PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
March 21, 2026Scientific Reports2 citationsOpen Access

Impact of processing parameters on the interfacial bonding and properties of recycled LCS/WC–Co bilayers developed through powder metallurgy

MAMostafa M. AbdelhaleemAEA. A. El-DalyOEOmayma A. Elkady

Key Points

  • The aim is to develop a tough-hard LCS/WC–Co bilayer composite using recycled materials and powder metallurgy techniques.
  • Developed bilayer composite using recycled low-carbon steel (LCS) and WC–Co.
  • Optimized sintering temperature, compaction pressure, and particle size.
  • Analyzed microstructural development and mechanical behavior.
  • Optimal parameters achieved defect-free interfaces and strong bonding at 1300 °C, 313 MPa, and 25 μm particle size.
  • Lower temperatures led to porosity and weak adhesion; higher temperatures caused cracking.
  • Interfacial reactions included mutual diffusion, creating strong bonds and enhancing mechanical properties.

Abstract

This study aims to develop a tough-hard (LCS/WC-Co) bilayer composite using recycled low-carbon steel (LCS) with WC–Co through conventional powder metallurgy (PM), offering a cost-effective and sustainable route to enhance mechanical performance. Processing parameters like sintering temperature, compaction pressure, and particle size, were optimized to control microstructural development and mechanical behavior. The microstructure results show that the defect-free interfaces, dense layer and strong interfacial bonding strength are achieved at the optimal parameters of 1300 °C, 313 MPa, and 25 μm particle size. Lower sintering temperatures (< 1280 °C) produced porosity and weak adhesion, whereas sintering above 1320 °C led to interfacial cracking. At the interface, mutual diffusion occurred with Fe diffusion into WC–Co and Co migrating into LCS. Concurrently, WC decomposition facilitated the formation of Fe(W) and CoFe intermetallic, together with minor Co₃W₃C and Fe₃W₃C phases. These interfacial reactions provided strong cohesion and enhanced mechanical performance, yielding compressive and tensile interfacial bonding strength of 209 MPa and 44 MPa, with hardness of 150 ± 6 HV for the LCS layer and 660 ± 70 HV for the WC–Co layer.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Abdelhaleem et al. (2026) studied this question.

synapsesocial.com/papers/69be34af6e48c4981c672e19https://doi.org/10.1038/s41598-025-26946-6
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Interfacial structure − property relationships in additively manufactured WC-Co/316 L multi-material systems2026
  2. 2Microstructure and properties of Co based laser cladded composite coatings2024 · 5 citations
  3. 3Effects of Sintering Pressure and Co Content on the Microstructure and Mechanical Performance of WC–Co Cemented Carbides2025
  4. 4Microstructure Evolution and Properties of a Novel Intermetallics Precipitation‐Hardened Steel Coating Reinforced by WC via Laser Cladding2025
  5. 5Microstructural evolution and mechanical performance correlation of WC-reinforced iron-based coatings fabricated by laser cladding2026 · 1 citations