Difference between revisions of "Published Papers"

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== Count ==
 
== Count ==
  
680 total documents as of 10 November, 2025.
+
707 total documents as of 17 February, 2026.
  
 
== '''Non-Traditional Manufacturing''' ==
 
== '''Non-Traditional Manufacturing''' ==
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* Shape Memory Polymers
 
* Shape Memory Polymers
 
* And combining two or more additive manufacturing methods in a single build.
 
* And combining two or more additive manufacturing methods in a single build.
 +
 +
== NTM, 2026 ==
 +
 +
* [https://www.science.org/doi/pdf/10.1126/sciadv.aeb2417 Robotic Conformal 4D Printing of Liquid Crystal Elastomers] by a team from the [https://engineering.ucdenver.edu/departments/mechanical-engineering Department of Mechanical Engineering, University of Colorado Denver]
 +
* [https://carleton.scholaris.ca/items/0b4e329a-343d-4973-b68a-e32447e4f1b5 Rapid Prototyping of a Directly Heated Thermionic Triode Using 3D Printing Techniques], a Masters dissertation submitted to [https://carleton.ca/ Carleton University, Ottawa]
 +
* [https://www.proquest.com/openview/19acbcfd64b5f58cdf5a6ccc878ff5cf/1 AI-driven Quality Prediction in Additive Manufacturing Based on Multimodal Process Monitoring], a PhD dissertation submitted to the [https://www.stevens.edu/ Stevens Institute of Technology]
  
 
== NTM, 2025 ==
 
== NTM, 2025 ==
  
 +
* [https://onlinelibrary.wiley.com/doi/abs/10.1002/pat.70439 Microwave-Induced Surface Activation of Aramid Waste for Additively Manufactured Composite Architectures of PETG] by a team from the [https://diat.ac.in/metallurgical-materials-engineering/ Additive Manufacturing Laboratory, Department of Metallurgical and Materials Engineering, Defence Institute of Advanced Technology (DU), Ministry of Defence, Pune, India]
 +
* [https://4spepublications.onlinelibrary.wiley.com/doi/abs/10.1002/pc.70614 3D Printing of Continuous Carbon Fiber Reinforced Composites With Cyanate Ester Interpenetrating Polymer Networks for Enhanced Thermo-Mechanical Properties] by a team from [https://www.utep.edu/engineering/mechanical/ Department of Aerospace and Mechanical Engineering, The University of Texas at El Paso]
 
* [https://journals.sagepub.com/doi/abs/10.1177/1045389X251386918 Additive Manufacturing of Morphing Structures With Multi-stimuli Activation Capabilities] by a team from [https://www.boisestate.edu/ Boise State University] and [https://www.drake.edu/ Drake University]
 
* [https://journals.sagepub.com/doi/abs/10.1177/1045389X251386918 Additive Manufacturing of Morphing Structures With Multi-stimuli Activation Capabilities] by a team from [https://www.boisestate.edu/ Boise State University] and [https://www.drake.edu/ Drake University]
 
* [https://advanced.onlinelibrary.wiley.com/doi/pdf/10.1002/adem.202501686 Encapsulating Laser-Induced Graphene to Preserve its Electrical Properties and Enhance its Mechanical Robustness] by a team from [https://lassonde.yorku.ca/eecs Department of Electrical Engineering and Computer Science, York University, Toronto]
 
* [https://advanced.onlinelibrary.wiley.com/doi/pdf/10.1002/adem.202501686 Encapsulating Laser-Induced Graphene to Preserve its Electrical Properties and Enhance its Mechanical Robustness] by a team from [https://lassonde.yorku.ca/eecs Department of Electrical Engineering and Computer Science, York University, Toronto]
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Also known as '''DPE''' (Direct Powder Extrusion) or '''HME''' (Hot Melt Extrusion).
 
Also known as '''DPE''' (Direct Powder Extrusion) or '''HME''' (Hot Melt Extrusion).
  
== DPE, HME 2025 ==
+
== DPE/HME 2026 ==
 +
 
 +
* [https://onlinelibrary.wiley.com/doi/pdf/10.1002/rpm2.70039 4D Printing of Fast-responsive Liquid Crystalline Elastomers for Light-driven Actuators] by a team from [https://www.unifi.it/en University of Florence], [https://www.cnr.it/en/institute/111/national-institute-of-optics-ino National Institute of Optics, National Research Council (INO-CNR), Sesto Fiorentino, Italy], and [https://lens.unifi.it/ European Laboratory for Non Linear Spectroscopy (LENS), Sesto Fiorentino, Italy]
 +
* [https://www.proquest.com/openview/71f1b108870532d30a3ff7b0bd13a84c/1?pq-origsite=gscholar&cbl=18750&diss=y Advancing Aerospace Materials: 3D Printing of Fiber Reinforced Cyanate Ester Ipns and Uhtcmcs], a thesis submitted to [https://www.utep.edu/engineering/mechanical/ University of Texas at El Paso]
 +
 
