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February 6, 2026Welding in the World0 citationsOpen Access

Multimodal monitoring and predictive modeling for stability and overlap control in arc-based directed energy deposition

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JCJairo José Muñoz ChávezMLMargareth Nascimento de Souza LiraJFJoão da Cruz Payão Filho

Key Points

  • The aim is to validate process parameters in pulsed gas metal arc welding for stable and controlled weld bead production.
  • Utilized shadowgraphy for metal transfer visualization.
  • Employed stability analysis algorithms to evaluate welding conditions.
  • Applied Fast Fourier Transform to electrical signals for pulse characteristic analysis.
  • Developed an analytical formulation correlating wire feed rate and travel speed to bead geometry.
  • Conducted theoretical analysis of bead overlap and compared with experimental data.
  • Identified optimal voltage range of 22-28 V and current range of 190-220 A.
  • Achieved best performance at 240 Hz frequency.
  • Demonstrated good agreement between theoretical predictions of overlap and experimental results.
  • Showcased enhanced energy efficiency and reduced costs through optimized parameters.

Abstract

Abstract This study proposes a comprehensive methodology for validating process parameters in pulsed gas metal arc welding (GMAW-P) applied to arc-based directed energy deposition, aiming at the production of weld beads with controlled geometry and process stability. Shadowgraphy was employed for metal transfer visualization, combined with stability analysis algorithms and metal transfer criteria. Fast Fourier transform (FFT) was applied to current and voltage signals to identify the most efficient pulse characteristics, droplet detachment behavior, and transfer frequency. An analytical formulation correlating wire feed rate, travel speed, and bead cross-sectional area was used to guide the selection of deposition parameters. In addition, a theoretical analysis of bead overlap was developed and its predictions were directly compared with experimental results, demonstrating good agreement and validating the proposed model. These strategies defined a stable working window with voltage between 22 and 28 V and current between 190 and 220 A. The optimal condition was obtained at a frequency of 240 Hz. The proposed methodology enables parameter adaptation for different materials, ensuring energy efficiency, cost reduction, and geometric consistency. Moreover, GMAW-P allows the production of high-quality deposits at lower current levels compared to conventional GMAW.

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Cite This Study

Chávez et al. (2026) studied this question.

synapsesocial.com/papers/698585758f7c464f23008daehttps://doi.org/10.1007/s40194-025-02309-7
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