材料科学
包层(金属加工)
压痕硬度
微波食品加热
碳化物
金属间化合物
基质(水族馆)
冶金
复合材料
镍
微观结构
量子力学
海洋学
物理
地质学
合金
作者
Sandeepa Srivastava,Qasim Murtaza,Pawan Kumar
出处
期刊:Physica Scripta
[IOP Publishing]
日期:2023-10-09
卷期号:98 (11): 115405-115405
标识
DOI:10.1088/1402-4896/acfd61
摘要
Abstract The surface layer of SS-304 substrate was modified by a composite cladding of EWAC + Cr 3 C 2 (20%, 40%, & 60% by weight) powder performed by utilizing the concept of microwave hybrid heating technique. The experimental testing was carried out in a home microwave applicator with an Al 2 O 3 shield. Claddings of around 1 mm thickness were produced by exposing materials to microwave irradiation at a frequency of 2.45 GHz and 900 W of power. The entire system was exposed to microwave environment for about 360 s. The microstructural findings showed that the clads were produced via efficient metallurgical bonding, which entailed melting of clad powder along with diffusion of the substrate surface layer. The clads showed hard carbides in a columnar dendritic structure surrounded by a softer nickel-iron based matrix. The XRD spectrum shows that the clad also contains solid solution of Fe/Ni, chromium carbide (Cr 23 C 6 and Cr 3 C 2 ) and various intermetallic phases like NiSi, Ni 3 Si, and FeNi 3 . The average Vickers microhardness of the microwave processed clads was observed to be 700 ± 31 HV for EWAC + 60% Cr 3 C 2 , 580 ± 28 HV for EWAC + 40% Cr 3 C 2 and 460 ± 23 HV for EWAC + 20% Cr 3 C 2 respectively. The observed microhardness for all cases was higher than the substrate microhardness (260 ± 5 HV), which indicates the usefulness of the cladding for wear resistance applications.
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