Cu-Matrix Composites by Reactive Spark Plasma Sintering of Mechanoactivated Cu–Si–C Powder Mixtures
Author:
Publisher
Allerton Press
Subject
Process Chemistry and Technology,General Materials Science
Link
http://link.springer.com/content/pdf/10.3103/S1061386220040093.pdf
Reference7 articles.
1. Lasio, B., Torre, F., Orrù, R., Cao, G., Cabibbo, M., and Delogu, F., Fabrication of Cu–graphite metal matrix composites by ball milling and spark plasma sintering, Mater. Lett., 2018, vol. 230, pp. 199–202. https://doi.org/10.1016/j.matlet.2018.07.120
2. Shkodich, N.F., Rogachev, A.S., Mukasyan, A.S., Moskovskikh, D.O., Kuskov, K.V., Schukin, A.S., and Khomenko, N.Y., Preparation of copper–molybdenum nanocrystalline pseudoalloys using a combination of mechanical activation and spark plasma sintering techniques, Russ. J. Phys. Chem. B, 2017, vol. 11, pp. 173–179. https://doi.org/10.1134/S1990793116060269
3. Kuskov, K.V., Sedegov, A.S., Novitskii, A.P., Nepapushev, A.A., Moskovskikh, D.O., Shkodich, N.F., Rogachev, A.S., and Mukasyan, A.S., Influence of chromium in nanocrystalline copper–chromium pseudoalloy on its structure and properties, Nanotechnol. Russ., 2017, vol. 12, pp. 40–48. https://doi.org/10.1134/S1995078017010074
4. Celebi Efe, G., Zeytin, S., and Bindal, C., The effect of SiC particle size on the properties of Cu–SiC composites, Mater. Des., 2012, vol. 36, pp. 633–639. https://doi.org/10.1016/j.matdes.2011.11.019
5. Celebi Efe, G., Ipek, M., Zeytin, S., and Bindal, C., An investigation of the effect of SiC particle size on Cu–SiC composites, Composites B, 2012, vol. 43, pp. 1813–1822. https://doi.org/10.1016/j.compositesb.2012.01.006
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