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May 16, 2026Journal of Vacuum Science & Technology A Vacuum Surfaces and Films0 citations

Approach to obtain laser deposited CoCrFeNi alloy of uniform chemical composition with varying cooling rates on steel substrate and its characterization

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PTPuneeth ThatiGMGopinath MuvvalaANAshish K. Nath

Key Points

  • This research aims to explore how varying cooling rates influence the microstructure and mechanical properties of CoCrFeNi alloy deposited via laser on a stainless steel substrate.
  • Developed a processing parameter, P/v, based on laser power and scan speed.
  • Used an infrared pyrometer to measure molten pool temperatures during deposition.
  • Analyzed phase, microstructure, and hardness of the deposited alloys with varying cooling rates.
  • Deposits maintained uniform chemical composition despite variations in cooling rates.
  • Microstructural features refined as cooling rates increased, enhancing hardness.
  • Phase analysis confirmed a single phase across all depositions, with lattice parameter changes linked to cooling rates.

Abstract

In this study, a processing parameter, P/v, is proposed for laser deposition. This parameter is a function of laser power, P, and scan speed, v, and by keeping this process parameter constant, CoCrFeNi high entropy alloy is deposited on a stainless-steel substrate over a wide range of laser power and scan speed. An infrared pyrometer is used to measure the temperature of the molten pool during the depositions. These temperature readings were used to calculate the cooling rates of the molten pool, which were then correlated with the deposition properties. The depositions obtained had varying cooling rates with fairly uniform chemical composition. Phase analysis revealed a single phase across all depositions, with a change in the lattice parameter due to variations in cooling rate. Microstructure analysis shows various features throughout the entire deposition, with refinement of these features at higher cooling rates. Similarly, the hardness of the depositions increased with increasing cooling rate. This parametric approach in laser deposition enabled the study of the sole effect of cooling rate on changes in microstructure and mechanical properties, without any influence from changes in the alloying additives of the deposited material.

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Cite This Study

Thati et al. (2026) studied this question.

synapsesocial.com/papers/6a080b38a487c87a6a40d6achttps://doi.org/10.1116/6.0005415
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