 +
== DPE/HME 2025 ==
  
 +
* [https://www.sciencedirect.com/science/article/pii/S2666893925003962 Composite Pcl-Chitosan Scaffolds With Dual Porosity Fabricated via Additive Manufacturing Technique for Tissue Engineering and Regenerative Purposes] by a team from [https://iau.ir/en Islamic Azad University, Tehran], [https://en.iums.ac.ir/ Iran University of Medical Sciences, Tehran], and [http://en.ippi.ac.ir/ Iran Polymer and Petrochemical Institute, Tehran]
 
* [https://scholar.google.com/scholar_url?url=https://flore.unifi.it/bitstream/2158/1420778/1/PhD_Thesys_Ruggero_Rossi-signed.pdf&hl=en&sa=X&d=10799369571376432293&ei=6f0SaOHKKIWlieoPxdD2yAY&scisig=AFWwaeZV7rJJFopzUPcjAKPNiC4Q&oi=scholaralrt&hist=QZPgiEkAAAAJ:18370435948786443487:AFWwaeaEM0xeEgrLLW3xIdc2G8Zs&html=&pos=0&folt=kw Smart Materials Based on Azo Dyes: From Light-responsive Adhesives to Artificial Muscles] a PhD thesis submitted to [https://flore.unifi.it/ FLORE (FLOrence REsearch), Florence]
 
* [https://scholar.google.com/scholar_url?url=https://flore.unifi.it/bitstream/2158/1420778/1/PhD_Thesys_Ruggero_Rossi-signed.pdf&hl=en&sa=X&d=10799369571376432293&ei=6f0SaOHKKIWlieoPxdD2yAY&scisig=AFWwaeZV7rJJFopzUPcjAKPNiC4Q&oi=scholaralrt&hist=QZPgiEkAAAAJ:18370435948786443487:AFWwaeaEM0xeEgrLLW3xIdc2G8Zs&html=&pos=0&folt=kw Smart Materials Based on Azo Dyes: From Light-responsive Adhesives to Artificial Muscles] a PhD thesis submitted to [https://flore.unifi.it/ FLORE (FLOrence REsearch), Florence]
 
* [https://pubs.acs.org/doi/abs/10.1021/acs.macromol.5c00176 High Molecular Weight Biobased Long-Chain Aliphatic Polyesters with Degradability: Insights into Mimicking Polyethylene] by a team from [https://sc.edu/study/colleges_schools/chemistry_and_biochemistry/ Department of Chemistry and Biochemistry, University of South Carolina], [https://www.clemson.edu/cecas/departments/mse/ Department of Materials Science and Engineering, Clemson University], [https://engineering.uga.edu/degree/bs-mechanical-engineering/ Department of Mechanical Engineering, College of Engineering, University of Georgia], and [https://chemistry.uchicago.edu/ Department of Chemistry, University of Chicago, Chicago, Illinois]
 
* [https://pubs.acs.org/doi/abs/10.1021/acs.macromol.5c00176 High Molecular Weight Biobased Long-Chain Aliphatic Polyesters with Degradability: Insights into Mimicking Polyethylene] by a team from [https://sc.edu/study/colleges_schools/chemistry_and_biochemistry/ Department of Chemistry and Biochemistry, University of South Carolina], [https://www.clemson.edu/cecas/departments/mse/ Department of Materials Science and Engineering, Clemson University], [https://engineering.uga.edu/degree/bs-mechanical-engineering/ Department of Mechanical Engineering, College of Engineering, University of Georgia], and [https://chemistry.uchicago.edu/ Department of Chemistry, University of Chicago, Chicago, Illinois]
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[[#top|Top]]
 
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== DPE, HME 2024 ==
+
== DPE/HME 2024 ==
  
 
* [https://onlinelibrary.wiley.com/doi/pdf/10.1002/adfm.202411812 Reprocessable and Mechanically Tailored Soft Architectures Through 3D Printing of Elastomeric Block Copolymers] by a team from [https://www.princeton.edu/ Princeton University]'s departments of [https://cbe.princeton.edu Chemical and Biological Engineering] and [https://mae.princeton.edu/ Mechanical and Aerospace Engineering]
 
