New advances in the machining of hard metals using physics-based modeling

被引:0
|
作者
Marusich, Troy D. [1 ]
Usui, Shuji [1 ]
Zamorano, Luis [1 ]
Marusich, Kerry [1 ]
Leopold, Juergen [1 ]
机构
[1] Marusich, Troy D.
[2] Usui, Shuji
[3] Zamorano, Luis
[4] Marusich, Kerry
[5] Leopold, Juergen
来源
| 1600年 / Polska Akademia Nauk卷 / 61期
关键词
Cost effectiveness - Fighter aircraft - Metal cutting - Strain hardening - Finite element method - Thermal conductivity - Machining - Machining centers;
D O I
暂无
中图分类号
学科分类号
摘要
The machining of hard metals historically has been understood to be challenging and costly due to its material properties (such as titanium's low thermal conductivity and high hardness, and nickel's rapid work-hardening and high strength at elevated temperatures) and limited understanding in industry of the physics behind chip formation and material removal. The achievement of meaningful cycle time reductions while maintaining part quality depends on a capability to model the physics of hard metal machining operations. With the help of a validated toolpath analysis model that can predict forces at each cutter location, cycle times and scrap can be reduced and machine breakdown can be avoided, all through off-line analysis. Productivity and process efficiency can be improved through simulation, drastically reducing testing setup and machining time. Physics-based modeling technology has been identified as a cost-effective solution for identifying optimum cutting speeds, enabling researchers and manufacturers to increase material removal rates, reduce machining costs, and enhance industry expertise in hard metal machining best practices. This paper presents new advances to physics-based modeling that have been validated using experimental tests and comparisons with finite element milling simulations, used to compare different process parameters and resulting material removal rates, and successfully advance hard metal machining processes.
引用
收藏
页码:3 / 13
相关论文
共 50 条
  • [1] Advances of physics-based precision modeling and simulation for manufacturing processes
    Wang, Gang
    Rong, Yi-Ming
    ADVANCES IN MANUFACTURING, 2013, 1 (01) : 75 - 81
  • [2] Advances of physics-based precision modeling and simulation for manufacturing processes
    Gang Wang
    Yi-Ming Rong
    Advances in Manufacturing, 2013, 1 : 75 - 81
  • [3] Advances of physics-based precision modeling and simulation for manufacturing processes
    Gang Wang
    Yi-Ming Rong
    AdvancesinManufacturing, 2013, 1 (01) : 75 - 81
  • [4] Physics-based modeling in the new era of enzyme engineering
    Christopher Jurich
    Qianzhen Shao
    Xinchun Ran
    Zhongyue J. Yang
    Nature Computational Science, 2025, 5 (4): : 279 - 291
  • [5] Recent advances and opportunities in data assimilation for physics-based hydrological modeling
    Camporese, Matteo
    Girotto, Manuela
    FRONTIERS IN WATER, 2022, 4
  • [6] Physics-based design for an impeller machining process
    Heigel, Jarred C.
    Tessier, Jeff
    Tapparo, Jeff
    Roth, Tyler
    Marusich, Kerry
    MANUFACTURING LETTERS, 2022, 33 : 502 - 507
  • [7] Physics-based design for an impeller machining process
    Heigel, Jarred C.
    Tessier, Jeff
    Tapparo, Jeff
    Roth, Tyler
    Marusich, Kerry
    MANUFACTURING LETTERS, 2022, 33 : 502 - 507
  • [8] Physics-based design for an impeller machining process
    Heigel J.C.
    Tessier J.
    Tapparo J.
    Roth T.
    Marusich K.
    Manufacturing Letters, 2022, 33 : 502 - 507
  • [9] Physics-based simulation of high speed machining
    Ng, EG
    El-Wardany, TI
    Dumitrescu, M
    Elbestawi, MA
    MACHINING SCIENCE AND TECHNOLOGY, 2002, 6 (03) : 301 - 329
  • [10] Physics-based explosion modeling
    Bashforth, B
    Yang, YH
    GRAPHICAL MODELS, 2001, 63 (01) : 21 - 44