Generic placeholder image

Recent Patents on Engineering

Editor-in-Chief

ISSN (Print): 1872-2121
ISSN (Online): 2212-4047

Review Article

Recent Patents on Manufacturing Microtextured Surface

Author(s): Chengyi Pan*, Yubin Yan, Yuanfei Cao and Ruinan Shao

Volume 18, Issue 1, 2024

Published on: 13 March, 2023

Article ID: e130223213635 Pages: 26

DOI: 10.2174/1872212117666230213150318

Price: $65

conference banner
Abstract

Background: Surface microtextured technology is an expansion and extension of biomimicry in the tribology field, promoting vigorous development in microtextured tribology. Through artificial means, tiny convex hulls, craters, or stripes of specific size and arrangement are processed on the friction surfaces to change the morphology and contact angle of the surfaces and improve the surface contact state or the lubrication effect. The function and properties of microtextured surfaces are determined by optimizing their geometrical parameters, but the microtextured geometrical parameters require a high-level machining quality. It is necessary to analyze and summarize the existing research on manufacturing microtextured surfaces. By summarizing the preparation methods of microtextured surfaces in the past decade, some valuable conclusions are drawn to predict the future development of technology for manufacturing microtextured surfaces and provide a reference for researchers in related fields. This paper summarizes the representative patents related to the methods of manufacturing microtextured surfaces, analyzes the properties of the microtextured surfaces produced by each method, and discusses the advantages and disadvantages of these methods. The existing problems are summarised through the analyses of patents related to microtextured preparation methods. The future development of new preparation methods has prospected. By cooperating with various processing technologies and optimizing the processing methods, the microtextured surfaces can meet various functional requirements, and the manufacturing precision is higher than before. The processing method needs further improvement according to the working conditions. More new technologies will be invented to create microtextured surfaces.

