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Updated: May 28, 2026

Performing Microscope-Mounted Y-Shaped Cutting Tests
Published on: January 20, 2023
Cutting Performance of YG8 Cemented Carbide Tools with Microcapsule-Filled Surface Microtextures
Jianchi Zhou1,2, Jiaying Shi3, Yuxin Zhao3
1School of Mechanical Engineering, Shandong Key Laboratory of CNC Machine Tool Functional Components, Qilu University of Technology (Shandong Academy of Sciences), Jinan 250353, China.
This study introduces a novel self-lubricating tool system using microcapsules in microtextures to enhance dry cutting of cemented carbide. Optimal conditions significantly reduce cutting forces, temperature, and improve surface finish.
Area of Science:
- Materials Science and Engineering
- Tribology
- Manufacturing Technology
Background:
- Dry cutting of YG8 cemented carbide tools faces challenges with performance and tool wear.
- Developing advanced self-lubricating systems is crucial for improving machining efficiency and tool life.
Purpose of the Study:
- To enhance the dry cutting performance of YG8 cemented carbide tools.
- To investigate the effectiveness of a microcapsule-microtexture composite self-lubricating tool system.
Main Methods:
- Incorporation of CaF2/[BMIM]PF6@PPSU solid-liquid dual-core microcapsules into microtextures on the rake face.
- Systematic investigation of microcapsule content and microtexture edge spacing effects on cutting performance through cutting experiments.
- Analysis of tool wear mechanisms using micromorphological and energy-dispersive spectroscopy (EDS).
Main Results:
- Optimal cutting performance achieved at 20 wt.% microcapsule content and 100 μm edge spacing.
- Significant reductions in main cutting force (approx. 40%), cutting temperature (43.9%), and surface roughness (24.5%) compared to unlubricated tools.
- Extended cutting distance up to 9497 m under optimal conditions.
Conclusions:
- The microcapsule-microtexture composite system effectively improves dry cutting performance of cemented carbide tools.
- The released solid-liquid biphasic lubricating film suppresses adhesive and abrasive wear, mitigating delamination and adhesive wear.
- Optimized microcapsule content and microtexture design are key to achieving superior tribological performance in machining.
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