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9. REFERENCIAS

 

[1]         X. Liu, R.E. DeVor, S.G. Kapoor, K.F. Ehman, The mechanics of machining at the micro scale: assessment of the current state of the science, Journal of Manufacturing Science and Engineering 126:666–678, 2004.

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[18]         Tokyo Institute of Technology,  Website: www.titech.ac.jp

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[31]         Horst Witte Gerätebau Barskamp, Germany, Website: www.horst-witte.de

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[35]         Cimatron, Israel, Website: www.cimatron.com

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[47]         J. Chae, S.S. Park and T. Freiheit, Investigation of micro-cutting operations,  International Journal of Machine Tools and Manufacture 46 (3-4):313-332, 2006.

[48]         J. Prakash, Design, assembly, and testing of an ultra-high-speed. micro-milling spindle. Master Thesis. University of Florida, 2003.

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[50]         T. Masuzawa, State of the art of micromachining, Annals of CIRP 49:473–88, 2000.

[51]         Performance Micro Tool, Website: www.pmtnow.com

[52]         T. Schaller, L. Bohn, J. Mayer, K. Schubert, Microstructure grooves with a width of less than 50 µm cut with ground hard metal micro end mills, Precision Engineering 23:229–235, 1999.

[53]         H. Onikura, O. Ohnishi, Y. Take, Fabrication of micro carbide tools by ultrasonic vibration grinding, Annals of CIRP 49(1):257-260, 2000.

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[55]         F.Z. Fang, H. Wu, X.D. Liu, Y.C. Liu, S.T. Ng, Tool geometry study in micromachining, Journal of Micromechanics and Microengineering 13:726–731, 2003.

[56]         S. Kalpakjian, S.R. Schmid, Manufacturing Processes for Engineering Materials, ISBN 0-1304-0871-9, Prentice-Hall Publishers, USA, 2002.

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[58]         J. Hesselbach, A. Raatz, H. Herrmann, H. Weule, M. Weck, Investigation of the international state of the art of micro production technology, Proceedings of the Euspen International Topical Conference, Germany, 2003.

[59]         E. Shamoto, T. Moriwaki, Ultraprecision diamond cutting of hardened steel by applying elliptcal vibration cutting, Annals of the CIRP 48(1):441-444, 1999.

[60]         E. Brinksmeier, J. Dong, R. Gläbe, Diamond turning of steel molds for optical applications, Proceedings of the 4th International Conference of the Euspen, pp. 155-156, UK, 2004.

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[62]         P. Heaney, C. Torres, A. Sumant, R. W. Carpick, F. Pfefferkorn, Effect of Nanocrystalline Diamond Coatings on Micro-End Milling Performance, Proceedings of the 1st International Conference on Micromanufacturing - ICOMM, pp. 75-80, 2006.

[63]         J. Grum, M. Kisin, Influence of microstructure on surface integrity in turning-part II: the influence of a microstructure of the workpiece material on cutting forces, International Journal of Machine Tools and Manufacture 43:1545–1551, 2003.

[64]         A. Sharon, A. Bilsing, G. Lewis, X. Zhang, Manufacturing of 3-D microstructures using novel UPSAMS process for MEMS applications, Materials Research Society Symposium 741:151-156, 2003.

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[66]         C. Hofmann, Comparative study of the capabilities of various micromachining processes, Master thesis. University of Illinois, 2002.

[67]         S. Köhne, Rapid Prototyping for Lab-on-a-Chip Systems, “One week to Chip” , Europractice Project INTEGRAMplus, IMM, 2006.

[68]         V. Piotter, A. E. Guber, M. Heckele, A. Herlach, Micro moulding of medical device components, Business Briefing: Medical device manufacturing and technology, 2004.

[69]         Tekniker Foundation, Website: www.tekniker.es

[70]         V. Singh, Y. Desta, P. Datta, J. Guy, M. Clarke, D. L. Feedback, J. Weimert, J. Goettert, A hybrid approach for fabrication of polymeric BIOMEMS devices, Jpurnal of Microsystem Technologies 13: 369–377, 2007.

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[72]         Datron Dynamics Inc., Website: www.datrodynamics.com

[73]         Basel Fair, Switzerland, Website: www.baselshow.com

[74]         Minitech Machinery Corporation, Website: www.minitech.com

[75]         U.Wallrabe, H. Dittrich, G.Friedsam, T.Hanemann, J. Mohr, K.Muller, V.Piotter, P. Ruther, T. Schaller, W.Zissler, Micromolded easy-assembly multi fibre connector: RibCon, Journal of Microsystem Technologies 8: 83-87, 2002.

[76]         Miniature Tool & Die Inc., Website: www.miniaturetool.com

[77]         T. Schaller, J. Fahrenberg, Manufacturing Microcomponents by Mechanical Micromachining, Microsystem Technologies Program (PMT), Karlsruhe, 1999.

[78]         Manufacturing Engineering Centre, Website: www.mec.cf.ac.uk

[79]         D. A. Lucca, R. L. Rhorer, R. Komanduri, Energy Dissipation in the Ultraprecision Machining of Copper, CIRP Annals, 40: 69–72, 1991.