Graphical Abstract

[1]
L.X. Zhao, B.L. Zhang, and Y. Liu, "State of the art for improving tribological performance based on of surface texturing technology", Tribol., vol. 42, no. 1, pp. 202-224, 2022.
[2]
Y.J. Sun, J.T. Sun, Z.W. Yuan, L.Q. Lang, L.G. Tai, and X.J. Gao, "Effect of surface micro-textures on wear-resisting performance of joint bearings", J. Shenyang Univ. Chem. Technol., vol. 43, no. 2, pp. 169-176, 2021.
[3]
X. Xie, B.F. Yin, X.J. Hua, H. Wang, Y.H. Zhu, S. Xu, and W. Zhu, "Research on sliding friction properties of PTFE/GCR15 laser textured surface under grease lubrication", Surf. Technol., vol. 48, no. 8, pp. 77-82, 2019.
[4]
Y.H. Fu, Y. Zhang, X.T. Zhong, Z.T. Yang, and M.H. He, "Experimental study on the effect of laser micro-texturing on coating properties of cutting tools’ Surface", Appl. Laser, vol. 40, no. 6, pp. 1035-1039, 2020.
[5]
X. He, W.L. Liao, G.R. Wang, M.Y. Li, and L. Jiang, "Research of femtosecond laser processing texture and influence of texture on tribological properties", Laser Infrared, vol. 47, no. 10, pp. 1222-1227, 2017.
[6]
Y.L. Huang, L. Zhong, G.R. Wang, G. Wei, and S.C. Peng, "Research status and progress of surface texture lubrication and friction reduction", Surf. Technol., vol. 50, no. 12, pp. 217-232, 2021.
[7]
J. Guo, X.Y. Wang, Y. Zhao, Y.B. Xu, H.L. Cui, Z.C. Wei, Z.J. Jin, and R.K. Kang, "Recent progress on fabrication technologies and machining performance of textured cutting tools", Jixie Gongcheng Xuebao, vol. 57, no. 13, pp. 172-200, 2021.
[http://dx.doi.org/10.3901/JME.2021.13.172]
[8]
B.M. Wang, and Y. Nan, "Influence of asymmetric surface texture on friction performance of journal bearings", Lubr. Eng., vol. 47, no. 2, pp. 1-7, 2022.
[9]
J. Wang, and X.L. Wang, "State of the art in innovative design of surface texture", Jixie Gongcheng Xuebao, vol. 51, no. 23, pp. 84-95, 2015.
[http://dx.doi.org/10.3901/JME.2015.23.084]
[10]
T.J. Zhao, and N. Wu, "Analysis of the research status of surface texture technology", Mech. Electr. Eng. Technol., vol. 49, no. 11, pp. 116-118, 2020.
[11]
L.C. Ge, J.J. Ma, Y.P. Cao, G.L. Ge, H.R. Hua, Z.G. Wang, and S.Z. Jiang, "Influence of micro texture and its parameters on the effect of lubrication reduction", Laser Infrared, vol. 49, no. 8, pp. 921-928, 2019.
[12]
Y.Z. Mao, Study on the mechanism laser surface texturing and tribological performance of textured hydrodynamic journal bearing, M.S. thesis, Henan University of Science and Technology, Henan, China, 2021.
[13]
S.H. Cui, H.J. Huang, C.Y. Pan, C.H. Li, and X. Li, "Microstructure of friction wheel prepared by wire EDM and its friction performance analysis", Cem. Carbide, vol. 36, no. 4, pp. 306-312, 2019.
[14]
Y.C. Gan, The study on the bioinspired pattened surface of the photo-curing coating and their application, M.S. thesis, Shanghai Jiao Tong University, Shanghai, China, 2015.
[15]
Y.Z. Cui, Research on bionic surface wear and fatigue resistance of ball end milling, M.S. thesis, Harbin University of Science and Technology, Harbin, China, 2021.
[16]
G. Tian, Y. Zhang, X. Feng, and Y. Hu, "Focus on bioinspired textured surfaces toward fluid drag reduction: Recent progresses and challenges", Adv. Eng. Mater., vol. 24, no. 1, p. 2100696, 2022.
[http://dx.doi.org/10.1002/adem.202100696]
[17]
N. Zhang, F.Z. Yang, X.C. Liu, G.H. Liu, and S.F. Sun, "Development situation of surface micro texture with laser processing", Tool Eng., vol. 52, no. 11, pp. 3-6, 2018.
[18]
