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Mendeleev Communications, 2022, Volume 32, Issue 2, Pages 228–230
DOI: https://doi.org/10.1016/j.mencom.2022.03.025
(Mi mendc622)
 

This article is cited in 9 scientific papers (total in 9 papers)

Communications

FDM 3D printing of combustible structures: First results

K. A. Monogarova, I. V. Fomenkovb, A. N. Pivkinaa

a N.N. Semenov Federal Research Center for Chemical Physics, Russian Academy of Sciences, Moscow, Russian Federation
b N.D. Zelinsky Institute of Organic Chemistry, Russian Academy of Sciences, Moscow, Russian Federation
Full-text PDF (769 kB) Citations (9)
Abstract: For the first time, complex geometry combustible structures of an ammonium perchlorate–polylactic acid composite have been successfully printed using fused deposition modeling (FDM). The structural and energetic capabilities of the printed structures are demonstrated. Combined with the ability to be produced by FDM printing, these combustible elements could afford many practical applications.
Keywords: fused deposition modeling, additive manufacturing, 3D printing, energetic materials, ammonium perchlorate, polylactic acid, combustible structures.
Document Type: Article
Language: English


Citation: K. A. Monogarov, I. V. Fomenkov, A. N. Pivkina, “FDM 3D printing of combustible structures: First results”, Mendeleev Commun., 32:2 (2022), 228–230
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  • https://www.mathnet.ru/eng/mendc/v32/i2/p228
  • This publication is cited in the following 9 articles:
    1. Farideddin Bazzal, Jonas S. Hoffmann, Gregory Young, Michael J. Bortner, Christopher B. Williams, “Direct Ink Writing of Aluminized Solid Fuels for Hybrid Rockets Using a Dual-Cure Approach”, ACS Appl. Eng. Mater., 2025  crossref
    2. Chao Guo, Hao Cui, Hao Ren, Lei Xiao, Xiaohui Gu, Yuyong Tang, Hao Zhou, Yongliang Yang, Rui Guo, “Experimental Investigation of Quasi‐Static Compressive Properties of Polymer‐Bonded Explosives (PBX) Based on UV‐Curing 3D Printing”, Propellants Explo Pyrotec, 2024  crossref
    3. Joseph Kalman, Aaren Cortes, Fangyuan Tian, “Surface modification effects on ammonium perchlorate wettability”, Applied Surface Science, 678 (2024), 161108  crossref
    4. Ya.A. Dubkova, D.A. Tkachev, Ya.Yu. Verkhoshanskii, I.A. Belchikov, “on the possibility of forming solid combustibles using additive DLP method”, Yuzhno-Sibirskii nauchnyi vestnik, 2023, no. 5(51), 183  crossref
    5. A. H. Kadhum, Salah Al-Zubaidi, Salah S. Abdulkareem, “Effect of the Infill Patterns on the Mechanical and Surface Characteristics of 3D Printing of PLA, PLA+ and PETG Materials”, ChemEngineering, 7:3 (2023), 46  crossref
    6. Ali H. Kadhum, Salah Al-Zubaidi, Salah Sabeeh Abed AlKareem, Andreas Bück, “Optimization of Mechanical Properties and Surface Characteristics of PLA+ 3D Printing Materials”, International Journal of Chemical Engineering, 2023 (2023), 1  crossref
    7. Dmitrii Tkachev, Yana Dubkova, Alexander Zhukov, Yanis Verkhoshanskiy, Alexander Vorozhtsov, Ilya Zhukov, “Photocurable High-Energy Polymer-Based Materials for 3D Printing”, Polymers, 15:21 (2023), 4252  crossref
    8. Justin Lajoie, Jacob Blocker, Travis Sippel, “Rheological, Ballistic, and Mechanical Properties of 3D Printed, Photocured Composite Propellants”, Journal of Propulsion and Power, 39:6 (2023), 936  crossref
    9. S. Ganeshkumar, S. Dharani Kumar, U. Magarajan, S. Rajkumar, B. Arulmurugan, Shubham Sharma, Changhe Li, R. A. Ilyas, Mohamed Fathy Badran, “Investigation of Tensile Properties of Different Infill Pattern Structures of 3D-Printed PLA Polymers: Analysis and Validation Using Finite Element Analysis in ANSYS”, Materials, 15:15 (2022), 5142  crossref
    Citing articles in Google Scholar: Russian citations, English citations
    Related articles in Google Scholar: Russian articles, English articles
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