"Metal matrix composites (MMCs) reinforced with submicron ceramic particles have been objective of many research studies due to their excellent properties and the possibility to adequately respond to demanding operating conditions in various industries. The copper matrix composites (CuMMs) possess unique electrical and thermal conductivity, wear and corrosion resistance, and mechanical properties showing the broad potential applications in industries such as automotive, aerospace, nuclear, shipbuilding, etc. Hence, the design, investigation, and manufacturing of the CuMMs attract both researchers and engineers from various fields. Therefore, in the past decades, great attention is given to the selection of the manufacturing techniques, which will lead to the production of CuMCs with excellent (and desirable) properties. It is well known that the properties of MMCs strongly depend on the reinforcements' nature and distribution. Additionally, by manipulating the process parameters, the control on the reinforcements' distribution can be achieved. On the other hand, optimization of production parameters is usually a very time-consuming and costly process that encourages the development of computational models. The Marie Skłodowska Curie Action (MSCA) project titled ""DeMoMet: Design and modelling of metal matrix composites"" consists of experimental and computational work. The overall objectives of the DeMoMet project are to establish a computational model for the mechanical alloying process and optimizing parameters for the production of MMCs and to expand the knowledge related to relations between metal matrix composite (MMC) production parameters and their mechanical properties. The research conducted during the fellowship contributes to a better understanding of the particle behavior inside the mill as well as the influence of the milling parameters on the final material properties after the densification. All objectives, activities, and deliverables proposed in the MSCA application have been fully accomplished."