Boundary Element Method Applied to Electroforming Process

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Elecform3DTM is a analysis and simulation tool of electroforming process, in order to facilitate design and manufacturing tasks. Electroforming is an electrolytic process that enables the manufacture of metallic parts with good mechanical properties with a high level of accuracy and reproducibility. In this process a thin metallic shell is deposited on a model part and later released from it. Distribution of deposited metal is not uniform due to current density distribution on the cathode. The results obtained with the first version of this product were very promising, and also indicated the need for a more precise analysis of electrochemical phenomena in this process.The methodology is based on the well-known potentials model of LaPlace, it enables deposited metal distribution prediction with high grade of precision, being experimentally validated with cathodic polarization curves. These boundary conditions at the electrodes serve to combine the existing electrical and chemical effects in the process. On the active surfaces of the electrodes the current density is a function of the nonlinear laws of polarization in the electrode-electrolyte interface. Analytically the resolution of these problems is totally unworkable, at least for real geometries, so it is used for solving the employment of numerical methods. The resolution has been considered using the boundary element method (BEM), because we are only interested in obtaining the solution on the surface of the cathode. Elecform3DTM is an important step beyond electroforming so far, and combined with almost all additive manufacturing 3D printer, is a cheaper alternative for high quality metallic parts manufacturing in comparison with other Rapid Manufacturing technologies.

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125-132

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June 2014

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© 2014 Trans Tech Publications Ltd. All Rights Reserved

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[1] R. Mouton, Electroplating Thickness variation œ Fact and Fiction, EIMC, Laguna Niguel, CA. (2005), 93-124.

Google Scholar

[2] J. Dini, Electrodeposition. Materials Science of Coating and Substrates. Berkshire, UK, Noyes Publications, (1993).

Google Scholar

[3] J. Dukovic, Computation of Current Distribution in Electrodeposition, a review, IBM Journal of research and Development, 34 (5), (1990), 693-705.

DOI: 10.1147/rd.345.0693

Google Scholar

[4] R. Alkire, T. Bergh, T.L. Sani, Predicting Electrode Shape Change with Use of Finite-Element Methods. J. Electrochem. Soc. 125, (1978), 1981–(1988).

DOI: 10.1149/1.2131340

Google Scholar

[5] Prentice, G.A., Tobias, C.W., Simulation of changing electrode profiles. J. Electrochem. Soc. 1, (1982), 76–85.

Google Scholar

[6] Deconinck, Current Distribution and Electrode Shape Change in Electrochemical Systems: A Boundary Element Approach. Berlin, Lecture Notes in Engineering no. 75. Springer-Verlag, (1992).

Google Scholar

[7] Bart Van den Bossche, Leslie Bortels, Gert Nelissen, 3D simulation and validation of a Ni plating process for reflector applications, ELSYCA NV, Zellik, Belgium Chris Jensen, Karlheinz Strobl; eeleElectroforming, eele Laboratories 50 Orville Drive, Bohemia, NY 11716. (2005).

Google Scholar

[8] U. Landau, Computer-Based Simulations Providing Elusive and Unintuitive Results, Modelling of Electrochemical Cells and Processes, EAST (European Academy of Surface Science) Forum 2002, Schwaebisch Gmuend , Germany . Oct. 10-11, (2002).

Google Scholar

[9] J. Bullock, Simulation of an Electrochemical Plating Process, Topics in Boundary Element Research, C.A. Brebbia, Berlin, Chap. 7. (1990).

Google Scholar

[10] F. Druesne, P. Paumelle, Villon, P., Application of the BEM to chromium electroplating simulation and to identification of experimental polarisation laws. Engineering Analysis with Boundary Elements, 24 (2000). 615-622.

DOI: 10.1016/s0955-7997(00)00048-5

Google Scholar

[11] M. Monzón, P.M. Hernández, M.D. Marrero, A.N. Benítez, F. Ortega, A. Socas, New Development in Computer Aided Electroforming for Rapid Prototyping Applications, ESDA 2008, Haifa, Israel. (2008).

DOI: 10.1016/j.proeng.2013.08.198

Google Scholar

[12] F. Druesne, P. Paumelle, P. Villon, Determination of the laws of polarization by coupling with measurements with a numerical tool. Journal of Materials Processing Technology, 118 (2001). 368-370.

DOI: 10.1016/s0924-0136(01)00984-0

Google Scholar

[13] P. Miltiadou and L. Wrob, A BEM-based genetic algorithm for identification of polarization curves in cathodic protection systems. International Journal for numerical methods in Engineering, 54 (2002). 159-174.

DOI: 10.1002/nme.413

Google Scholar

[14] P.M. Hernández, A. Socas, A.N. Benítez, M. Monzón, F. Ortega, M.D. Marrero, Computer Aided Electroforming for Rapid Manufacturing Applications, ESDA 2012, Nantes, France. (2012).

DOI: 10.1115/esda2012-82719

Google Scholar

[15] P.M. Hernández, A. Socas, A.N. Benítez, M.D. Marrero, F. Ortega, M. Monzón, Computer Aided Electroforming. Elecform3DTM. Procedia Engineering, 63 (2013). 532-539.

DOI: 10.1016/j.proeng.2013.08.198

Google Scholar