D. He, X.G. Han, G.C. Chen, Z.Y. Wang, W.B. Chen, and J.J. Xu, "Effect of geometrical morphology and arrangement of micro-texture on friction property of CKS piston ring", China Surf. Eng., vol. 34, no. 2, pp. 59-69, 2021.
[19]
X.J. Hua, H.S. Xu, Y.L. Chen, X. Xie, S. Xu, and C. Wang, "Numerical analysis on lubrication performance of laser micro-textured roller bearings", Surf. Technol., vol. 47, no. 3, pp. 36-41, 2018.
[20]
X.J. Hua, J.G. Sun, P.Y. Zhang, J.L. Ding, J.W. Hao, and K. Liu, "Tribological properties of the laser micro-texture surface filled with solid lubricant at elevated temperature", Surf. Technol., vol. 45, no. 6, pp. 112-118, 2016.
[21]
P.Y. Zhang, Y.H. Zhang, X.J. Hua, Y.H. Fu, B.F. Yin, H. Fu, and J.H. Ji, "Lubrication design and development analysis of micro-texturing surfaces", Surf. Technol., vol. 50, no. 9, pp. 14-32, 2021.
[22]
P. Fernandez-Lucio, I. Villaron-Osorno, O. Pereira Neto, E. Ukar, L.N. Lopez de Lacalle, and A. Gil del Val, "Effects of laser-textured on rake face in turning PCD tools for Ti6Al4V", J. Mater. Res. Technol., vol. 15, pp. 177-188, 2021.
[http://dx.doi.org/10.1016/j.jmrt.2021.08.004]
[23]
Y.J. Lv, C.Y. Fang, Z.G. Xing, W.L. Guo, Y.P. Huang, and H.D. Wang, "Research progress in design, processing and application of bionic texture patterns", Surf. Technol., vol. 50, no. 2, pp. 112-159, 2021.
[24]
Z.Y. Liu, X. Wei, X.Z. Xie, X.G. Hua, and J.W. Hong, "Experimental study about micro texture on ceramic tool surface processed by UV laser", Laser Technol., vol. 40, no. 4, pp. 550-554, 2016.
[25]
X.M. Quan, R.F. Liu, and S.P. Han, "Present study and prospects of laser surface micro-texturing technology", Hot Work. Technol., vol. 44, no. 8, pp. 5-7, 2015.
[26]
N.H. Li, Research on machining mechanism and performance of surface micro-texture of stainless steel based on long pulse laser, M.S. thesis, Nanjing Agricultural University, Nanjing, China, 2020.
[27]
Z.Y. Liu, X. Wei, X.Z. Xie, and X.G. Hua, "Application research on tool surface micro texture with laser processing", Mach. Des. Manuf., vol. 6, pp. 267-272, 2015.
[28]
D.Y. Lou, Q. Liu, S. M, S.K. Yang, Z.S. Zhai, Z. Zheng, J. Cheng, and D. Liu, "Enhancement of condensation heat transfer on stainless steel surface by laser selective micro-texture", Surf. Technol., vol. 48, no. 11, pp. 202-210, 2019.
[29]
Q. Xiao, and R. Xu, "Research progress in surface micro-nano structure of materials prepared by ultrafast laser", China Surf. Eng., vol. 33, no. 1, pp. 1-17, 2020.
[30]
X.M. Liu, D.C. Zhao, L.H. Luo, M. Qu, and L. Chen, "Research of biomimetic biological non-smooth surfacemicro-textured tool application and progress", Mach. Des. Res., vol. 35, no. 3, pp. 114-118, 2019.
[31]
B. Mao, A. Siddaiah, Y. Liao, and P.L. Menezes, "Laser surface texturing and related techniques for enhancing tribological performance of engineering materials: A review", J. Manuf. Process., vol. 53, pp. 153-173, 2020.
[http://dx.doi.org/10.1016/j.jmapro.2020.02.009]
[32]
A.F. Obilor, M. Pacella, A. Wilson, and V.V. Silberschmidt, "Micro-texturing of polymer surfaces using lasers: a review", Int. J. Adv. Manuf. Technol., vol. 120, no. 1-2, pp. 103-135, 2022.
[http://dx.doi.org/10.1007/s00170-022-08731-1]
[33]
J. Chen, and L. Tao, "Research progress of tool surface texture fabricated by laser processing", Henan Sci. and Technol., vol. 658, no. 11, pp. 32-34, 2018.
[34]
N.G. Tran, and D.M. Chun, "Simple and fast surface modification of nanosecond-pulse laser-textured stainless steel for robust superhydrophobic surfaces", CIRP Ann., vol. 69, no. 1, pp. 525-528, 2020.
