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Corrosion and thermal shock behavior of atmospheric plasma spraying coatings on agricultural disc harrows

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dc.contributor.author MUNTEANU, Corneliu
dc.contributor.author CIMPOIEȘU, Ramona
dc.contributor.author LUPU, Fabian-Cezar
dc.contributor.author NAZAR, Boris
dc.contributor.author ISTRATE, Bogdan
dc.contributor.author MELNIC, Iurie
dc.contributor.author VIȘANU, Vitali
dc.date.accessioned 2026-04-20T08:58:14Z
dc.date.available 2026-04-20T08:58:14Z
dc.date.issued 2026
dc.identifier.citation MUNTEANU, Corneliu; Ramona CIMPOIEȘU; Fabian-Cezar LUPU; Boris NAZAR; Bogdan ISTRATE; Iurie MELNIC, and Vitali VISANU. Corrosion and thermal shock behavior of atmospheric plasma spraying coatings on agricultural disc harrows. Applied Sciences. 2026, vol. 16, no. 8, art. nr. 3703. ISSN 2076-3417. en_US
dc.identifier.issn 2076-3417
dc.identifier.uri https://doi.org/10.3390/app16083703
dc.identifier.uri https://repository.utm.md/handle/5014/35966
dc.description.abstract Atmospheric plasma spraying (APS) represents a critical solution for enhancing the durability of agricultural components, such as harrow discs, which are subjected to synergistic wear and corrosion during soil cultivation. This study presents experimental results evaluating the electrochemical corrosion behavior and thermal shock resistance of discs coated via atmospheric plasma thermal spraying. Both metallic and ceramic materials, in powder form, from established manufacturers were used to produce the coatings, and the three types of coatings (two metallic and one ceramic) have the following chemical compositions and trade names: W2C/WC12Co (Metco71NS), Cr2O3-4SiO2-3TiO (Metco136F) and Co25.5Cr10.5Ni7.5W0.5C (Metco45C-NS). The coatings were analyzed using electron microscopy to evaluate the surfaces following corrosion testing. The ceramic coating based on the Cr2O3-4SiO2-3TiO demonstrated the highest protective efficiency by increasing the charge transfer resistance from 307 Ω/cm2 to 2213 Ω/cm2 for the ceramic coating. It provided a superior physical barrier, reducing the corrosion current density from 0.140 mA/cm2 for unprotected substrate to 0.004 mA/cm2, representing an improvement of nearly two orders of magnitude. These findings demonstrate that implementing Cr2O3-4SiO2-3TiO ceramic systems can significantly extend the operational lifespan of soil-engaging components, providing a cost-effective strategy for reducing maintenance intervals and material loss in aggressive agricultural environments. en_US
dc.language.iso en en_US
dc.rights Attribution-NonCommercial-NoDerivs 3.0 United States *
dc.rights.uri http://creativecommons.org/licenses/by-nc-nd/3.0/us/ *
dc.subject harrows en_US
dc.subject discs en_US
dc.subject protective coatings en_US
dc.subject thermal deposition en_US
dc.subject atmospheric plasma spraying en_US
dc.subject corrosion resistance en_US
dc.subject grape en_US
dc.subject discuri en_US
dc.subject acoperiri de protecție en_US
dc.subject depunere termică en_US
dc.subject pulverizare cu jet de plasmă en_US
dc.subject rezistență la coroziune
dc.title Corrosion and thermal shock behavior of atmospheric plasma spraying coatings on agricultural disc harrows en_US
dc.type Article en_US


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