98%
921
2 minutes
20
WC-Co (tungsten carbide-cobalt) composites are widely used in industry, wear-resistant parts, and cutting tools. As successful tool materials, WC-Co carbides are widely applied in metal cutting, wear applications, chipless forming, stoneworking, wood, and plastic working. These materials are exposed to severe solid particle erosion by sand particles, such as in the wood industry. During the production of furniture with HDF (High Density Fibreboard), MDF (Medium Density Fibreboard), or OSB (Oriented Strand Board), there are observed problems with tool erosion. Contamination, mainly of the HDF by sand, is quite often, which is why all tools used for the machining of such materials are exposed to erosion by sand particles. Although many studies have been performed on the erosion of various metals, and erosion models exist to predict their erosion behavior, the issue is still relevant. The aim of the study was to determine the effect of grain size (submicron, ultrafine) and the manufacturing technology (SPS-Spark Plasma Sintering, conventional) used on the erosive properties of WC-Co sintered carbides. Sinters produced by the SPS method with different sizes of WC grains and commercial samples were used for the tests. Ten two-hour cycles were carried out under medium conditions of quartz sand and quartz sand with 10% SiC added. Used samples were characterised using scanning electron microscopy (SEM) and roughness was determined. Furthermore, erosion studies allowed individuating a wear mechanism as well as the possibility to foresee cutting performance in prospective application.
Download full-text PDF |
Source |
---|---|
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8658301 | PMC |
http://dx.doi.org/10.3390/ma14237326 | DOI Listing |
Materials (Basel)
August 2025
Institute of Wood Sciences and Furniture, Department of Mechanical Processing of Wood, Warsaw University of Life Sciences, Nowoursynowska Street, 166, 02-787 Warsaw, Poland.
This article presents the wear characteristics of the working surface of WC-Co (Tungsten Carbide-Cobalt) tungsten carbide tools obtained using the innovative U-FAST (Upgraded Field-Assisted Sintering Technology) method for particleboard machining. Three groups of tools with a similar chemical composition but differing WC (Tungsten Carbide) grain sizes were tested. Milling tests were carried out on a CNC (Computer Numerical Control) machine tool with the following cutting parameters: spindle rotation at 15,000 rpm, a feed rate of 0.
View Article and Find Full Text PDFMaterials (Basel)
August 2025
College of Arts and Design, Jimei University, 185 Yinjiang Rd., Jimei District, Xiamen 361021, China.
In the present work, the optimization of ceramic-based composite WC(Co,Ni) welds by laser cladding was carried out using response surface methodology based on finite element analysis. The heat distribution and temperature field of laser-melted WC(Co,Ni) ceramic coatings were simulated using ANSYS software, which allowed the computation of the distribution of residual stresses. The results show that the isotherms in the simulation of the temperature field are elliptical in shape, and that the isotherms in front of the moving heat source are dense with a larger temperature gradient, while the isotherms behind the heat source are sparse with a smaller temperature gradient.
View Article and Find Full Text PDFSmall Methods
July 2025
School of Chemical Engineering, Yeungnam University, Gyeongsan, 38541, South Korea.
Urea oxidation reaction (UOR) is considered a capable method for simultaneously producing hydrogen and treating urea-rich wastewater. The development of well-designed, high-performance electrocatalysts is crucial for efficient urea oxidation. In this study, a tungsten carbide (WC) and Co(OH) nanocomposite (WC@Co(OH)) is synthesized through a simple hydrothermal process for electrocatalytic UOR performance.
View Article and Find Full Text PDF3D Print Addit Manuf
June 2025
State Key Laboratory for Mechanical Behavior of Materials, Xi'an Jiaotong University, Xi'an, China.
The preparation of WC-Co cemented carbides by laser-based additive manufacturing (AM) is challenging, as the resulting products are often plagued by crack and pore defects. In this study, Cu-doped WC-12Co cemented carbides were successfully prepared by laser powder-bed fusion (LPBF). The effects of LPBF parameters and Cu doping on the defects, microstructures, and properties of the WC-12Co cemented carbides were analyzed.
View Article and Find Full Text PDFMaterials (Basel)
May 2025
Faculty of Industrial Technology, Technical University of Sofia, Kliment Ochridsky 8, 1000 Sofia, Bulgaria.
This work demonstrates the possibility of creating effective composite coatings with a complex structure and phase composition on carbon steel C45 via electrospark deposition (ESD) with multicomponent electrodes with a bonding mass composition of Co-Ni-Cr-B-Si semi-self-fluxing alloys and superhard compounds WC, BC and TiB. The variation in the roughness, thickness, composition, structure, microhardness and wear at the friction of the coatings as a function of the ratios between the bonding mass and the high-hardness components in the composition of the electrode and of the pulse energy for ESD has been studied. It has been established that with a content of the bonding mass in the electrode of 25-35%, coatings with improved adhesion and simultaneously higher hardness and toughness are obtained.
View Article and Find Full Text PDF