[http://dx.doi.org/10.1016/j.cirp.2020.04.012]
[35]
P.Y. Zhang, X.J. Hua, Y.H. Fu, and B.F. Yin, "Experimental investigations on laser surface micro-texturing technology and application", Surf. Technol., vol. 42, no. 5, pp. 55-73, 2013.
[36]
Y.Z. Wang, "Development and perspective of surface micro-textured cutting tool", J. Shandong Univ. Sci. Technol., vol. 33, no. 5, pp. 39-44, 2019.
[37]
C. Pan, J. Chang, C. Wang, and Y. Gu, "Study on microstructure wear reduction performance and life prediction of unfolding wheel", J. Mech. Sci. Technol., vol. 36, no. 3, pp. 1397-1405, 2022.
[http://dx.doi.org/10.1007/s12206-022-0227-2]
[38]
X.Q. Hao, X.L. Song, and L. Li, "Development and perspective of surface texturing tools", Surf. Technol., vol. 45, no. 9, pp. 170-181, 2016.
[39]
C.L. Zhao, X.X. Wang, Q.Y. Lv, C. Ma, and Z.R. Ma, "Simulation and experimental study on micro texture of EDM surface", Spec. Mater. Process. Technol., vol. 7, pp. 21-26, 2021.
[40]
T. Tamura, R. Akiyama, R. Tanaka, H. Kawamoto, and S. Umezu, "Groove fabrication on surface of soft gelatin gel utilizing micro-electrical discharge machining (Micro-EDM)", J. Food Eng., vol. 277, p. 109919, 2020.
[http://dx.doi.org/10.1016/j.jfoodeng.2020.109919]
[41]
M.H. Wang, Researches on electrochemical micromachining, M.S. thesis, Nanjing University of Aeronautics and Astronautics, Nanjing, China, 2007.
[42]
H.W. Yu, Optimal design of surface texture based on hydrodynamic lubrication, M.S. thesis, Nanjing University of Aeronautics and Astronautics, Nanjing, China, 2011.
[43]
X. Chen, N. Qu, H. Li, and Z. Guo, "Removal of islands from micro-dimple arrays prepared by through-mask electrochemical micromachining", Precis. Eng., vol. 39, pp. 204-211, 2015.
[http://dx.doi.org/10.1016/j.precisioneng.2014.09.002]
[44]
X.F. Zhang, Research on electrochemical micromachining of mico-dimples, M.S. thesis, Nanjing University of Aeronautics and Astronautics, Nanjing, China, 2017.
[45]
S. Qian, D. Zhu, N. Qu, H. Li, and D. Yan, "Generating micro-dimples array on the hard chrome-coated surface by modified through mask electrochemical micromachining", Int. J. Adv. Manuf. Technol., vol. 47, no. 9-12, pp. 1121-1127, 2010.
[http://dx.doi.org/10.1007/s00170-009-2246-x]
[46]
Z. Wei, "Current status of development of micro electrolytic processing technology", Mech. Manuf., vol. 56, no. 644, pp. 55-59, 2018.
[47]
F.B. Li, D.L. Chi, and N. Li, "Current status of research into micro-electrolytic processing technology", Metall. Ind. Autom, pp. 321-325, 2018.
[48]
DG. Coblas, A. Fatu, A. Maoui, and M. Hajjam, "Manufacturing textured surfaces: State of art and recent developments", J. Eng. Tribol., vol. 229, no. 1, pp. 3-29, 2015.
[http://dx.doi.org/10.1177/1350650114542242]
[49]
H.G. Huang, Z.N. Guo, and Q. Yang, "Etching micromachining of micro-structure arrays on injection mold cavity surface", Zhongguo Jixie Gongcheng, vol. 27, no. 17, pp. 2356-2360, 2016.
[50]
J.T. Wharton, Structural functional surface design and manufacture, M.S. thesis, Liverpool John Moores University, United Kingdom, 2018.
[51]
C.Y. Zhang, Research on surface microstructure and characteristics using the ultrasonic vibration assisted end milling, M.S. thesis, Henan Polytechnic University, Henan, China, 2019.
[52]
K. Egashira, T. Taniguchi, H. Tsuchiya, and M. Miyazaki, "Microultrasonic machining using multitools", ICPMT, vol. 04, pp. 297-301, 2004.
[53]
