Improving the Electron-Beam Additive Manufacturing Growth of Components

Author:

Trushnikov D. N.,Permyakov G. L.,Varushkin S. V.,Davlyatshin R. V.,Bayandin Yu. V.,Pang S.

Publisher

Allerton Press

Subject

Industrial and Manufacturing Engineering,Mechanical Engineering

Reference8 articles.

1. Lorenz, K.A., Jones, J.B., Wimpenny, D.I., and Jackson, M.R., A review of hybrid manufacturing, Proc. 26th Annual Int. Solid Freeform Fabrication Symp. and an Additive Manufacturing Conf., Austin, TX: Univ. of Texas, 2015, vol. 53, pp. 96–108.

2. Stawovy, M.T., Comparison of LCAC and PM Mo deposited using Sciaky EBAM™, Int. J. Refract. Met. Hard Mater., 2018, vol. 73, pp. 162–167.

3. Tarasov, S.Y., Filippov, A.V., Savchenko, N.L., et al., Effect of heat input on phase content, crystalline lattice parameter, and residual strain in wire-feed electron beam additive manufactured 304 stainless steel, Int. J. Adv. Manuf. Technol., 2018, vol. 99, nos. 9–12, pp. 2353–2363.

4. Kovalchuk, D.V., Melnyk, V.G., Melnyk, I.V., and Tugai, B.A., Advanced technical and technological solutions for additive manufacturing by xBeam 3D metal printing, Electrotech. Electron., 2018, vol. 53, pp. 3–4.

5. Electron Beam Additive Manufacturing (EBAM): advantages of wire AM vs. powder AM, Sciaky Company. http://additivemanufacturing.com/2015/10/14/electron-beam-additive-manufacturing-ebamadvantages-of-wire-am-vs-powder-am.

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