* [https://onlinelibrary.wiley.com/doi/pdf/10.1002/adfm.202411812 Reprocessable and Mechanically Tailored Soft Architectures Through 3D Printing of Elastomeric Block Copolymers] by a team from [https://www.princeton.edu/ Princeton University]'s departments of [https://cbe.princeton.edu Chemical and Biological Engineering] and [https://mae.princeton.edu/ Mechanical and Aerospace Engineering]
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== DPE, HME 2023 ==
+
== DPE/HME 2023 ==
  
 
* [https://www.sciencedirect.com/science/article/abs/pii/S0939641123003119 Combination Techniques Towards Novel Drug Delivery Systems Manufacturing: 3D PCL Scaffolds Enriched With Tetracycline-loaded PVP Nanoparticles] by a team from [https://www.marmara.edu.tr/en Marmara University, Turkey]
 
* [https://www.sciencedirect.com/science/article/abs/pii/S0939641123003119 Combination Techniques Towards Novel Drug Delivery Systems Manufacturing: 3D PCL Scaffolds Enriched With Tetracycline-loaded PVP Nanoparticles] by a team from [https://www.marmara.edu.tr/en Marmara University, Turkey]
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[[#top|Top]]
 
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== DPE, HME 2022 ==
+
== DPE/HME 2022 ==
  
 
* [https://pubs.acs.org/doi/abs/10.1021/acsami.2c14815 3D Printing of Liquid Metal Embedded Elastomers for Soft Thermal and Electrical Materials] by a team from [https://www.cmu.edu/ Carnegie Mellon University]'s  [https://www.meche.engineering.cmu.edu/ Mechanical] and [https://www.cheme.engineering.cmu.edu/ Chemical] Engineering Departments; the [https://www.erg.cuhk.edu.hk/erg/MechanicalAndAutomationEngineering Department of Mechanical and Automation Engineering, Chinese University of Hong Kong], and the [https://me.snu.ac.kr/en Department of Mechanical Engineering, Seoul National University]
 
* [https://pubs.acs.org/doi/abs/10.1021/acsami.2c14815 3D Printing of Liquid Metal Embedded Elastomers for Soft Thermal and Electrical Materials] by a team from [https://www.cmu.edu/ Carnegie Mellon University]'s  [https://www.meche.engineering.cmu.edu/ Mechanical] and [https://www.cheme.engineering.cmu.edu/ Chemical] Engineering Departments; the [https://www.erg.cuhk.edu.hk/erg/MechanicalAndAutomationEngineering Department of Mechanical and Automation Engineering, Chinese University of Hong Kong], and the [https://me.snu.ac.kr/en Department of Mechanical Engineering, Seoul National University]
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== DPE, HME 2021 ==
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== DPE/HME 2021 ==
  
 
*[https://www.pharmaexcipients.com/wp-content/uploads/2021/11/Effects-of-crosslinking-on-the-physical-solid-state-and-dissolution-properties-of-3D-printed-theophylline-tablets.pdf Effects of Crosslinking on the Physical Solid-State and Dissolution Properties of 3D-printed Theophylline Tablets] by a team from the [https://www.farmaatsia.ut.ee/en Institute of Pharmacy] and the [https://www.biomeditsiin.ut.ee/en Institute of Biomedicine and Translational Medicine] of the [https://www.ut.ee/en University of Tartu] and from the [https://researchportal.helsinki.fi/en/organisations/division-of-pharmaceutical-chemistry-and-technology Division of Pharmaceutical Chemistry and Technology, Faculty of Pharmacy, University of Helsinki]
 
*[https://www.pharmaexcipients.com/wp-content/uploads/2021/11/Effects-of-crosslinking-on-the-physical-solid-state-and-dissolution-properties-of-3D-printed-theophylline-tablets.pdf Effects of Crosslinking on the Physical Solid-State and Dissolution Properties of 3D-printed Theophylline Tablets] by a team from the [https://www.farmaatsia.ut.ee/en Institute of Pharmacy] and the [https://www.biomeditsiin.ut.ee/en Institute of Biomedicine and Translational Medicine] of the [https://www.ut.ee/en University of Tartu] and from the [https://researchportal.helsinki.fi/en/organisations/division-of-pharmaceutical-chemistry-and-technology Division of Pharmaceutical Chemistry and Technology, Faculty of Pharmacy, University of Helsinki]
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== DPE, HME 2020 ==
+
== DPE/HME 2020 ==
  
 
* [https://ir.lib.uwo.ca/cgi/viewcontent.cgi?article=10152&context=etd Study of Recyclable and Repairable Dynamic Covalent Polymers for Sustainable 3D Printing Development for Sustainable 3D Printing Development], a thesis for a PhD in Mechanical and Materials Engineering submitted to [https://www.eng.uwo.ca/mechanical/graduate/ The University of Western Ontario]
 
