面向材料的超精密金刚石切削数值模拟:回顾与展望

IF 16.1 1区 工程技术 Q1 ENGINEERING, MANUFACTURING International Journal of Extreme Manufacturing Pub Date : 2023-02-10 DOI:10.1088/2631-7990/acbb42
Liang Zhao, Junjie Zhang, Jianguo Zhang, Houfu Dai, A. Hartmaier, Tao Sun
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引用次数: 7

摘要

超精密金刚石切削是实现各种材料表面超光滑加工的一种很有前途的加工技术。虽然对工件材料特性对切削机制影响的基本理解对于提高加工技术的能力至关重要,但不同长度和时间尺度的数值模拟方法是实验研究的重要补充。在这项工作中,我们对材料取向金刚石切削数值模拟的最新进展进行了简要回顾,其中通过分子动力学模拟和有限元模拟等多尺度模拟系统地总结和讨论了具有代表性的加工现象:研究了多晶材料的各向异性切削行为,刀具-切屑摩擦状态的热-机械耦合,复合材料中单个相的协同切削响应,以及各种外部能场对切削过程的影响。特别强调了基于物理的新型数值模型,包括与非均质变形行为相关的高精度本构律,与刀具-切屑摩擦相关的热-力耦合算法,符合复合材料真实微观结构特征的单个相配置,以及将外部能场集成到切削模型中。最后,对先进结构材料的金刚石切削的先进数值模拟技术的未来发展也提供了见解。这篇综述中所报道的方面为各种材料的超精密机械加工响应的数值模拟提供了指导。
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Numerical simulation of materials-oriented ultra-precision diamond cutting: review and outlook
Ultra-precision diamond cutting is a promising machining technique for realizing ultra-smooth surface of different kinds of materials. While fundamental understanding of the impact of workpiece material properties on cutting mechanisms is crucial for promoting the capability of the machining technique, numerical simulation methods at different length and time scales act as important supplements to experimental investigations. In this work, we present a compact review on recent advancements in the numerical simulations of material-oriented diamond cutting, in which representative machining phenomena are systematically summarized and discussed by multiscale simulations such as molecular dynamics simulation and finite element simulation: the anisotropy cutting behavior of polycrystalline material, the thermo-mechanical coupling tool-chip friction states, the synergetic cutting responses of individual phase in composite materials, and the impact of various external energetic fields on cutting processes. In particular, the novel physics-based numerical models, which involve the high precision constitutive law associated with heterogeneous deformation behavior, the thermo-mechanical coupling algorithm associated with tool-chip friction, the configurations of individual phases in line with real microstructural characteristics of composite materials, and the integration of external energetic fields into cutting models, are highlighted. Finally, insights into the future development of advanced numerical simulation techniques for diamond cutting of advanced structured materials are also provided. The aspects reported in this review present guidelines for the numerical simulations of ultra-precision mechanical machining responses for a variety of materials.
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来源期刊
International Journal of Extreme Manufacturing
International Journal of Extreme Manufacturing Engineering-Industrial and Manufacturing Engineering
CiteScore
17.70
自引率
6.10%
发文量
83
审稿时长
12 weeks
期刊介绍: The International Journal of Extreme Manufacturing (IJEM) focuses on publishing original articles and reviews related to the science and technology of manufacturing functional devices and systems with extreme dimensions and/or extreme functionalities. The journal covers a wide range of topics, from fundamental science to cutting-edge technologies that push the boundaries of currently known theories, methods, scales, environments, and performance. Extreme manufacturing encompasses various aspects such as manufacturing with extremely high energy density, ultrahigh precision, extremely small spatial and temporal scales, extremely intensive fields, and giant systems with extreme complexity and several factors. It encompasses multiple disciplines, including machinery, materials, optics, physics, chemistry, mechanics, and mathematics. The journal is interested in theories, processes, metrology, characterization, equipment, conditions, and system integration in extreme manufacturing. Additionally, it covers materials, structures, and devices with extreme functionalities.
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