超快激光热-力作用机制及金属表面性能调控方法
ID:162 View Protection:ATTENDEE Updated Time:2026-04-17 13:31:44 Hits:106 Extended type 1

Start Time:2026-04-28 09:00(Asia/Shanghai)

Duration:20min

Session:H 材料表层强化和改性技术论坛 » H1H上午场

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Abstract
Ultrafast lasers, with their ultrashort pulse widths and ultrahigh energy densities, have emerged as a powerful tool for modulating the surface morphology and properties of metallic materials. However, the complex interaction between ultrafast lasers and metals—involving multi-scale energy transfer, transient material state evolution, and plasma dynamics—poses significant challenges to understanding the underlying thermal-mechanical mechanisms and surface regulation laws. This review systematically examines the coupled thermal-mechanical processes during ultrafast laser-metal interactions. From the perspective of multi-scale structural responses at the single-point, line-scan, area-scan, and subsurface levels, the physical mechanisms underlying ablation morphology evolution, grain refinement, dislocation proliferation, and residual stress distribution are analyzed in depth. Key advances in surface property modulation strategies based on these mechanisms are reviewed, including direct ultrafast laser shock peening, magnetic field-assisted processing, and the tailoring of optical absorption and radiation properties. Representative results from our research group are highlighted, such as the dynamic evolution of electron-lattice temperatures, time-resolved plasma expansion, and the role of thermal-mechanical coupling in forming micro/nano surface structures. Current challenges—such as the limited understanding of multi-physics coupling, difficulties in precise multi-scale structure control, and the trade-off between processing efficiency and uniformity—are discussed. Future directions are proposed, including the exploration of material responses under extreme conditions, the development of multi-energy field hybrid modulation strategies, and the integration of ultrafast laser processing with artificial intelligence and in-situ monitoring. These efforts are expected to advance ultrafast laser-based surface engineering from "morphology-property modulation" toward "intelligent manufacturing," providing theoretical and technical support for high-performance metal components in aerospace, precision instrumentation, and electronic information applications.
Keywords
Ultrafast Laser
Speaker
贺广智
副所长 清华大学;中国矿业大学

Submission Author
贺广智 清华大学;中国矿业大学
赵宏伟 中国矿业大学
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Important Date
  • Conference Date

    Aug 10

    2026

    to

    Aug 12

    2026

  • Apr 26 2026

    Draft paper submission deadline

  • Apr 28 2026

    Registration deadline

Sponsored By
中国机械工程学会
Organized By
中国机械工程学会表面工程分会
中国科学院兰州化学物理研究所 润滑材料全国重点实验室
中国航天科技集团兰州空间技术物理研究所
甘肃省化学会
甘肃省材料学会
兰州城市学院