Skip navigation

Zastosuj identyfikator do podlinkowania lub zacytowania tej pozycji: http://hdl.handle.net/20.500.12128/23138
Tytuł: Microstructure and Mechanical Properties of Spark Plasma Sintered Mg-Zn-Ca-Pr Alloy
Autor: Hrapkowicz, Bartłomiej
Lesz, Sabina
Karolus, Małgorzata
Garbiec, Dariusz
Wiśniewski, Jakub
Rubach, Rafał
Gołombek, Klaudiusz
Kremzer, Marek
Popis, Julia
Słowa kluczowe: metallic alloys; Mg-based alloy; high energy mechanical alloying; spark plasma sintering
Data wydania: 2022
Źródło: "Metals", Vol. 12, 2022, nr 3, art. nr 375, s. 1-18
Abstrakt: Alloys based on magnesium are of considerable scientific interest as they have very attractive mechanical and biological properties that could be used to manufacture biodegradable materials for medical applications. Mechanical alloying is a very suitable process to obtain alloys that are normally hard to produce as it allows for solid-state diffusion via highly energetic milling, producing fine powders. Powders obtained by this method can be sintered into nearly net-shape products, moreover, their phase and chemical composition can be specifically tailored. This work aims to investigate the effect of milling time on the density, microstructure, phase composition, and mechanical properties of Mg-Zn-Ca-Pr powders processed by high energy mechanical alloying (HEMA) and consolidated by spark plasma sintering (SPS). Thus, the results of XRD phase analysis, particle size distribution (granulometry), density, mechanical properties, SEM investigation of mechanically alloyed and sintered Mg-Zn-Ca-Pr alloy are presented in this manuscript. The obtained results illustrate how mechanical alloying can be used to produce amorphous and crystalline materials, which can be sintered and demonstrates how the milling time impacts their microstructure, phase composition, and resulting mechanical properties.
URI: http://hdl.handle.net/20.500.12128/23138
DOI: 10.3390/met12030375
ISSN: 2075-4701
Pojawia się w kolekcji:Artykuły (WNŚiT)

Pliki tej pozycji:
Plik Opis RozmiarFormat 
Karolus_et_al_Microstructure_and_Mechanical.pdf9,49 MBAdobe PDFPrzejrzyj / Otwórz
Pokaż pełny rekord


Uznanie Autorstwa 3.0 Polska Creative Commons Creative Commons