4.8 Article

Multi-scale cold embossing of CoCrFeNiMn high entropy alloy with ultra-high temperature durability

期刊

APPLIED MATERIALS TODAY
卷 25, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.apmt.2021.101233

关键词

High entropy alloys; Cold embossing; Multi-scale deformation; Ultra-precision machining

资金

  1. National Key Research and De-velopment Program of China [2018YFA0703604]
  2. Key Basic and Applied Research Program of Guangdong Province, China [2019B030302010]
  3. NSF of China [52122105, 51871157, 51971150]

向作者/读者索取更多资源

Ultra-precision machining and forming of metallic materials, especially high entropy alloys, are important in various fields. This study investigated the multi-scale cold embossing of CoCrFeNiMn high entropy alloy, achieving rapid formation of structures ranging from macro to nano scale. The research provides candidate materials and novel methods for the preparation and application of hyperfine structures.
Ultra-precision machining and forming of metallic materials is of great significance in the fields of catalysts, sensors, and biomedical devices. In present work, the multi-scale cold embossing of CoCrFeNiMn high entropy alloy (HEA) with structures ranging from macro-scale to nano-scale was investigated at room temperature. In less 7 s, the macro patterns, the shapes of Arabic numerals, 5 mu m wide gratings, 30 mu m diameter hemispherical arrays, and similar to 270 nm nanowires were formed rapidly. The highest replication of the HEA cold embossing was up to 98%. A series of slip bands were detected in the cold embossed HEA structures, which can accommodate more dislocations and facilitate the plastic deformation process. Moreover, dislocation pile-up and large angular rotation within grains are observed in the deformation areas, which is favorable to contain dislocation cells, leading to grain refinement and an increase in hardness. In addition, the multi-scale HEA can be used as a high-temperature resistant mold for forming thermoplastic materials such as plastics and metallic glasses at temperatures up to 900 degrees C. Our researches provide candidate materials and novel methods for the facile preparation and various applications of hyperfine structures. (C) 2021 Elsevier Ltd. All rights reserved.

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