ARTICLES

Optimal tool design in micro-milling of difficult-to-machine materials

  • Lorcan O'Toole ,
  • Feng-Zhou Fang
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  • 1. Centre of Micro/Nano Manufacturing Technology (MNMT-Dublin), University College Dublin, Dublin 4, Ireland;
    2. State Key Laboratory of Precision Measuring Technology and Instruments, Laboratory of Micro/Nano Manufacturing Technology (MNMT), Tianjin University, Tianjin, 300072, People's Republic of China

Received date: 2022-02-10

  Revised date: 2022-05-24

  Online published: 2023-05-20

Supported by

This work was supported by the Science Foundation Ireland (Grant No. 15/RP/B3208) and the “111” Project by the State Administration of Foreign Experts Affairs and the Ministry of Education of China (Grant No. B07014).

Abstract

The limitations of significant tool wear and tool breakage of commercially available fluted micro-end mill tools often lead to ineffective and inefficient manufacturing, while surface quality and geometric dimensions remain unacceptably poor. This is especially true for machining of difficult-to-machine (DTM) materials, such as super alloys and ceramics. Such conventional fluted micro-tool designs are generally down scaled from the macro-milling tool designs. However, simply scaling such designs from the macro to micro domain leads to inherent design flaws, such as poor tool rigidity, poor tool strength and weak cutting edges, ultimately ending in tool failure. Therefore, in this article a design process is first established to determine optimal micro-end mill tool designs for machining some typical DTM materials commonly used in manufacturing orthopaedic implants and micro-feature moulds. The design process focuses on achieving robust stiffness and mechanical strength to reduce tool wear, avoid tool chipping and tool breakage in order to efficiently machine very hard materials. Then, static stress and deflection finite element analysis (FEA) is carried out to identify stiffness and rigidity of the tool design in relation to the maximum deformations, as well as the Von Mises stress distribution at the cutting edge of the designed tools. Following analysis and further optimisation of the FEA results, a verified optimum tool design is established for micro-milling DTM materials. An experimental study is then carried out to compare the optimum tool design to commercial tools, in regards to cutting forces, tool wear and surface quality.

The full text can be downloaded at https://link.springer.com/article/10.1007/s40436-022-00418-w

Cite this article

Lorcan O'Toole , Feng-Zhou Fang . Optimal tool design in micro-milling of difficult-to-machine materials[J]. Advances in Manufacturing, 2023 , 11(2) : 222 -247 . DOI: 10.1007/s40436-022-00418-w

