital printing; open-source hardware; RF components;
D O I
10.1117/12.2300773
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
The Army continues the development of 3D printing technology to enhance the capability to produce smaller and lighter precision weaponry. Researchers and support organizations that are affiliated with the Army Aviation and Missile Research, Development, and Engineering Center (AMRDEC) are developing nano based structures and components for advanced weaponry, aviation, and autonomous air/ground systems applications. The first key area consists of determining in-plane and out-of-plane shear properties of test articles made by 3D printing (Fused Deposition Modeling - FDM) and comparing to the conventional extrusion/forming sheet process. Test specimens are made from three polymer materials: acrylonitrile butadiene styrene (ABS), high impact poly-styrene (HIPS), and poly-lactic acid (PLA). Laboratory testing is performed according to the ASTM D3846-02 method for determining the in-plane shear strength, while the ASTM D5379 method is used for determining the out-of-plane shear properties. A description on how the 3D printing process advances the shear properties and has the potential of improving the in-plane and cross-sectional shear properties over the conventional manufacturing process is presented. The second key area demonstrates a set of materials, processes, and techniques that support the enabling of additive manufacture (AM) of RF components. Research activities are focused on developing open-source hardware/software multi-material direct digital printing, and producing 3D printed antenna, passive components, and connectors for C-band and Ku-band systems. Material studies have demonstrated a suitable material set for RF components and identified key material performance limits. Results show how more enhancement could be achieved by optimizing the variables that affect 3D printing.
引用
收藏
页数:15
相关论文
共 50 条
  • [1] 3D Printed Microwave and THz Components
    Liang, Min
    Xin, Hao
    2015 ASIA-PACIFIC MICROWAVE CONFERENCE (APMC), VOLS 1-3, 2015,
  • [2] Research on 3D printed fixture components
    Chitariu, Dragos-Florin
    Munteanu, Adriana
    22ND INTERNATIONAL CONFERENCE ON INNOVATIVE MANUFACTURING ENGINEERING AND ENERGY - IMANE&E 2018, 2018, 178
  • [4] Laser polishing of 3D printed mesoscale components
    Bhaduri, Debajyoti
    Penchev, Pavel
    Batal, Afif
    Dimov, Stefan
    Soo, Sein Leung
    Sten, Stella
    Harrysson, Urban
    Zhang, Zhenxue
    Dong, Hanshan
    APPLIED SURFACE SCIENCE, 2017, 405 : 29 - 46
  • [5] Influence of Thermal Processing for 3D Printed Components
    Alexandrescu, Dragos
    Antoniac, Iulian
    Olteanu, Cristian
    Anghel, Lucretia
    Sarbu, Nicolae
    Ciocoiu, Robert
    Scutariu, Mihaela Monica
    Surlari, Zinovia
    Ioanid, Nicoleta
    Stefanescu, Victorita
    MATERIALE PLASTICE, 2021, 58 (04) : 250 - 260
  • [6] Sliding Functionality for 3D Printed Lightweight Components
    Panaitescu, Ileana
    Ripoll, Manel Rodríguez
    Katsich, Christian
    Hubmann, Reinhard
    Badisch, Ewald
    BHM Berg- und Huttenmannische Monatshefte, 2021, 166 (05): : 250 - 255
  • [7] 3D Printed vs. Commercial Polypropylene Surgical Meshes: a Comparative Analysis of Tensile Strength
    Galvan-Chacon, Victor P.
    Patrocinio, David
    Duarte-Leon, Maria
    Blas Pagador, J.
    Sanchez Margallo, Francisco Miguel
    2021 INTERNATIONAL CONFERENCE ON E-HEALTH AND BIOENGINEERING (EHB 2021), 9TH EDITION, 2021,
  • [8] Commercial filament testing for use in 3D printed phantoms
    Savi, Matheus
    Andrade, Marco A. B.
    Potiens, Maria P. A.
    RADIATION PHYSICS AND CHEMISTRY, 2020, 174
  • [9] Patient-Specific 3D Printed Models of Renal Tumours Using Home-Made 3D Printer in Comparison with Commercial 3D Printer
    Liu, Dongting
    Sun, Zhonghua
    Chaichana, Thanapong
    Ducke, Werner
    Fan, Zhanming
    JOURNAL OF MEDICAL IMAGING AND HEALTH INFORMATICS, 2018, 8 (02) : 303 - 308
  • [10] 3D Printed Acetabular Components for Complex Revision Arthroplasty
    Angela Yao
    Daniel Mark George
    Vijai Ranawat
    Chris John Wilson
    Indian Journal of Orthopaedics, 2021, 55 : 786 - 792