* [https://ir.lib.uwo.ca/cgi/viewcontent.cgi?article=10152&context=etd Study of Recyclable and Repairable Dynamic Covalent Polymers for Sustainable 3D Printing Development for Sustainable 3D Printing Development], a thesis for a PhD in Mechanical and Materials Engineering submitted to [https://www.eng.uwo.ca/mechanical/graduate/ The University of Western Ontario]
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== DPE, HME 2019 ==
+
== DPE/HME 2019 ==
  
 
* [https://onlinelibrary.wiley.com/doi/abs/10.1002/adbi.201900216 Vascularized Polymers Spatially Control Bacterial Cells on Surfaces] by a team from [https://umaine.edu/chb/ the Department of Chemical and Biomedical Engineering, University of Maine]
 
* [https://onlinelibrary.wiley.com/doi/abs/10.1002/adbi.201900216 Vascularized Polymers Spatially Control Bacterial Cells on Surfaces] by a team from [https://umaine.edu/chb/ the Department of Chemical and Biomedical Engineering, University of Maine]
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== DPE, HME 2018 ==
+
== DPE/HME 2018 ==
  
 
* [https://www.researchgate.net/profile/David_Ballard6/publication/329000422_3D_printing_of_surgical_hernia_meshes_impregnated_with_contrast_agents_in_vitro_proof_of_concept_with_imaging_characteristics_on_computed_tomography/links/5bef0e1892851c6b27c495d2/3D-printing-of-surgical-hernia-meshes-impregnated-with-contrast-agents-in-vitro-proof-of-concept-with-imaging-characteristics-on-computed-tomography.pdf 3D Printing of Surgical Hernia Meshes Impregnated with Contrast Agents: In Vitro Proof of Concept with Imaging Characteristics on Computed Tomography] by a team from [https://wustl.edu/ Washington University in St. Louis]
 
* [https://www.researchgate.net/profile/David_Ballard6/publication/329000422_3D_printing_of_surgical_hernia_meshes_impregnated_with_contrast_agents_in_vitro_proof_of_concept_with_imaging_characteristics_on_computed_tomography/links/5bef0e1892851c6b27c495d2/3D-printing-of-surgical-hernia-meshes-impregnated-with-contrast-agents-in-vitro-proof-of-concept-with-imaging-characteristics-on-computed-tomography.pdf 3D Printing of Surgical Hernia Meshes Impregnated with Contrast Agents: In Vitro Proof of Concept with Imaging Characteristics on Computed Tomography] by a team from [https://wustl.edu/ Washington University in St. Louis]
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== DPE, HME 2017 ==
+
== DPE/HME 2017 ==
  
 
* [http://pubs.acs.org/doi/abs/10.1021/acsami.7b13602 Shear-Thinning and Thermo-Reversible Nanoengineered Inks for 3D Bioprinting] in the [http://www.acs.org/content/acs/en.html American Chemical Society's] [http://pubs.acs.org/toc/aamick/current Applied Materials & Interfaces Journal]
 
* [http://pubs.acs.org/doi/abs/10.1021/acsami.7b13602 Shear-Thinning and Thermo-Reversible Nanoengineered Inks for 3D Bioprinting] in the [http://www.acs.org/content/acs/en.html American Chemical Society's] [http://pubs.acs.org/toc/aamick/current Applied Materials & Interfaces Journal]
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== '''[[Filament_Heads|Filament Printing]]''' ==
 
== '''[[Filament_Heads|Filament Printing]]''' ==
  
Also known as '''FFF''' (Fused Filament Fabrication) or '''FDM''' (Fused Deposition Modeling).
+
Also known as '''FDM''' (Fused Deposition Modeling) or '''FFF''' (Fused Filament Fabrication).
 +
 
 +
== FDM/FFF, 2026 ==
 +
 
 +
* [https://www.proquest.com/openview/cbb9bc0e87307e6c7690ed03de0216f7/1?pq-origsite=gscholar&cbl=18750&diss=y A Framework for Distributed Additive Manufacturing], a PhD dissertation submitted to [https://www.nmsu.edu/ New Mexico State University]
  
