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◆ Review of Materials Research2026-06-01· Tribology

Sintering, toughening, and tribology of binderless and entropy-engineered WC-based cemented carbides: A critical review

Nanjie Sun, Huatang Cao, Tianbin Zhu, Shang Li, Yi Zeng, Qiance Q.I. Zhang, Yue Wang, Heping Li, Xuanpu Dong, Xiang Xiong, Xiaofeng Zhao, Zhipeng Xie

原始摘要(英文原文)· Original abstract
The development of WC-based cemented carbide composites with a superior combination of high hardness and toughness has driven transformative advances in binder engineering and sintering technologies. Although conventional WC-Co alloys remain widely used for the balanced mechanical performance, their insufficient wear resistance and toughness under extreme conditions limits their long-term reliability. To overcome this, two new paradigms have emerged: binderless tungsten carbides (BTCs) and high-entropy cemented carbides (HECCSs). These use wear-resistant ceramics or entropy-stabilized multi-principal element binders to break the classic hardness-toughness trade-off. Meanwhile, toughening strategies have evolved from 0D particles to 3D hierarchical architectures, enabling multiscale reinforcement. Machine learning (ML) and data-driven modeling are now accelerating microstructural optimization by linking computation with experiment. Understanding tribological behavior in extreme environments is also critical. This review offers a roadmap for next-generation WC-based composites, focusing on sintering advances, binder engineering, and structural design for enhanced mechanical and environmental durability.
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Sintering, toughening, and tribology of binderless and entropy-engineered WC-based cemented carbides: A critical review — 科研速览 Science Skim