C.Y. Zhang, and B. Zhao, "Research progress of properties of surface micro-structure in ultrasonic vibration assisted machining", Surf. Technol., vol. 48, no. 5, pp. 259-274, 2019.
[54]
H.N. Hosseinabadi, S.A. Sajjady, and S. Amini, "Creating micro textured surfaces for the improvement of surface wettability through ultrasonic vibration assisted turning", Int. J. Adv. Manuf. Technol., vol. 96, no. 5-8, pp. 2825-2839, 2018.
[http://dx.doi.org/10.1007/s00170-018-1580-2]
[55]
J. Ma, M.J. Zhang, Q. Liu, X.L. Liu, C.X. Yue, and S.C. Yang, "A review of the research progress of bionic cutting tools", Jixie Gongcheng Xuebao, vol. 58, no. 13, pp. 261-281, 2022.
[56]
A.S. Zhang, Study on the influence mechanism of tool posture on machined surface generation and tool wear, M.S. thesis, Harbin University of science and technology, Harbin, China, 2022.
[57]
W. Zhang, S. Meng, and L. Zhang, "Wear characteristics analysis of high speed milling bionic surface", J. Harbin Univ. Sci. Technol., vol. 24, no. 6, pp. 26-32, 2019.
[58]
X. Cui, Z. Guo, and J. Guo, "Intermittent turning performance of ceramic tools with surface micro-geometry designed considering fluid-like behavior of chip", Ceram. Int., vol. 44, no. 14, pp. 16890-16899, 2018.
[http://dx.doi.org/10.1016/j.ceramint.2018.06.127]
[59]
I. Lazoglu, "Sculpture surface machining: a generalized model of ball-end milling force system", Int. J. Mach. Tools Manuf., vol. 43, no. 5, pp. 453-462, 2003.
[http://dx.doi.org/10.1016/S0890-6955(02)00302-4]
[60]
W. Zhang, X.F. Du, C. Cheng, and P.F. Li, "Theoretical modeling and experimental verification of ball-end milling curved surface micro-units", Zhongguo Jixie Gongcheng, vol. 29, no. 13, pp. 1553-1559, 2018.
[61]
M. Barton, M. Bizzarri, F. Rist, O. Sliusarenko, and H. Pottmann, "Geometry and tool motion planning for curvature adapted CNC machining", ACM Trans. Graph., vol. 1, no. 1, 2021.
[62]
S.K. Rajbongshi, M. Annebushan Singh, and D. Kumar Sarma, "A comparative study in machining of AISI D2 steel using textured and non-textured coated carbide tool at the flank face", J. Manuf. Process., vol. 36, pp. 360-372, 2018.
[http://dx.doi.org/10.1016/j.jmapro.2018.10.041]
[63]
C. Lu, "Study on prediction of surface quality in machining process", J. Mater. Process. Technol., vol. 205, no. 1-3, pp. 439-450, 2008.
[http://dx.doi.org/10.1016/j.jmatprotec.2007.11.270]
[64]
G.G. Escudero, P. Bo, H. González-Barrio, A. Calleja-Ochoa, M. Bartoň, and L.N.L. de Lacalle, "5-axis double-flank CNC machining of spiral bevel gears via custom-shaped tools—Part II: physical validations and experiments", Int. J. Adv. Manuf. Technol., vol. 119, no. 3-4, pp. 1647-1658, 2022.
[http://dx.doi.org/10.1007/s00170-021-08166-0]
[65]
J. Xie, P. Li, K.K. Wu, X.B. Pei, Y.J. Liu, and H.F. Xie, "Micro and precision grinding technique and functional behavior development of micro-structured surfaces", Jixie Gongcheng Xuebao, vol. 49, no. 23, pp. 182-190, 2013.
[http://dx.doi.org/10.3901/JME.2013.23.182]
[66]
X. Meng, K. Zhang, X. Guo, C. Wang, and L. Sun, "Preparation of micro-textures on cemented carbide substrate surface by plasma-assisted laser machining to enhance the PVD tool coatings adhesion", J. Mater. Process. Technol., vol. 288, p. 116870, 2021.
[http://dx.doi.org/10.1016/j.jmatprotec.2020.116870]
[67]
Z.Q. Liang, M.Z. Li, B.C. Chen, T.F. Zhou, S.D. Li, P. Yan, S.Y. Zhang, and X.B. Wang, "Fabrication and cutting performance of micro-textured tools based on micro-grinding", Surf. Technol., vol. 49, no. 2, pp. 143-150, 2020.
[68]
