Powder Arc Fusion (PAF): An Arc-Based Powder Bed Fusion System Concept for Low-Cost Metal Additive Manufacturing

Metal additive manufacturing has seen rapid growth, yet access remains limited by the high cost of established processes such as Selective Laser Melting (SLM), where entry-level systems typically require investments exceeding 100,000 USD. This paper introduces Powder Arc Fusion (PAF), a powder bed fusion concept that replaces the laser with a controlled electric arc as the energy source for metal powder melting, targeting system costs below 5,000 USD and a desktop-compatible form factor. The PAF concept consolidates powder deposition, arc-based melting, and layer handling into a single integrated machine rather than a laboratory arrangement. The process is designed to operate within a sealed protective atmosphere and to allow layer thickness and melt track width to be varied within a single build, so that fine features and bulk volumes can be produced in one uninterrupted job. An analytical assessment of the melting energy requirements across more than 50 industrially relevant alloys indicates that the required thermal power is expected to remain within the range of a compact, low-cost power supply. The arc stability required for powder bed operation is intended to be provided by a proprietary arc control architecture developed at NeoFuse3D; its technical implementation is the subject of a dedicated forthcoming publication. The work presented here is at concept stage; no prototype has yet been built. The paper positions PAF against established powder bed fusion, wire arc additive manufacturing, and bound metal deposition, and identifies the application areas in which the concept is expected to be viable. PAF targets small and medium-sized enterprises, prosumer users, and research institutions that are currently excluded from metal additive manufacturing by cost and infrastructure barriers. Use of AI: A generative AI writing assistant based on a large language model (DeepSeek) was used during the preparation of this manuscript. Its use covered language editing, stylistic refinement, LaTeX formatting, structural editing of the manuscript text, and support in literature screening for the related-work section. All scientific content — the process concept, the system architecture, the engineering assessments, and the development and validation plan — originates from the author, who remains responsible for the accuracy and integrity of the work. No experimental data, analyses, or results were generated by AI tools, and no AI tool is listed as an author or contributor.Status: Concept-stage work. No prototype has been built; no experimental data are reported. The implementation details of the arc control architecture are withheld for intellectual property reasons and will be published separately.Version 1.0 — first public release, September 2026.

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Publication Details

Journal
Zenodo (CERN European Organization for Nuclear Research)
Published
2026-09-18
DOI
https://doi.org/10.5281/zenodo.22836910
Primary Topic
Additive Manufacturing Materials and Processes
Type
preprint
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preprint

Powder Arc Fusion (PAF): An Arc-Based Powder Bed Fusion System Concept for Low-Cost Metal Additive Manufacturing

Lukas Vogl
Zenodo (CERN European Organization for Nuclear Research)
Additive Manufacturing Materials and Processes
preprint

Powder Arc Fusion (PAF): An Arc-Based Powder Bed Fusion System Concept for Low-Cost Metal Additive Manufacturing

Lukas Vogl
preprint en

Abstract

Metal additive manufacturing has seen rapid growth, yet access remains limited by the high cost of established processes such as Selective Laser Melting (SLM), where entry-level systems typically require investments exceeding 100,000 USD. This paper introduces Powder Arc Fusion (PAF), a powder bed fusion concept that replaces the laser with a controlled electric arc as the energy source for metal powder melting, targeting system costs below 5,000 USD and a desktop-compatible form factor. The PAF concept consolidates powder deposition, arc-based melting, and layer handling into a single integrated machine rather than a laboratory arrangement. The process is designed to operate within a sealed protective atmosphere and to allow layer thickness and melt track width to be varied within a single build, so that fine features and bulk volumes can be produced in one uninterrupted job. An analytical assessment of the melting energy requirements across more than 50 industrially relevant alloys indicates that the required thermal power is expected to remain within the range of a compact, low-cost power supply. The arc stability required for powder bed operation is intended to be provided by a proprietary arc control architecture developed at NeoFuse3D; its technical implementation is the subject of a dedicated forthcoming publication. The work presented here is at concept stage; no prototype has yet been built. The paper positions PAF against established powder bed fusion, wire arc additive manufacturing, and bound metal deposition, and identifies the application areas in which the concept is expected to be viable. PAF targets small and medium-sized enterprises, prosumer users, and research institutions that are currently excluded from metal additive manufacturing by cost and infrastructure barriers. Use of AI: A generative AI writing assistant based on a large language model (DeepSeek) was used during the preparation of this manuscript. Its use covered language editing, stylistic refinement, LaTeX formatting, structural editing of the manuscript text, and support in literature screening for the related-work section. All scientific content — the process concept, the system architecture, the engineering assessments, and the development and validation plan — originates from the author, who remains responsible for the accuracy and integrity of the work. No experimental data, analyses, or results were generated by AI tools, and no AI tool is listed as an author or contributor.Status: Concept-stage work. No prototype has been built; no experimental data are reported. The implementation details of the arc control architecture are withheld for intellectual property reasons and will be published separately.Version 1.0 — first public release, September 2026.

Zenodo (CERN European Organization for Nuclear Research)
Angel Kanchev University of Ruse (BG)
Industry, innovation and infrastructure
Additive Manufacturing Materials and Processes
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