[80]         D. A. Lucca, Y. W. Seo, Effect of Tool Edge Geometry on Energy Dissipation in Ultraprecision Machining, CIRP Annals, 42: 83–86, 1993.

[81]         D. A. Lucca, Y. W. Seo, R. L. Rhorer, R. L., Energy Dissipation and Tool-Workpiece Contact in Ultra-Precision Machining, STLE Tribology Transactions, 37, pp. 651–655, 1994.

[82]         D. A. Taminiau, J. H. Dautzenberg, Bluntness of the Tool and Process Forces in High-Precision Cutting, CIRP Annals, 40: 65–68, 1991.

[83]         K. Lee and D. Dornfeld, An experimental study on burr formation in micro-milling aluminium and copper, Trans. North American Manufacturing Research Institute, 30: 255-262, 2002. 

[84]         X. Liu, M.B. Jun, R.E. DeVor, S.G. Kappor, Cutting Mechanisms and their Influence on Dynamic Forces, Vibrations and Stability in Micro-end Milling Proceedings ASME International Mechanical Engineering Congress and Exposition, USA, 2004.

[85]         B. Kim, M.C. Schmittdiel, F.L. Degertekin, T.R. Kurfess, Scanning grating micro interferometer for MEMS metrology, Journal of Manufacturing Science and Engineering 126:807–812, 2004.

[86]         N. Ikawa, S. Shimada, H. Tanaka, G. Ohmori, Atomistic Analysis of Nanometric Chip Removal as Affected by Tool-Work Interaction in Diamond Turning, Annals of CIRP 40:551–554, 1991.

[87]         N. Ikawa, R. R. Donaldson, R. Komanduri, W. Koenig, T. H. Aachen, P. A. McKeown, T. Moriwaki, I. F. Stowers, Ultraprecision Metal Cutting, The Past, the Present, and the Future, Annals of CIRP 40:587–594, 1991.

[88]         H. Weule, V. Huntrup, H. Tritschler, Micro-cutting of steel to meet new requirements in miniaturization, Annals of CIRP 50:61– 64, 2001.

[89]         C. J. Kim, M. Bono, J. Ni, Experimental Analysis of Chip Formation in Micro-Milling, Transaction of the NAMRI/SME, 30: 1–8, 2002.

[90]         M.P. Vogler, R.E. Devor, S.G. Kapoor, Microstructure-level force prediction model for micro-milling of multi-phase materials, Journal of Manufacturing Science and Engineering 125:202–209, 2003.

[91]         M.P. Vogler, R.E. Devor, S.G. Kapoor, On the modeling and analysis of machining performance in micro end milling. Part I: Surface Generation, Journal of Manufacturing Science and Engineering 126 (4):684–693, 2004.

[92]         K. Lee, A study of surface roughness in micro-end-milling of aluminium, LMA Research Report - CODEF, 2001.

[93]         J. Binu, Scaling Down of Manufacturing Systems: Meso and Nano Level Machining - An Analysis, Master Thesis, The Pennsylvania State University, 2003.

[94]         B. N. Damazo, M. A. Davies, B. S. Dutterer, M. D. Kennedy, A Summary of Micro-Milling Studies, Proceedings of 1st International Conference and General Meeting of the European Society for Precision Engineering and Nanotechnology,  pp. 322–325., 1999.

[95]         K. Lee, B. Stirn, and I. Essel, Burr formation in micro-machining, LMA Research Report - CODEF, 2000.

[96]         K. M. Litwinski1, S. Min, D. Lee, D. A. Dornfeld, N. Lee, Scalability of Tool Path Planning to Micro Machining, Proceedings of the 1st International Conference on Micromanufacturing - ICOMM , pp. 174-179, 2006.

[97]         M. Gower, N. Rizvi, Applications of laser ablation to microengineering, Proceedings of SPIE in High-Power Laser Ablation III 4065:161-172, USA, 2000.

[98]         T. Moriwaki, N. Sugimura, K. Manabe, K. Iwata, A Study on Orthogonal Micromachining of Single Crystal Copper, Transaction of the NAMRI/SME, 19: 177–183, 1991.

[99]         K. Ueda, K. Iwata, Chip Formation Mechanism in Single Crystal Cutting of Beta-Brass, CIRP Annals, 29:65–68, 1980.

[100]         S. To, W. B. Lee, C. Y. Chan, Ultraprecision Diamond Turning of Aluminium Single Crystals, Journal of  Material Processing Technologies, 63: 157–162, 1997.

[101]         M. Xiao, K. Sato, S. Karube, T. Soutone, The effect of tool nose radius in ultrasonic vibration cutting of hard metal, International Journal of Machine Tools and Manufacture 43:1375–1382, 2003.

[102]         C.R. Liu, S. Mittal, Single-step super finish hard machining: feasibility and feasible cutting conditions, Robotics Computer-Integrated Manufacture 12:15–27, 1996.