J. Xie, M.J. Luo, K.K. Wu, and L.F. Yang, "Micro-grinding of micro-grooved rake surface of CBN cutter influencing dry cutting temperature", Jixie Gongcheng Xuebao, vol. 50, no. 11, pp. 192-197, 2014.
[http://dx.doi.org/10.3901/JME.2014.11.192]
[69]
X. Jin, F. Yan-ke, C. Jian, and W. Ke, "Precision grinding of micro V-groove array on optical fiber quartz glass substrate", Optics and Precision Engineering, vol. 23, no. 8, pp. 2243-2249, 2015.
[http://dx.doi.org/10.3788/OPE.20152308.2243]
[70]
H. Gonzalez, A. Calleja, O. Pereira, N. Ortega, L. Lopez de Lacalle, and M. Barton, "Super abrasive machining of integral rotary components using grinding flank tools", Metals, vol. 8, no. 1, p. 24, 2018.
[http://dx.doi.org/10.3390/met8010024]
[71]
F. Zhao, and Y.L. Yang, "Application and progress of CVD technology", Heat Treat., vol. 24, no. 4, pp. 7-10, 2009.
[72]
Z. Cai, B. Liu, X. Zou, and H.M. Cheng, "Chemical vapor deposition growth and applications of two-dimensional materials and their heterostructures", Chem. Rev., vol. 118, no. 13, pp. 6091-6133, 2018.
[http://dx.doi.org/10.1021/acs.chemrev.7b00536] [PMID: 29384374]
[73]
W.T. Lv, J.J. Mao, C. Liang, J.H. Li, D.X. Mo, and D.K. Yuan, "Preparation of dense super-infiltrating nanosilica-fluorine films by plasma chemical vapor deposition", Silicone Mater., vol. 36, no. 1, pp. 11-16, 2022.
[74]
S. Wang, W.H. Wang, J-P. Lü, and Z.H. Ni, "Chemical vapor deposition growth of large-areas two dimensional materials: Approaches and mechanisms", Wuli Xuebao, vol. 70, no. 2, p. 026802, 2021.
[http://dx.doi.org/10.7498/aps.70.20201398]
[75]
D. Wu, "Application and development of physical vapor deposition technology", Mech. Eng. Autom, no. 4, pp. 214-216, 2011.
[76]
Y.F. Wang, C. Zhou, Q.Z. Yu, W.L. Liu, and S.R. Wang, "Development and application of physical vapor deposition technology in marine equipment field", Shandong Ind. Technol, no. 3, pp. 12-22, 2021.
[77]
Z.B. Qin, Z. Wu, and W.B. Hu, "Application and progress of surface engineering technology", Chin. J. Nonferrous Met., vol. 29, no. 9, pp. 2192-2216, 2019.
[78]
H.B. Zhang, Study on pulse-jet electrodeposition of micropit Ni-AIN bionic nanocoatings on metal surfaces, M.S. thesis, Northeast Petroleum University, Daqing, China, 2022.
[79]
L.Y. Xu, Application research of electrodeposition technology in lithium metal secondary battery and trivalent chromium hard chromium electroplating, M.S. thesis, Wuhan University, Wuhan, China, 2021.
[80]
C.S. Liu, Study on the tribological and protective properties of nanocrystalline cobalt based alloy/composite film produced by electrodeposition, M.S. thesis, South China University of Technology, Guangzhou, China, 2017.
[81]
Z. Wu, H. Bao, Y. Xing, and L. Liu, "Tribological characteristics and advanced processing methods of textured surfaces: a review", Int. J. Adv. Manuf. Technol., vol. 114, no. 5-6, pp. 1241-1277, 2021.
[http://dx.doi.org/10.1007/s00170-021-06954-2]
[82]
Y. Zhang, The application of electrochemical deposition technique for electrochemical sensor and latent fingermark visualization, M.S. thesis, University of Science and Technology Beijing, Beijing, China, 2016.
[83]
X.W. Zhou, Z.G. Liu, Y.X. Wang, and Y.F. Shen, "Influence of ultrasound with varying frequencies on microstructures and wear resistance for Ni nanocrystals", Rare Met. Mater. Eng., vol. 48, no. 12, pp. 3978-3989, 2019.
[84]
J.M. Ma, J.M. Zheng, C. Liu, Z. Yang, and Y.Q. Hu, "Ultrasonic vibration impact surface texture method and experimental study", Ordnance Mater. Sci. Eng., vol. 43, no. 1, pp. 62-66, 2020.
