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Study of Cracking Mechanism and Wear Resistance in Laser Cladding Coating of Ni-based Alloy

Zhenglei Yu et al · KeAi Communications Co., Ltd · 2021

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Abstract Nickel-based alloy coatings were widely used for the remanufacturing of dies and moulds by laser cladding, but the crack sensitivity would be increase due to the higher strength and hardness, which reduced the wear resistance of Ni-based alloys. In this paper, Ni-based coatings with the addition of a plastic phase (an austenitic stainless net) were prepared using laser cladding technology, and the CeO2 was added in cladding layers. The cracking mechanism, microhardness, microstructure, phase composition, and wear properties were investigated. The relationship between thermal stress and the elastic and plastic fracture had been developed from the standpoint of fracture mechanics and thermal elastic fracture mechanics. The fracture criterion of the nickel-based coating was obtained, and the study has shown that the crack sensitivity could be reduced by decreasing the thermal expansion coefficient Δα. Thus, a new method was proposed, which the stainless steel nets were prefabricated on the substrate. It was found that the number of cracks reduced significantly with the addition of stainless steel net. When the stainless steel net with 14 mesh was added in Ni-based coatings, the average microhardness of nickel composite coating was 565 HV0.2, which was 2.6 times higher than that of the 45 steel substrate. Although the rare earth oxide 4 wt.% CeO2 and stainless steel net were added in the Ni-based coating reducing the microhardness (the average microhardness is 425 HV0.2), the wear resistance of it improved substantially. The wear volume of Ni-based composite coating was 0.56×10−5 mm3·N−1·m−1, which was 85.1% lower than that of 45 steel. The experiment results have shown that the Nickel-based composite coating is equipped with low crack sensitivity and high abrasive resistance with austenitic stainless net and the rare earth oxide 4 wt.% CeO2. This research offers an efficient solution to produce components with low crack susceptibility and high wear-resistance coatings fabricated by laser cladding.

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APA 7

al, Z. Y. E. (2021). Study of Cracking Mechanism and Wear Resistance in Laser Cladding Coating of Ni-based Alloy. https://doi.org/10.1186/s10033-021-00599-8

MLA

al, Zhenglei Yu et. "Study of Cracking Mechanism and Wear Resistance in Laser Cladding Coating of Ni-based Alloy." 2021. https://doi.org/10.1186/s10033-021-00599-8.

Chicago

al, Zhenglei Yu et. 2021. "Study of Cracking Mechanism and Wear Resistance in Laser Cladding Coating of Ni-based Alloy.". https://doi.org/10.1186/s10033-021-00599-8.

Harvard

al, Z. Y. E. 2021, Study of Cracking Mechanism and Wear Resistance in Laser Cladding Coating of Ni-based Alloy, KeAi Communications Co, Ltd, available at: https://doi.org/10.1186/s10033-021-00599-8 [Accessed 7 Aug. 2026].

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Titolo
Study of Cracking Mechanism and Wear Resistance in Laser Cladding Coating of Ni-based Alloy
Autore / collaboratori
Zhenglei Yu et al
Editore
KeAi Communications Co., Ltd
Anno di pubblicazione
2021
ISSN
1000-9345
ISSN
1000-9345
Lingua
Inglés

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