Optimization of processing conditions in plasma activated nitrogen–hydrocarbon carburizing

Problems with intergranular oxidation, energy efficiency and carbon footprint of the conventional endothermic atmosphere (CO–H2–N2) carburizing are forcing heat treating and manufacturing companies to move toward increasingly capital- and operating-cost expensive, low-pressure/vacuum carburizing met...

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Veröffentlicht in:Surface & coatings technology 2015-06, Vol.272, p.190-197
Hauptverfasser: Wei, Yingying, Zurecki, Zbigniew, Sisson, Richard D.
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description Problems with intergranular oxidation, energy efficiency and carbon footprint of the conventional endothermic atmosphere (CO–H2–N2) carburizing are forcing heat treating and manufacturing companies to move toward increasingly capital- and operating-cost expensive, low-pressure/vacuum carburizing methods. To offer a less-expensive alternative, a new activated carburizing method has recently been developed, bridging the endothermic atmosphere and vacuum processes, where a plasma-activated, oxygen-free, non-equilibrium nitrogen–hydrocarbons gas blend is utilized. The optimization of activated carburizing for industrial application presented here involved improvement of multi-dimensional case uniformity. As a part of this optimization, a computational fluid dynamics study was conducted for examination of gas flow field inside heat treating furnace and trays holding steel parts treated. To maximize carburizing rate and mitigate soot in non-equilibrium nitrogen–hydrocarbon atmospheres, effects of different gas mixture combinations were investigated. A mixture of N2–0.4% C3H8–1% CH4 mixture has been found to provide a well carburized case with minimized soot in the atmosphere and reduced coke deposition on the metal surface. The soot formation mechanisms for non-equilibrium carburizing atmospheres were also discussed. •Plasma activated, non-equilibrium atmosphere carburizing prevents internal oxidation.•Case uniformity in dense industrial loads was improved following prior CFD analysis.•Carburizing and sooting rates are a non-linear function of CH4 and C3H8 in atmosphere.•Catalytic carbon film or filament growth starts from active sites at metal surface.•Different carbonaceous substance forms were identified in N2–hydrocarbon atmospheres.
doi_str_mv 10.1016/j.surfcoat.2015.04.006
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subjects Activated
Atmospheres
Carburizing
Endothermic reactions
Flow-field
Furnace loading
Non-equilibrium atmosphere
Optimization
Soot
Soot mechanisms
Trays
Vacuum carburizing
title Optimization of processing conditions in plasma activated nitrogen–hydrocarbon carburizing
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