[85]
X.F. Liu, Research on the forming mechanism and surface properties of micro-textured surfaces fabricated by ultrasonic vibration assisted turning, M.S. thesis, Shandong University, Shandong, China, 2020.
[86]
X. Feng, J.Z. Zhou, and J.J. Wang, "Research on improving friction performance of grey cast iron by laser peening", Appl. Laser., vol. 35, no. 5, pp. 521-524, 2015.
[87]
Y. Xu, Z. Du, L. Ruan, and W. Zhang, "Research status and development of laser shock peening", J. Laser Appl., vol. 28, no. 2, p. 022508, 2016.
[http://dx.doi.org/10.2351/1.4943999]
[88]
K. Shu, H.C. Qiao, J.B. Zhao, Y. Chen, B.Y. Sun, Y.Q. Yang, and Y.W. Han, "Research progress on the effect of laser shock processing technology on the properties of weld", Surf. Technol., 2022.
[89]
S.H. Wang, and X.Y. Wu, "Research on applications of surface texturing based on tribology", Tool Eng., vol. 45, no. 12, pp. 7-11, 2011.
[90]
M. Zhang, Fabrication and application of micro/nano-structure based on nanoimprint lithography, M.S. thesis, University of Chinese Academy of Sciences, Beijing, China, 2016.
[91]
R. Desai, C.E. Auffinger, C.V. Camp, and E. Greene, "Method of surface micro-texturing with a subtractive agent", U.S. Patent 16,270,995, 2020.
[92]
Z.W. Wang, H.Y. Zheng, W. Yuan, J.C. Cong, Q.J. Guo, L.G. Zhang, and L.A. Zhang, "Laser processing of ductile iron material surface composite micro-weave method and processing system", C.N. Patent 111571004 A, 2020.
[93]
S. Wu, Y.J. Xie, C.W. Lu, and Y.Y. Hong, "Anti-slag spatter laser processing of steel surfaces with microfabrication method", C.N. Patent 112975121 A, 2021.
[94]
Z.X. Zou, Z.N. Guo, J.F. He, Y. Zhou, J.W. Liu, and Z.Q. Yu, "A surface microfabricated processing device", C.N. Patent 109332831 B, 2019.
[95]
M. Bichotte, Y. Jourlin, and L. Dubost, "System and method for producing an optical mask for surface microtexturing, and surface microtexturing plant and method", U.S. Patent 10,969,679 B2, 2021.
[96]
Z.N. Guo, S.Z. Jiang, Y. Deng, R.L. Zhang, and G.X. Liu, "A method for the preparation of surface weaving of ultra-oleophobic micro-pillar arrays", C.N. Patent 105220185 B, 2017.
[97]
Y. Shen, B. Li, Y.T. Lv, B.H. Yu, and J.J. Xu, "An apparatus and method for electrolytic processing of micro-weave on the surface of cylinder liners", C.N. Patent 108436205 B, 2019.
[98]
G.N. Dong, Y. Li, J.D. Guo, S.S. Ren, H.L. Lu, and G.H. Tang, "A method for laser microweaving of cooled metal surfaces", C.N. Patent 106392303 A, 2017.
[99]
G.Q. Wu, F. Wang, X.D. Zhang, J.N. Yao, W.N. Zhu, Z.H. Hu, and W.J. Liu, "A laser microfabrication method", C.N. Patent 110421264 B, 2021.
[100]
P.M. Ming, X.C. Li, X.M. Zhang, W. Wang, Y.Y. Zhang, G. Qin, L. Yan, X.S. Zheng, and S. Niu, "A microbial mask for electrolytic processing of microfabricated structures", C.N. Patent 112719491A, 2021.
[101]
Y.Q. Xing, L. Liu, Z. Wu, P. Huang, D.K. Sun, and J.J. Yang, "A micro-weave gradient coated tool and its preparation method", C.N. Patent 110016642 B, 2021.
[102]
J.J. Hendron, and J.R. Stack, "Chemical mechanical polishing pads having a consistent pad surface microtexture", U.S. Patent 2018/0085888 A1, 2018.
[103]
H.D. He, C.J. Wang, Y. Sun, N. Liu, L.Y. Sun, and X.Z. Ning, "A processing method for forming microstructures on the surface of a workpiece and control system", C.N. Patent 111299731 B, 2021.
[104]
W. Zhang, Y.L. Sun, and Y.Z. Cui, "A bionic wear-resistant sliding guide and its high-speed milling manufacturing method", C.N. Patent 112025328 A, 2020.
