Simultaneous Nano-Texturing onto a CVD-Diamond Coated Piercing Punch with Femtosecond Laser Trimming
<p>Manufacturing concept of the simultaneous nano-texturing with laser trimming process and of the concurrent formation of nanotextures with fine piercing. (<b>a</b>) Simultaneous nanotexturing in the axial direction on the punch side surface with femtosecond laser trimming and (<b>b</b>) the concurrent formation of nanotextures on the hole surface along the piercing direction with fine piercing of a metallic sheet.</p> "> Figure 2
<p>Femtosecond laser trimming experimental setup. (<b>a</b>) Femtosecond laser micro-machining system and (<b>b</b>) two-step laser trimming procedure.</p> "> Figure 3
<p>Fine stamping system with a sub-micrometer positioning capacity.</p> "> Figure 4
<p>Comparison of CVD (Chemical Vapor Deposition)-diamond coated WC (Co) punches before and after femtosecond laser trimming: (<b>a</b>) before trimming and (<b>b</b>) after trimming.</p> "> Figure 5
<p>SEM and LM images on the trimmed CVD-diamond coating with different magnifications. (<b>a</b>) Overall trimmed surface, (<b>b</b>) measurement of the trimmed edge width by LM, and (<b>c</b>) the unidirectional formation of nanotextures on the trimmed side surfaces of the diamond coatings.</p> "> Figure 6
<p>Comparison of the SEM images of the nanotextures formed onto the trimmed diamond coatings among the three diamond-coated punches with different depths (d) of cut. (<b>a</b>) d = 1.8 μm, (<b>b</b>) d = 2.4 μm, and (<b>c</b>) d = 3.6 μm.</p> "> Figure 7
<p>Measured profile of the trimmed side surface of the CVD-diamond coating using white-light interferometry. (<b>a</b>) Two-dimensional surface angulation of the trimmed diamond coating, and (<b>b</b>) lateral surface profile of the nano-textured ripples on the trimmed surface.</p> "> Figure 8
<p>SEM images of the pierced hole surfaces with different magnifications. (<b>a</b>) Overall image of the hole pierced into the AISI316L sheet, (<b>b</b>) the burnished surface of the hole, and (<b>c</b>) the nanotextures transcribed onto the hole’s surface.</p> "> Figure 9
<p>Measured profile of the hole surface pierced into the AISI316L sheet by white-light interferometry. (<b>a</b>) Two-dimensional surface angulation of the pierced hole surface and (<b>b</b>) lateral surface profile of the nano-textures transcribed onto the pierced hole.</p> "> Figure 10
<p>Comparison of hole surfaces pierced by the WC (Co) punch and by the trimmed diamond-coated WC (Co) punch. (<b>a</b>) Piercing by the bare WC (Co) punch and (<b>b</b>) piercing by the trimmed and diamond-coated WC (Co) punch.</p> "> Figure 11
<p>SEM image on the nanotextured side surface of the punch from the punch edge along the punch length after piercing 100 holes into the AISI316L sheets.</p> ">
Abstract
:Featured Application
Abstract
1. Introduction
2. Experimental Procedure
2.1. Femtosecond Laser Trimming System
2.2. Laser Trimming Procedure
2.3. Fine Stamping System
3. Experimental Results
3.1. Simultaneous Nanotexturing with Femtosecond Laser Trimming
3.2. Concurrent Transcription of the Nanotextures onto the Hole Surfaces with Piercing
4. Discussion
5. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
- Huynh, T.A.; Hsieh, M.-F. Performance evaluation of thin electrical steels applied to interior permanent magnet motor. In Proceedings of the 2016 19th International Conference on Electrical Machines and Systems (ICEMS), Chiba, Japan, 13–16 November 2016; pp. 1–6. [Google Scholar]
- Precise Production of Electrical Steel Motor Cores. Available online: https://www.kuroda-precision.co.jp/products/lp/ (accessed on 24 February 2020).
- Prolongation of Piercing Punches. Available online: https://americanpunchco.com/PDFs/American-Punch-Punch-Tips.pdf (accessed on 24 February 2020).
