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Currently, high-entropy alloys (HEAs) have played a pivotal role in numerous fields because of their exceptional physical and chemical properties. However, complex composition of various elemental and the incomplete understanding of manufacturing mechanisms make it challenging to achieve ultraprecision surface formation using traditional processing methods. Therefore, this study proposes ultra-precision diamond cutting in magnetic field environment to enhance the nanometer-precision surface integrity of HEAs. Furthermore, phenomenological features are discussed and analyzed using advanced characterization techniques, ranging from macroscopic surface morphology to microscopic subsurface structure, to achieve a deeper understanding for material removal process . The generation mechanism of ultraprecision surfaces is thoroughly investigated by studying changes in surface, subsurface, chip, and tool wear with and without external magnetic field excitation. This study demonstrates that the ultra-precision surface integrity of HEA workpieces is enhanced due to changes in the workpiece material during machining when a magnetic field is applied, leading to significantly improved machinability . This work provides a promising manufacturing technology for improving ultraprecision surface quality in advanced materials , aiming to meet future application requirements across various fields. • Magnetic field-assisted diamond cutting (MFDC) technology is proposed to improve nano-precision surface integrity of high-entropy alloys (HEAs). • Formation mechanism of ultraprecision surface for HEAs is understood through in-deep exploration of phenomenological characteristics. • For HEAs, MFDC technology can suppress surface damage, improve material machinability and reduce diamond tool wear. • MFDC technology can be used as a potential technology to improve the ultra-precision manufacturing of magnetically permeable materials.
Xing et al. (Thu,) studied this question.
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