Journal of Manufacturing and Materials Processing· 2026Q1
Electrical Discharge Machining of SiAlON Ceramics Using Multifunctional Coatings and Assistive Powder
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- Q1SCImago
- 2026year
Short summary
TiN coatings on SiAlON ceramics improved electrical conductivity and wear resistance for electrical discharge machining, outperforming other multifunctional coatings and enabling complex shape production.
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Key points
- Multifunctional TiN coatings were deposited on SiAlON ceramics using a plasma vacuum method.
- TiN coatings improved electrical conductivity and wear resistance for electrical discharge machining.
- TiN coatings demonstrated better adhesion and less brittle behavior compared to other tested multifunctional coatings.
- The study also explored the use of MgO and CoO powder suspensions in the interelectrode gap to aid kerf production.
AI-generated from the title and abstract; the full text is not read.
Abstract
Producing complex-shaped products of oxynitrides is one of the biggest challenges of the modern industry. The machining of those ceramics encounters challenges in terms of their physical and mechanical properties, such as their high brittleness and insulating electric properties. The problem may be solved by assisted electrical discharge machining by depositing multifunctional coatings by a plasma vacuum method that can contribute to electrical conductivity of the ceramic surface to provide wear-resistant properties. And that is the original solution because other authors either prefer using monofunctional coatings to provide electrical conductivity on the ceramic surface. The study employed TiN and quatronitride (Ti,Al,Cr,Si)N coatings, which were deposited on SiAlON samples. The adhesion strength and wire electrical discharge machining tests revealed the most favorable option (TiN coating) that demonstrated better adhesion and less brittle behavior. In addition to multifunctional coating, it is proposed to combine it with assisting powder by adding it in the interelectrode gap. MgO and CoO powder suspension (150 g/L) and erosion product suspension were chosen for kerf production. The MgO suspension was produced based on mineral oil, taking into account the chemical properties of magnesium-containing substances. Other suspension options were produced based on deionized water.
The authors' abstract, as published at the source. Journal of Manufacturing and Materials Processing, 2026 · DOI ↗
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Field: Ceramics and Composites
Ceramics and CompositesMaterials Science