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Engineering >> 2018, Volume 4, Issue 6 doi: 10.1016/j.eng.2018.11.005

Recent Progress in Surface Integrity Research and Development

a State Key Laboratory of Precision Measuring Technology and Instruments, Center of Micro/Nano Manufacturing Technology (MNMT), Tianjin University, Tianjin 300072, China

b Center of Micro/Nano Manufacturing Technology (MNMT-Dublin), School of Mechanical and Materials Engineering, University College Dublin, Belfield D04 V1W8, Ireland

Available online: 2018-11-16

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References

[ 1 ] Brinksmeier E. CSI Bremen 2012 preface. Procedia Eng 2011;19:1–2. link1

[ 2 ] Krolczyka GM, Marudab RW, Krolczyka JB, Nieslony P, Wojciechowski S, Legutko S. Parametric and nonparametric description of the surface topography in the dry and MQCL cutting conditions. Measurement 2018;121:225–39. link1

[ 3 ] Krolczyk GM, Legutko S. Experimental analysis by measurement of surface roughness variations in turning process of duplex stainless steel. Metrol Meas Syst 2014;21(4):759–70. link1

[ 4 ] Fang FZ, Xu FF. Recent advances in micro/nano-cutting: effect of tool edge and material properties. Nanomanuf Metrol 2018;1:4–31. link1

[ 5 ] Zhang B. Machining of hard and brittle materials: ‘‘ductile regime” or ‘‘brittle regime”? [presentation]. In: Proceedings of the 4th CIRP Conference on Surface Integrity; 2018 Jul 11–13; Tianjin, China; 2018.

[ 6 ] Fang F, Wu H, Zhou W, Hu X. A study on mechanism of nano-cutting single crystal silicon. J Mater Process Technol 2007;184(1):407–10. link1

[ 7 ] Wang B, Liu Z, Su G, Ai X. Brittle removal mechanism of ductile materials with ultrahigh-speed machining. J Manuf Sci Eng 2015;137(6):061002. link1

[ 8 ] Nieslony P, Krolczyk GM, Wojciechowski S, Chudy R, Zak K, Maruda RW. Surface quality and topographic inspection of variable compliance part after precise turning. Appl Surf Sci 2018;434:91–101. link1

[ 9 ] Zhang B, Howes TD. Subsurface evaluation of ground ceramics. CIRP Ann 1995;44(1):263–6. link1

[10] Krolczyk G, Legutko S, Nieslony P, Gajek M. Study of the surface integrity microhardness of austenitic stainless steel after turning. Teh Vjesn 2014;21 (6):1307–11. link1

[11] Zhang B, Tokura H, Yoshikawa M. Study on surface cracking of alumina scratched by single-point diamonds. J Mater Sci 1988;23(9):3214–24. link1

[12] Ringeisen BR, Pirlo RK, Wu PK, Boland T, Huang Y, Sun W, et al. Cell and organ printing turns 15: diverse research to commercial transitions. MRS Bull 2013;38(10):834–43. link1

[13] Huang Y. Interfacial strength of layer-by-layer manufactured soft structures [presentation]. In: Proceedings of the 4th CIRP Conference on Surface Integrity; 2018 Jul 11–13; Tianjin, China; 2018.

[14] Li C, Liu Z, Fang X, Guo Y. Residual stress in metal additive manufacturing. Procedia CIRP 2018;71:348–53. link1

[15] Li C, Guo Y, Fang X, Fang F. A scalable predictive model and validation for residual stress and distortion in selective laser melting. CIRP Ann 2018;67 (1):249–52. link1

[16] Jin Y, Compaan A, Chai W, Huang Y. Functional nanoclay suspension for printing-then-solidification of liquid materials. ACS Appl Mater Interfaces 2017;9(23):20057–66. link1

[17] Christensen K, Davis B, Jin Y, Huang Y. Effects of printing-induced interfaces on localized strain within 3D printed hydrogel structures. Mater Sci Eng C 2018;89:65–74. link1