 
== FDM/FFF, 2025 ==
 
== FDM/FFF, 2025 ==
  
* [https://www.sciencedirect.com/science/article/pii/S2352492825025887 Optimizing Interlayer Adhesion of FFF-printed PEEK on an Accessible Platform via Short-beam Shear Testing and Response Surface Methodology], by a team from  
+
* [https://www.sciencedirect.com/science/article/pii/S2352492825025887 Optimizing Interlayer Adhesion of FFF-printed PEEK on an Accessible Platform via Short-beam Shear Testing and Response Surface Methodology], by a team from [https://www.ciqa.mx/ Centro de Investigación en Química Aplicada] and [https://www.cicy.mx/18-investigacion/unidad-de-mat Centro de Investigación Científica de Yucatán (CICY)]
[https://www.ciqa.mx/ Centro de Investigación en Química Aplicada] and [https://www.cicy.mx/18-investigacion/unidad-de-mat Centro de Investigación Científica de Yucatán (CICY)]
 
 
* [https://www.sciencedirect.com/science/article/pii/S2213846325000859 An Experimental Investigation of Hybrid Fused Filament Fabrication With in-process Machining] by a team from the [https://www.uml.edu/ University of Massachusetts, Lowell]
 
* [https://www.sciencedirect.com/science/article/pii/S2213846325000859 An Experimental Investigation of Hybrid Fused Filament Fabrication With in-process Machining] by a team from the [https://www.uml.edu/ University of Massachusetts, Lowell]
 
* [https://link.springer.com/article/10.1007/s40964-025-01277-0 Fused Filament Fabrication of Thermoplastic Polyurethane Composites With Microencapsulated Phase-change Material] by a team from [https://research-hub.nrel.gov/en/organisations/building-technologies-and-science-center Building Technologies and Science Center, National Renewable Energy Laboratory] and [https://daytonabeach.erau.edu/college-engineering/mechanical Department of Mechanical Engineering, Embry-Riddle Aeronautical University]
 
* [https://link.springer.com/article/10.1007/s40964-025-01277-0 Fused Filament Fabrication of Thermoplastic Polyurethane Composites With Microencapsulated Phase-change Material] by a team from [https://research-hub.nrel.gov/en/organisations/building-technologies-and-science-center Building Technologies and Science Center, National Renewable Energy Laboratory] and [https://daytonabeach.erau.edu/college-engineering/mechanical Department of Mechanical Engineering, Embry-Riddle Aeronautical University]

Latest revision as of 13:50, 17 February 2026

Below is a list of published works citing Hyrel equipment.

The information for Unheated or Chilled Reservoir Printing, also known as Robocasting or DIW (Direct Ink Writing), SEP (Semisolid Extrusion Printing), SSE (Semisolid Extrusion). 3DCP (3D Concrete Printing), or DCC (Digital Concrete Construction), ran too long, and has been split off to the new Published Papers (DIW) page.

Count

707 total documents as of 17 February, 2026.

Non-Traditional Manufacturing

Including:

  • 4D Printing
  • Antennas, Sensors, Batteries, Inductors, and Circuits
  • Electro-Spinning
  • Electro-Melt-Spinning
  • Engineered Living Materials (ELM)
  • Melt Electro-Writing (MEW)
  • Multiphase Direct Ink Writing (MDIW)
  • Nanostructures
  • Micro-Encapsulated Phase-Changing Materials (MEPCM)
  • Plasma Treatments
  • Printing with Embedded Fibers
  • Shape Memory Polymers
  • And combining two or more additive manufacturing methods in a single build.

NTM, 2026

NTM, 2025

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NTM, 2024

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NTM, 2023

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NTM, 2022

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NTM, 2021

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NTM, 2020

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NTM, 2019

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NTM, 2018

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NTM, 2017

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NTM, 2016

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NTM, 2015

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Unheated or Chilled Reservoir Printing

Also known as Robocasting or DIW (Direct Ink Writing), SEP (Semisolid Extrusion Printing), SSE (Semisolid Extrusion). 3DCP (3D Concrete Printing), or DCC (Digital Concrete Construction).

This info ran too long, and has been split off to the new Published Papers (DIW) page.

Heated Reservoir Printing

Also known as DPE (Direct Powder Extrusion) or HME (Hot Melt Extrusion).

DPE/HME 2026

DPE/HME 2025

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DPE/HME 2024

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DPE/HME 2023

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DPE/HME 2022

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DPE/HME 2021

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DPE/HME 2020

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DPE/HME 2019

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DPE/HME 2018

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DPE/HME 2017

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Filament Printing

Also known as FDM (Fused Deposition Modeling) or FFF (Fused Filament Fabrication).

FDM/FFF, 2026

FDM/FFF, 2025

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FDM/FFF, 2024

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FDM/FFF, 2023

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FDM/FFF, 2022

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FDM/FFF, 2021

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FDM/FFF, 2020

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FDM/FFF, 2019

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FDM/FFF, 2018

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FDM/FFF, 2017

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FDM/FFF, 2016

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