- Aizawa, T.; Katsuta, E.; Shiratori, T.; Dohda, K. Fine piercing of electromagnetic steel sheets by the plasma nitrided tools. Procedia Eng. 2017, 207, 1027–1032. [Google Scholar] [CrossRef]
- Yunata, E.E.; Aizawa, T. Micro-texturing into DLC/diamond coated molds and dies via high density oxygen plasma etching. Manuf. Rev. 2015, 2, 13. [Google Scholar] [CrossRef] [Green Version]
- Shiratori, T.; Aizawa, T.; Nakano, S.; Kato, T. Piercing Punch and Die, Their Fabrication and Shaping Methods, and Wrought Products. Japan Patent #2019-79948 2019, 27 September 2019. [Google Scholar]
- Katsuta, E.; Aizawa, T.; Morita, H.; Dohda, K.; Anzai, M. Fine piercing of electromagnetic steel sheets by micro-punches under nearly zero clearance. Procedia Manuf. 2018, 15, 1459–1466. [Google Scholar] [CrossRef]
- Katsuta, E.; Aizawa, T.; Dohda, K.; Yoshihara, S.-I. Fabrication of lower temperature plasma-nitrided die and development of zero clearance piercing of electromagnetic sheets. J. Jpn. Soc. Technol. Plast. 2019, 60, 70–75. [Google Scholar] [CrossRef]
- Aizawa, T.; Inohara, T. Geometric adjustment and sizing of CVD-diamond coatings via oxygen plasma etching and laser machining. In Proceedings of the 7th SEATUC Conference, (Bandon, 2013) CD-ROM, Bandung, Indonesia, 5–6 March 2013. [Google Scholar]
- Aizawa, T.; Shiratori, T.; Inohara, T. Short-pulse laser precise trimming of CVD-diamond coated punch for fine piercing. In Proceedings of the 2nd Asian Pacific Symposium on Technology of Plasticity (APSTP) 2019, Tokyo, Japan, 31 July–3 August 2019; pp. 123–128. [Google Scholar]
- Aizawa, T.; Shiratori, T.; Yoshino, T.; Inohara, T. Femtosecond laser trimming of CVD-diamond coated punch for fine embossing. Mater. Trans. 2020, 61, 244–250. [Google Scholar] [CrossRef]
- van Driel, H.M.; Sipe, J.E.; Young, J.F. Laser-induced periodic surface structure on solids: A universal phenomenon. Phys. Rev. Lett. 1982, 49, 1955–1958. [Google Scholar] [CrossRef]
- Aizawa, T.; Inohara, T. Pico- and femtosecond laser micromachining for surface texturing. In Micromachining; Intech Open: London, UK, 2019; pp. 1–24. [Google Scholar]
- Le Harzic, R.; Stracke, F.; Zimmermann, H. Formation mechanism of femtosecond laser-induced high spatial frequency ripples on semiconductors at low fluence and high repetition rate. J. Appl. Phys. 2013, 113, 183503–183511. [Google Scholar] [CrossRef] [Green Version]
- Hashida, M. Nano-ablation of materials interacted with femtosecond laser pulses. J. Plasma Fusion Res. 2018, 94, 244–248. [Google Scholar]
- Das, S.K.; Messaoudi, H.; Debroy, A.; McGlynn, E.; Grunwald, R. Multiphoton excitation of surface plasmon-polaritons and scaling of nanoripple formation in large bandgap materials. Opt. Mater. Express 2013, 3, 17051715. [Google Scholar] [CrossRef] [Green Version]
- Aizawa, T.; Inohara, T.; Wasa, K. Fabrication of superhydrophobic stainless steel nozzles by femtosecond laser micro-/nano-texturing. Int. J. Autom. Technol. 2020, 14, 159–165. [Google Scholar] [CrossRef]
- de Groot, P. Principles of interference microscopy for the measurement of surface topography. Adv. Opt. Photonics 2015, 7, 1–65. [Google Scholar] [CrossRef]
- Fine Blanking Technology. Available online: https://www.feintool.com/en/technology/fineblanking/ (accessed on 24 February 2020).
- Biglari, F.R.; Kermani, A.T.; Parsa, M.H.; Nikbin, K.M.; O’dowd, N.P. Comparison of fine and conventional blanking based on ductile fracture criteria. In Proceedings of the ASME 7th Biennial Conf. Engineering Systems Design and Analysis, Manchester, UK, 19–22 July 2004; pp. 265–270. [Google Scholar]
- Shiratori, T.; Yoshino, T.; Suzuki, Y.; Katoh, M.; Nakano, S.; Yang, M. Deformation and transformation behavior in micropiercing of SUS304. Procedia Manuf. 2018, 15, 1452–1458. [Google Scholar] [CrossRef]
- Gecys, P.; Vinciunas, A.; Gedvilas, M.; Kasparaitic, A.; Lazdinas, R.; Raciukaitis, G. Ripple formation by femtosecond laser pulses for enhanced absorptance of stainless steel. J. Laser Micro Nanoeng. 2015, 10, 129–133. [Google Scholar] [CrossRef]
- He, X.; Datta, A.; Nam, W.; Traverso, L.M.; Xu, X. Sub-diffraction limited writing based on laser induced periodic surface structures. Sci. Rep. 2016, 6, 35035. [Google Scholar] [CrossRef] [PubMed]
- Sugihara, T.; Enomoto, T. Performance of cutting tools with dimple textured surfaces: Comparative study of different texture patterns. J. Inter. Soc. Precis. Eng. Nanotechnol. 2017, 49, 52–60. [Google Scholar] [CrossRef]
© 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
Share and Cite
Aizawa, T.; Shiratori, T.; Kira, Y.; Inohara, T. Simultaneous Nano-Texturing onto a CVD-Diamond Coated Piercing Punch with Femtosecond Laser Trimming. Appl. Sci. 2020, 10, 2674. https://doi.org/10.3390/app10082674
Aizawa T, Shiratori T, Kira Y, Inohara T. Simultaneous Nano-Texturing onto a CVD-Diamond Coated Piercing Punch with Femtosecond Laser Trimming. Applied Sciences. 2020; 10(8):2674. https://doi.org/10.3390/app10082674
Chicago/Turabian StyleAizawa, Tatsuhiko, Tomomi Shiratori, Yoshihiro Kira, and Tadahiko Inohara. 2020. "Simultaneous Nano-Texturing onto a CVD-Diamond Coated Piercing Punch with Femtosecond Laser Trimming" Applied Sciences 10, no. 8: 2674. https://doi.org/10.3390/app10082674
APA StyleAizawa, T., Shiratori, T., Kira, Y., & Inohara, T. (2020). Simultaneous Nano-Texturing onto a CVD-Diamond Coated Piercing Punch with Femtosecond Laser Trimming. Applied Sciences, 10(8), 2674. https://doi.org/10.3390/app10082674