[105]
M. Cao, Q. Zhang, D.L. Zhang, and H. Li, "A method for the preparation of micro-weave structures on alloy surfaces", C.N. Patent 109989063 B, 2020.
[106]
P.P. Wang, Y.F. He, B. Xu, W. Jiang, and W.M. Gan, "Preparation of micro-weave for tool surface coating", C.N. Patent 112342504 A, 2021.
[107]
N. Alessio, and F. Stefano, "Machine for the surface processing of products through plasma deposition of thin layers of coating materials, and method for processing products through plasma", W.O. Patent 2021/094919 A1, 2021.
[108]
P.X. Lan, A.A. Polycarpou, and J. Meyer, "Surface texturing for advanced polymers", U.S. Patent 2020/0147840 Al, 2020.
[109]
J. Kenna, "Graphite materials and devices with surface microtexturing", U.S. Patent 2019/0263048 A1, 2019.
[110]
Z. Gao, Z.Q. Liu, D.L. Chen, and Z.J. Liu, "Preparation of a surface weave micro-imprinting mould", C.N. Patent 112936844 A, 2021.
[111]
Y.Q. Hua, J.M. Zhu, W.W. Shuai, Y.X. Ye, R.T. Li, and R.F. Chen, "Surface microstructure of thermal barrier coating bonded layers using laser impact modulation weaving methods", C.N. Patent 111334744 A, 2020.
[112]
P. Yao, P.F. Wang, D.K. Chu, S.S. Qu, C.Z. Huang, Q.W. Wang, W.Y. He, and L. Liu, "A punching and processing method for ultrasonic impact combined with microfabrication pressing die and method", C.N. Patent 114101501 A, 2022.
[113]
W. Zhang, H.L. Yu, X.C. Ji, M. Wei, Y.M. Guo, Y. Wang, H.M. Wang, Z.Y. Song, and X.Y. Zhou, "A processing method for the preparation of regular micro-weave structures on metal substrate or coating surfaces", C.N. Patent 103042375 B, 2016.
[114]
X. Lin, J.B. Li, and Y. Liu, "A device and method for processing a harmonic reducer with a flexible wheel and a micro-weave method", C.N. Patent 113931994 A, 2022.
[115]
Z.P. Pei, and F.Z. Dai, "An efficient microweaving based on laser shock wave coupling effect method of manufacturing", C.N. Patent 110732780 A, 2020.
[116]
M.C. Gupta, B.K. Nayak, and P.O. Caffrey, "Micro-structure and nano-structure replication methods and article of manufacture", U.S. Patent 10,131,086 B2, 2018.
[117]
H.F. Yang, D.H. He, J.B. Hao, and H. Zhu, "Method and apparatus for the preparation of thin film coated micro-nanowebs", C.N. Patent 102418082 B, 2013.
[118]
W.L. Hunter, J.M. Gross, and R. Avelar, "Surface texture configuration for self-retaining sutures and methods for forming same", U.S. Patent 2013/0204295 A1, 2013.
[119]
Y. Meng, and J.X. Deng, "A micro and nano based on ultrasonic tumbling and femtosecond laser processing weaving guide and method", C.N. Patent 113894498 A, 2022.
[120]
L. Jiang, H. Wu, and W.N. Han, "A method for processing and preparing surface micro-nano composite structures", C.N. Patent 113414497 A, 2021.
[121]
X. Xie, X.J. Hua, B.F. Yin, and P.Y. Zhang, "A laser thermally coupled woven solid lubrication coating preparation method", C.N. Patent 108893733 B, 2020.
[122]
M. Flather, and P. Saunders, "Textured surface articles and method of making", U.S. Patent 2016/0360808 A1, 2016.
[123]
K.M. Zhao, Y. Wang, Z.Y. Xu, T.Z. Jiang, and M. Chen, "A capsule-type microfabric with high bond strength and its processing method", C.N. Patent 107009027 A, 2020.
[124]
P. Yi, Y.C. Liu, X.H. Zhan, D.L. Jia, J. Ma, P.F. Xiao, and C. Huang, "A method for the preparation of a vacuum plasma self-lubricating coating on the surface of a laser microfiber", C.N. Patent 108251783 B, 2020.

Rights & Permissions Print Cite
© 2024 Bentham Science Publishers | Privacy Policy