Mechanistic investigation of plasma-assisted TiC formation and material transfer during electrical discharge coating using low-density additively manufactured electrodes

Electrical discharge coating (EDC) enables the synthesis of metallurgically bonded ceramic–metal composite coatings under ambient conditions through repetitive high-energy electrical discharges. However, the mechanisms governing phase formation, material transfer, and coating growth remain poorly understood. In this study, thick TiC-Fe composite coatings were synthesized on steel using a low-density additively manufactured (LD-AM) Ti6Al4V electrode. Optical emission spectroscopy (OES), debris characterization, and cross-sectional microstructural analyses were performed to investigate the proposed plasma-assisted and melt-pool-assisted TiC formation pathways and coating growth mechanisms. OES detected reactive Ti, Fe, and C species within the plasma channel, while XRD of recovered debris identified TiC among expelled material. Together, these observations support two proposed TiC formation pathways, i.e., plasma-assisted TiC formation within the discharge plasma (pathway 1), and melt-pool-assisted TiC formation within the substrate melt pool (pathway 2). EBSD and FEGSEM revealed a microstructural gradient across the coating thickness, from fine carbide-rich regions near the surface to dendritic and columnar structures near the interface. The LD-AM electrode produced coatings up to 133 μ m thick at an average deposition rate of 15 μ m/min, exceeding the performance of the wrought electrode. The maximum cross-sectional microhardness reached 1455 ± 169 HV0.05, representing an increase of approximately 489% relative to the substrate. Nanoindentation revealed localized hardness values approaching 39 GPa in TiC-rich regions. In addition, the representative polished coated surface exhibited an approximately fourfold reduction in corrosion current in 3.5 wt% NaCl solution compared with the bare substrate. The findings provide mechanistic evidence supporting the proposed TiC formation pathways during EDC and demonstrate the potential of LD-AM electrodes for producing thick, hard, and corrosion-resistant composite coatings under ambient conditions.

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Publication Details

Journal
Journal of Manufacturing Processes
Published
2026-10-07
DOI
https://doi.org/10.1016/j.jmapro.2026.09.057
Primary Topic
Surface Treatment and Coatings
Type
article
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article

Mechanistic investigation of plasma-assisted TiC formation and material transfer during electrical discharge coating using low-density additively manufactured electrodes

Soham S. Mujumdar, Anurag Virendra Srivastava
Journal of Manufacturing Processes
Surface Treatment and Coatings
article

Mechanistic investigation of plasma-assisted TiC formation and material transfer during electrical discharge coating using low-density additively manufactured electrodes

Soham S. Mujumdar, Anurag Virendra Srivastava
article en

Abstract

Electrical discharge coating (EDC) enables the synthesis of metallurgically bonded ceramic–metal composite coatings under ambient conditions through repetitive high-energy electrical discharges. However, the mechanisms governing phase formation, material transfer, and coating growth remain poorly understood. In this study, thick TiC-Fe composite coatings were synthesized on steel using a low-density additively manufactured (LD-AM) Ti6Al4V electrode. Optical emission spectroscopy (OES), debris characterization, and cross-sectional microstructural analyses were performed to investigate the proposed plasma-assisted and melt-pool-assisted TiC formation pathways and coating growth mechanisms. OES detected reactive Ti, Fe, and C species within the plasma channel, while XRD of recovered debris identified TiC among expelled material. Together, these observations support two proposed TiC formation pathways, i.e., plasma-assisted TiC formation within the discharge plasma (pathway 1), and melt-pool-assisted TiC formation within the substrate melt pool (pathway 2). EBSD and FEGSEM revealed a microstructural gradient across the coating thickness, from fine carbide-rich regions near the surface to dendritic and columnar structures near the interface. The LD-AM electrode produced coatings up to 133 μ m thick at an average deposition rate of 15 μ m/min, exceeding the performance of the wrought electrode. The maximum cross-sectional microhardness reached 1455 ± 169 HV0.05, representing an increase of approximately 489% relative to the substrate. Nanoindentation revealed localized hardness values approaching 39 GPa in TiC-rich regions. In addition, the representative polished coated surface exhibited an approximately fourfold reduction in corrosion current in 3.5 wt% NaCl solution compared with the bare substrate. The findings provide mechanistic evidence supporting the proposed TiC formation pathways during EDC and demonstrate the potential of LD-AM electrodes for producing thick, hard, and corrosion-resistant composite coatings under ambient conditions.

Journal of Manufacturing ProcessesVol. 177
Indian Institute of Technology Bombay (IN)
Openalex Percentile: Top 21%
Surface Treatment and Coatings
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