Jove
Visualize
Contact Us
JoVE
x logofacebook logolinkedin logoyoutube logo
ABOUT JoVE
OverviewLeadershipBlogJoVE Help Center
AUTHORS
Publishing ProcessEditorial BoardScope & PoliciesPeer ReviewFAQSubmit
LIBRARIANS
TestimonialsSubscriptionsAccessResourcesLibrary Advisory BoardFAQ
RESEARCH
JoVE JournalMethods CollectionsJoVE Encyclopedia of ExperimentsArchive
EDUCATION
JoVE CoreJoVE BusinessJoVE Science EducationJoVE Lab ManualFaculty Resource CenterFaculty Site
Terms & Conditions of Use
Privacy Policy
Policies

Related Concept Videos

You might also read

Related Articles

Articles linked to this work by shared authors, journal, and citation graph.

Sort by
Same author

Regularities in the Evolution of Thermoelastic Martensitic Transformations during Cooling/Heating in the Free State and under Load of Titanium Nickelide Alloyed with Niobium.

Materials (Basel, Switzerland)·2024
Same author

Nanocomposites Based on Polyethylene and Nickel Ferrite: Preparation, Characterization, and Properties.

Polymers·2023
Same author

Mathematical Model of Propagation of an Aerosol Created by an Impulse Method in Space.

Materials (Basel, Switzerland)·2023
Same author

Structure and Frictional Properties of Ultrahard AlMgB<sub>14</sub> Thin Coatings.

Nanomaterials (Basel, Switzerland)·2023
Same author

Mathematical modeling of high-energy materials rheological behavior in 3D printing technology.

Heliyon·2023
Same author

Functionalization of the Surface of Porous Nickel-Titanium Alloy with Macrocyclic Compounds.

Materials (Basel, Switzerland)·2023

Related Experiment Video

Updated: Jul 11, 2025

Stereolithographic 3D Printing with Renewable Acrylates
08:28

Stereolithographic 3D Printing with Renewable Acrylates

Published on: September 12, 2018

9.5K

Photocurable High-Energy Polymer-Based Materials for 3D Printing.

Dmitrii Tkachev1, Yana Dubkova1, Alexander Zhukov1

  • 1Laboratory of Metallurgy Nanotechnologies, National Research Tomsk State University, Lenin Avenue, 36, 634050 Tomsk, Russia.

Polymers
|November 14, 2023
PubMed
Summary

Digital light processing (DLP) 3D printing of high-energy materials is advanced using a UV-cured polymer resin. This method enables the fabrication of complex, high-energy components with improved properties.

Keywords:
additive manufacturingburning ratehigh-energy materialsphotopolymerstereolithographystructure

More Related Videos

3D Printing and In Situ Surface Modification via Type I Photoinitiated Reversible Addition-Fragmentation Chain Transfer Polymerization
07:28

3D Printing and In Situ Surface Modification via Type I Photoinitiated Reversible Addition-Fragmentation Chain Transfer Polymerization

Published on: February 18, 2022

3.8K
Author Spotlight: Quantitative Characterization of Liquid Photosensitive Bioink Properties for Continuous Digital Light Processing Based Printing
04:32

Author Spotlight: Quantitative Characterization of Liquid Photosensitive Bioink Properties for Continuous Digital Light Processing Based Printing

Published on: April 14, 2023

938

Related Experiment Videos

Last Updated: Jul 11, 2025

Stereolithographic 3D Printing with Renewable Acrylates
08:28

Stereolithographic 3D Printing with Renewable Acrylates

Published on: September 12, 2018

9.5K
3D Printing and In Situ Surface Modification via Type I Photoinitiated Reversible Addition-Fragmentation Chain Transfer Polymerization
07:28

3D Printing and In Situ Surface Modification via Type I Photoinitiated Reversible Addition-Fragmentation Chain Transfer Polymerization

Published on: February 18, 2022

3.8K
Author Spotlight: Quantitative Characterization of Liquid Photosensitive Bioink Properties for Continuous Digital Light Processing Based Printing
04:32

Author Spotlight: Quantitative Characterization of Liquid Photosensitive Bioink Properties for Continuous Digital Light Processing Based Printing

Published on: April 14, 2023

938

Area of Science:

  • Materials Science
  • Additive Manufacturing
  • Polymer Chemistry

Background:

  • Digital Light Processing (DLP) is a promising additive manufacturing technique for high-energy materials due to its non-thermal nature.
  • Existing methods often involve high temperatures, which can be detrimental to the stability of high-energy materials.
  • UV-cured photopolymers offer a potential solution for 3D printing energetic materials.

Purpose of the Study:

  • To investigate the feasibility of using a UV-cured urethane methacrylate polymer for DLP 3D printing of high-energy materials.
  • To characterize the polymerization behavior, mechanical properties, and thermal performance of the developed photocurable resin.
  • To evaluate the potential of this approach for fabricating complex, high-energy systems.

Main Methods:

  • Formulation of a UV-cured urethane methacrylate polymer containing 70 wt.% ammonium salt-based high-energy solid powder.
  • Study of the polymerization kinetics and curing depth as a function of UV light power density.
  • Mechanical testing (compressive and tensile strength) and thermogravimetric analysis (TGA) of the 3D printed samples.
  • Measurement of burning rate under varying pressure conditions.

Main Results:

  • Increased UV radiation transparency of the powder enhanced curing depth, ranging from 600 µm to 2 mm.
  • DLP 3D printed parts achieved 92% of full density with compressive strength of 29 ± 3 MPa and tensile strength of 13 ± 1.3 MPa.
  • Thermogravimetric analysis indicated a decrease in decomposition temperature for the composite resin, accompanied by significant heat generation.
  • Burning rate increased from 0.74 to 3.68 mm/s with pressure increase from 0.1 to 4 MPa.

Conclusions:

  • DLP 3D printing using the proposed UV photocurable resin is a viable method for fabricating high-energy materials.
  • The technique allows for the production of complex-profile parts with controlled energetic properties.
  • Further research can optimize the formulation for enhanced performance and safety in energetic systems.