References

1. Koo JY, Kim JS, Kim PH (2014) Machining characteristics of micro-flow channels in micro-milling process. Mach Sci Technol 18(4):509–521
2. Vázquez E, Rodríguez CA, Elías-Zú?iga A et al (2010) An experimental analysis of process parameters to manufacture metallic micro-channels by micro-milling. Int J Adv Manuf Technol 51(9/12):945–955
3. Bodziak S, de Souza AF, Rodrigues AR et al (2013) Surface integrity of moulds for microcomponents manufactured by micromilling and electro-discharge machining. J Braz Soc Mech Sci Eng 36:632–635
4. Chen L, Deng D, Pi G et al (2020) Burr formation and surface roughness characteristics in micro-milling of microchannels. Int J Adv Manuf Technol 111(5):1277–1290
5. Fang FZ, Liu K, Kurfess TR et al (2006) Tool-based micro machining and applications in MEMS. In: MEMS/NEMS. Springer, pp 678–740
6. Guckenberger DJ, de Groot TE, Wan AMD et al (2015) Micromilling: a method for ultra-rapid prototyping of plastic microfluidic devices. Lab Chip 15(11):2364–2378
7. Chen W, Zheng L, Huo D et al (2018) Surface texture formation by non-resonant vibration assisted micro milling. J Micromech Microeng 28(2):025006. https://doi.org/10.1088/1361-6439/aaa06f
8. Chen L, Liu Z, Li Y et al (2018) Effects of micro-milled malposed dimple structures on tribological behavior of Al-Si alloy under droplet lubricant condition. Int J Adv Manuf Technol 98(1/4):143–150
9. Maboudian R, Howe RT (1997) Critical review: adhesion in surface micromechanical structures. J Vac Sci Technol B 15(1):1–20
10. O’Toole L, Kang CW, Fang FZ (2021) Precision micro-milling process: state of the art. Adv Manuf 9(2):173–205
11. O’Toole L, Kang C, Fang FZ (2019) Advances in rotary ultrasonic-assisted machining. Nanomanuf Metrol 3:1–25
12. Cheng X, Wang Z, Nakamoto K et al (2011) A study on the micro tooling for micro/nano milling. Int J Adv Manuf Technol 53(5/8):523–533
13. Fang FZ, Wu H, Liu X et al (2003) Tool geometry study in micromachining. J Micromech Microeng 13(5):726–731
14. Fleischer J, Deuchert M, Ruhs C et al (2008) Design and manufacturing of micro milling tools. Microsyst Technol 14(9/11):1771–1775
15. Shi Z, Liu Z, Li Y et al (2017) Swept mechanism of micro-milling tool geometry effect on machined oxygen free high conductivity copper (OFHC) surface roughness. Materials 10(2):120. https://doi.org/10.3390/ma10020120
16. Cheng X, Wang Z, Nakamoto K et al (2010) Design and development of PCD micro straight edge end mills for micro/nano machining of hard and brittle materials. J Mech Sci Technol 24(11):2261–2268
17. Li P, Oosterling JAJ, Hoogstrate AM et al (2011) Design of micro square endmills for hard milling applications. Int J Adv Manuf Technol 57:859–870
18. Wu T, Cheng K, Rakowski R (2012) Investigation on tooling geometrical effects of micro tools and the associated micro milling performance. Proc Inst Mech Eng B J Eng Manuf 226(9):1442–1453
19. Kirsch B, Bohley M, Arrabiyeh PA et al (2017) Application of ultra-small micro grinding and micro milling tools: possibilities and limitations. Micromachines 8(9):261. https://doi.org/10.3390/mi8090261
20. Zhan Z, Li L, He N et al (2014) Design and manufacturing of ultra-hard micro-milling tool. Trans Tianjin Univ 20(6):415–421
21. Aramcharoen A, Mativenga PT (2009) Size effect and tool geometry in micromilling of tool steel. Precis Eng 33(4):402–407
22. Saptaji K, Subbiah S (2017) Burr reduction of micro-milled microfluidic channels mould using a Tapered tool. Procedia Eng 184:137–144
23. Ohnishi O, Onikura H, Min SK et al (2007) Characteristics of grooving by micro end mills with various tool shapes and approach to their optimal shape. Memoirs of the Faculty of Engineering, Kyushu University, 67:143–151
24. Lu X, Jia Z, Wang F et al (2018) Model of the instantaneous undeformed chip thickness in micro-milling based on tooth trajectory. Proc Inst Mech Eng B J Eng Manuf 232(2):226–239
25. Liu X, DeVor RE, Kapoor SG (2006) An analytical model for the prediction of minimum chip thickness in micromachining. J Manuf Sci Eng 128(2):474–481
26. Solid (continuum) elements. https://abaqus-docs.mit.edu/2017/English/SIMACAEELMRefMap/simaelm-c-solidcont.htm. Accessed 19 Nov 2021
27. Chen CH, Wang YC, Lee BY (2013) The optimal design of micro end mill for milling SKD61 tool steel. Int J Adv Manuf Technol 68(1/4):165–173
28. Petrò S, Moroni G (2020) 3D identification of face and flank in micro-mills for automatic measurement of rake angle. Nanomanuf Metrol 3(2):151–163
29. Weule H, Hüntrup V, Tritschler H (2001) Micro-cutting of steel to meet new requirements in miniaturization. CIRP Ann 50(1):61–64
30. Boyer R, Welsch G, Collings E (1994) Materials properties handbook: titanium alloys. ASM International, Materials Park, OH
31. Manuela-Roxana D, Dijm?rescu M, Voiculescu I et al (2018) Study on the influence of cutting parameters on surface quality when machining a CoCrMo alloy. In: IOP conference series: materials science and engineering. 400(2):022020. https://doi.org/10.1088/1757-899X/400/2/022020
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