[18] Kaklamani G, Cheneler D, Grover L, Adams MJ, Bowen J. Mechanical properties of alginate hydrogels manufactured using external gelation. J Mech Behav Biomed Mater 2014;36:135–42. link1

[19] Jin Y, Liu C, Chai W, Compaan A, Huang Y. Self-supporting nanoclay as internal scaffold material for direct printing of soft hydrogel composite structures in air. ACS Appl Mater Interfaces 2017;9(20):17456. link1

[20] Wang X, Jawahir IS. Recent advances in plasticity applications in metal machining: slip-line models for machining with rounded cutting edge restricted contactgrooved tools. IntJ Mach Machinabil Mater 2007;2(3): 347–60. link1

[21] Ulutan D, Alaca BE, Lazoglu I. Analytical modeling of residual stresses in machining. J Mater Process Technol 2007;183(1):77–87. link1

[22] Lazoglu I, Ulutan D, Alaca BE, Engin S, Kaftanoglu B. An enhanced analytical model for residual stress prediction in machining. CIRP Ann 2008;57(1):81–4. link1

[23] Umbrello D, Outeiro JC, M’Saoubi R, Jayal AD, Jawahir IS. A numerical model incorporating the microstructure alteration for predicting residual stresses in hard machining of AISI 52100 steel. CIRP Ann 2010;59(1):113–6. link1

[24] Pu Z, Dillon OW, Jawahir IS, Puleo DA. Microstructural changes of AZ31 magnesium alloys induced by cryogenic machining and its influence on corrosion resistance in simulated body fluid for biomedical applications. In: Proceedings of the ASME 2010 International Manufacturing Science and Engineering Conference; 2010 Oct 12–15; Erie, PA, USA. New York: ASME; 2010. p. 271–7. link1

[25] Jawahir IS. Predictive models for process-induced surface integrity to achieve desirable functional performance in manufactured components [presentation]. In: Proceedings of the 4th CIRP Conference on Surface Integrity; 2018 Jul 11–13; Tianjin, China; 2018.

[26] Brinksmeier E, Meyer D, Heinzel C, Lübben T, Sölter J, Langenhorst L, et al. Process signatures—the missing link to predict surface integrity in machining. Procedia CIRP 2018;71:3–10. link1

[27] Brinksmeier E, Gläbe R, Klocke F, Lucca DA. Process signatures—an alternative approach to predicting functional workpiece properties. Procedia Eng 2011;19 (1):44–52. link1

[28] Brinksmeier E, Klocke F, Lucca DA, Sölter J, Meyer D. Process signatures—a new approach to solve the inverse surface integrity problem in machining processes. Procedia CIRP 2014;13:429–34. link1

[29] Zhu X, Zhang F, Lei M, Guo D. Material loading in inverse surface integrity problem solution of cemented carbide component manufacturing by surface modification. Procedia CIRP 2016;45:235–8. link1

[30] Lei M, Zhu X, Guo D. Reducing geometrical, physical and chemical constraints in surface integrity of high performance stainless steel components by surface modification. J Manuf Sci Eng 2016;138(4):044501. link1

[31] Sealy MP, Liu Z, Guo Y, Liu Z. Energy based process signature for surface integrity in hard milling. J Mater Process Technol 2016;238:284–9. link1

[32] Cheng K. Multi-scale multi-physics modelling and analysis with the application to precision manufacturing of aerospace structures and components [presentation]. In: Proceedings of the 4th CIRP Conference on Surface Integrity; 2018 Jul 11–13; Tianjin, China; 2018.

[33] Qin S, Cheng K. Future digital design and manufacturing: embracing industry 4.0 and beyond. Chin J Mech Eng 2017;30(5):1047–9. link1

[34] Cheng K, Niu Z, Wang R, Rakowski R, Bateman R. Smart cutting tools and smart machining: development approaches, and their implementation and application perspectives. Chin J Mech Eng 2017;30(5):1162–76. link1

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