[103]         I.N. Tansel, T.T. Arkan, W.Y. Bao, N. Mahendrakar, B. Shisler, D. Smith, M. McCool, Tool wear estimation in micro-machining. Part I; tool usage-cutting force relationship, International Journal of Machine Tools and Manufacture 40 (4):599–608, 2000.

[104]         I.N. Tansel, T.T. Arkan, W.Y. Bao, N. Mahendrakar, B. Shisler, D. Smith, M. McCool, Tool wear estimation in micro-machining. Part II: neural-network-based periodic inspector for non metals, International Journal of Machine Tools and Manufacture 40:609–620, 2000.

[105]         M. Rahman, S. Kumar, J.R.S. Prakash, Micro milling of pure copper, Journal of materials Processing Technology 116:39–43, 2001.

[106]         J.R.S. Prakash, A. Senthil Kumar, M. Rahman, S.C. Lim, A model for predicting tool life for coated micro end mill, IVth International Machining and Grinding Troy, USA, 2001.

[107]         K. Weinert, V. Petzoldt, Machining of NiTi based shape memory alloy, Materials Science and Engineering A 378:180–184, 2004.

[108]         Rusnaldy, T. Ko, H. S. Kim , Cutting Tool Wear and Vibration in Micro End Milling of Silicon Wafer, Proceedings of the 1st International Conference on Micromanufacturing - ICOMM , pp. 58-63, 2006.

[109]         W.Y. Bao, I. N. Tansel, Modeling micro-end-milling operations. Part I: analytical cutting force model. International Journal of Machine Tool and Manufacture 40:2155-2173, 2000.

[110]         T. Moriwaki, N. Sugimura, S. Luan, Combined Stress, Material Flow and Heat Analysis of Orthogonal Micromachining of Copper, Annals of CIRP 42: 75–78, 1993.

[111]         K. Liu, S. N. Melkote, A Strain Gradient Based Finite Element Model for Micro/Meso-Scale Orthogonal Cutting Process, Proceedings of 2004 Japan-USA Symposium on Flexible Automation, Denver, 2004.

[112]         J. Tlusty, P. Macneil, Dynamics of cutting forces in end milling, Annals of CIRP 24 (1):21-25, 1975.

[113]         W.Y. Bao, I. N. Tansel, Modeling micro-end-milling operations. Part II: tool run-out. International Journal of Machine Tool and Manufacture 40:2175-2192, 2000.

[114]         W.Y. Bao, I. N. Tansel, Modeling micro-end-milling operations. Part III: influence of tool wear. International Journal of Machine Tool and Manufacture 40:2193-2211, 2000.

[115]         M.P. Vogler, R.E. Devor, S.G. Kapoor, On the modeling and analysis of machining performance in micro end milling. Part II: Cutting Force Prediction, ASME Journal of Manufacturing Science and Engineering 126 (4):694-704, 2004.

[116]         C. Kim, J. R. Mayor, J. Ni, A static model of chip formation in microscale milling, Journal of Manufacturing and Science Engineering 126 (4):710-718, 2004.

[117]         M. T. Zaman, A. S. Kumar, M. Rahman, S. Sreeram, A three-dimensional analytical cutting force model for micro end milling operation, International Journal of Machine Tools & Manufacture 46:353–366, 2006.

[118]         C. Li, X. Lai, L. Peng, H. Li, J. Ni, Modelling of three dimensional cutting forces in micro-end-milling, Journal of Micromechanics and Microengineering, 17:671-678, 2007.

[119]         X. Liu, R. E. DeVor, S. G. Kapoor, An analytical model for the prediction of minimum chip thickness in micromachining, Journal of Manufacturing Science and Engineering   128 (2):474-481, 2006.

[120]         M. B. G. Jun, X. Liu, R. E. DeVor, S. G. Kapoor, Investigation of the Dynamics of Microend Milling - Part I:Model development,  Journal of Manufacturing Science and Engineering 128 (4):893-900, 2006.

[121]         M. B. G. Jun, X. Liu, R. E. DeVor, S. G. Kapoor, Investigation of the Dynamics of Microend Milling - Part II: Model Validation and Interpretation,  Journal of Manufacturing Science and Engineering 128 (4):901-912, 2006.

[122]        A. Dhanorker, T. Özel, An experimental and modeling study on meso/micro end milling process, Proceedings of 2006 ASME International Conference on Manufacturing Science and Engineering, 2006.

[123]         D. L. Wissmiller, F. E. Pfefferkorn, Tool Temperature Measurement and Modeling in Micro-End Milling,  Proceedings of the 1st International Conference on Micromanufacturing - ICOMM , pp. 64-69, 2006.

[124]         D. L. Wissmiller, F. E. Pfefferkorn, Tool Temperature Measurement and Modeling in Micro-End Milling,  Proceedings of the 1st International Conference on Micromanufacturing - ICOMM , pp. 64-69, 2006.

[125]         E. Uhlmann, K. Schauer, Dynamic load and strain analysis for the optimization of micro end mills, Annals of the CIRP 54(1):75-78, 2005.

[126]         J. Prakash, Design, assembly, and testing of an ultra-high-speed. micro-milling spindle. Master Thesis. University of Florida, 2003.

 

 


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